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Tides and Tidal Datums in 
the United States 


WHO! 


DOCUMENT | 
COLLECTION 


= by 
D. L. Harris 


SPECIAL REPORT NO. 7 


FEBRUARY 1981 


Approved for public release; 
distribution unlimited. 


U.S. ARMY, CORPS OF ENGINEERS 
COASTAL ENGINEERING 
RESEARCH CENTER 


Kingman Building 
Ki Fort Belvoir, Va. 22060 


Reprint or republication of any of this material shall give appropriate 
credit to the U.S. Army Coastal Engineering Research Center. 


U.S. Army Coastal Engineering Research Center 
Kingman Building 
Fort Belvoir, Virginia 22060 


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{ffice, Washington, D.C. 20402 


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1. REPORT NUMBER 2. GOVT ACCESSION NO,| 3. RECIPIENT'S CATALOG NUMBER 
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4. TITLE (and Subtitle) ; 5. TYPE OF REPORT & PERIOD COVERED 


TIDES AND TIDAL DATUMS IN THE UNITED STATES Special Report 


6. PERFORMING ORG. REPORT NUMBER 


- AUTHOR(s) 8. CONTRACT OR GRANT NUMBER(s) 


D. L. HARRIS 


- PERFORMING ORGANIZATION NAME AND ADDRESS 10. PROGRAM ELEMENT, PROJECT, TASK 
Department of the Army AREA & WORK UNIT NUMBERS 
Wea F31234 
Coastal Engineering Research Center (CERRE-CO) 
Kingman Building, Fort Belvoir, Virginia 22060 


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Department of the Army February 1981 


Coastal Engineering Research Center 13. NUMBER OF PAGES 
Kingman Building, Fort Belvoir, Virginia 22060 382 
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Tidal datums _ Tides United States 


ABSTRACT (Continue em reverse sides if meceasary and identify by block number) 


The boundary between sea and land appears to be the natural datum of reference for measuring 


elevation of land or depth of the sea. This boundary, however, varies continuously because of the 
astronomical tides and for other reasons. The various factors whiclhi cause this variability are discussed 
with emphasis on the astronomical tides as the most predictable of the plenomena which affect sea 


level. (Continued) 


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Several tidal datums of practical importance are described. Sources of detailed information are 
identified. Difficulties associated with surveys which extend over a wide range of latitude and eleva- 
tion are discussed. 


Statistical characteristics of the astronomical tides at various U.S. ports are investigated and 


documented with graphs and tables. The distribution function for astronomical tidal heights is 

found to be nearly symmetric at many stations. At many other continental tide stations, the astro- 

nomical tide remains above mean sea level (MSL) more than half the time, but departs farther from 

MSL in a negative rather than in a positive direction. At Honolulu, Hawaii, the predicted tide is 

below the MSL more than half the time and positive departures are larger than negative departures. 
A technical glossary and supplementary tables are included. 


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PREFACE 


This report is published to provide engineers with a ready reference to information about 
tidal datums and tide characteristics, and to provide information about the statistical 
distribution of astronomical tidal heights which can be used in setting and measuring the 
elevation of proposed engineering works or combined with similar statistics for storm surges 
and tsunamis to estimate the probability of extreme water levels. The work was carried out 
under the coastal engineering research program of the U.S. Army Coastal Engineering 
Research Center (CERC). 


This report is one of a series of reports to be published to form a Coastal Engineering 
Manual (CEM), 


The report was prepared by Dr. D. Lee Harris, formerly Chief, Coastal Oceanography 
Branch, and Senior Scientist in the Research Division, now with the Coastal and Oceano- 
graphic Engineering Department, University of Florida. The study could not have been 
carried out without the active support of C. Thurlow and other members of the Oceanog- 
raphy Division, National Ocean Survey (NOS), National Oceanic and Atmospheric Adminis- 
tration (NOAA). Dr. R.M. Berry, NOS, was also extremely helpful in preparing the section 
dealing with the International Great Lakes Datum (IGLD). Many co-op students, including 
K. Quest, G. Grove, and L. Deskins, participated in the preparation of the graphs and tables. 
C. Miller of CERC assisted in the computational aspects of the study; W.G. Grosskopf com- 
pleted the computer program and made the final calculations presented in the report. R.A. 
Jachowski, Chief, Coastal Design Criteria Branch, was the CEM project monitor for the 
report. 


Comments on this publication are invited. 


Approved for publication in accordance with Public Law 166, 79th Congress, approved 
31 July 1945, as supplemented by Public Law 172, 88¢4 Congress, approved 7 November 


1963. 
ELAS 4 L 
T 


ED E. BISHOP 
Colonel, Corps of Engineers 
Commander and Director 


II 


Till 


IV 


VI 


Vil 


CONTENTS 


P. 
CONVERSION FACTORS, U.S. CUSTOMARY TO METRIC (S])_ ... <0 
SYMBOLSAND DEBINIRIONS sie ci-heich i-teieoleeaea anion 10 
INTRODUCTION) yor Foo tuennaen One cate eect ue nea er on mene 13 
DESCRIPTION OF THERECORDS ................... 15 
1 Astronomical Tidess go. ccc koek sc ve cones) |e) arene nar 15 
2: Water Level 'Records\:5 JN. Cava a! ov sis ements Cee ROne RE 18 
3. Tide Observations and Tide Record Analysis ............ 21 
4, Perturbations in Tide Records with Periods Much Longer Than the 
Tidal Period) 3, jc... uc haie® akin shia ee ace a ee 21 
THE TIDE PREDICTION EQUATION ....... RUM eRe re IA 2 24 
i's. Dhevhide Generation’ Horce 1.00 yee ee eee eee 26 
2. The Declination of the Sun and Moon ................ 30 
3. Interaction of Solar and Lunar Tides ................ 32 
4. Net; Variation in Tidal)Range) in5 jess -iserouen ite) en nein 32 
5. nShallow: Water Tides, 4 sone. shihs 4 oucl avcee 8 Me ae 33 
6. Classical Harmonic Constituents of the Tide ............ 34 
7. MidevAnalyses; <.jde. ssn aye syechpen hey eile emis ts eae coca aie ae 35 
TIDAL: DATUMS! ti) 2290 POMS SMR SAIS COLE Severn eet ae SO 
1. The National Geodetic Vertical Datum (NGVD) .......... 38 
2. Tidal Datum) Bench, Marks) (3047.0 Wa) is a ee 40 
SPECIAL DATUMS FOR THE GREAT LAKES ............. 46 
I! Barly Great Lakes Datums 3 )) 5 sities one eee ooo eee 46 
2!) The! Definitionyof Elevation). career ce cae 50 
3. The International Great Lakes Datum (1955) ............ 52 
LONG—TERM VARIATION IN MEAN SEA LEVEL .......... 53 
1, Explanation) of Sea\Level Trendsiity -a5 eet eie- me enen ne 58 
2. Conclusions and Recommendations ................-- 59 
3. Data Sources for Detailed Studies .................-.- 59 
STATISTICAL DESCRIPTION OF THE PREDICTED TIDE ...... 61 
1... Introduction}. ow a eke cen USNs fa Sorel es eae erences 61 
on hide Hy Grograpisy js. 07) 2) /. ‘sseyatiusce evs; Alan isuncl tense noua cae 61 
3. Graphs Displaying Other Tide Characteristics ............ 62 
4. Tide Probability Graphs ......... sitet Goth ll ela eames 66 
5. Probability Tables for Astronomical Tides ............. 70 


CONTENTS—Continued 


Vill APPLICATION OF THE TIDE PROBABILITY TABLES ........ 
Example/Problems)vay...0 “yop chara orc igor hoe ere eee 
IX SUMMARY AND RECOMMENDATIONS ................ 
Recommendations for Revision of the Probability Tables ...... 
LITERATURE CERED® secrecy (of cristiee mee deen carey <b oad We treect cee 

APPENDIX 
A GLOSSARY OF SELECTED TECHNICAL TERMS ........... 


B CHARACTERISTICS OF ASTRONOMICAL TIDES AT REFERENCE 
TIDE STATIONS oo tire care reine cea e eee a oh caer Me eure nan ate 


C TIDAL RANGES FOR REF ERENCE AND SECONDARY STATIONS. . 


TABLES 


1 Astronomical periods affecting the tides ............... dh Paani 
2 Tidal constituents commonly used by the National Ocean Survey (NOS) 


3 Tide data used in establishing the National Geodetic Vertical Datum (NGVD) 
Of 929) aA TAP see HE EIR IES Sipcel utened oye) cal ok est emrtio eyes coleman: 


5 Trends and variability of yearly MSL through 1972 ............... 
6 Comparative tide stations ................ Chonbaa ouncanaic ceriees 
7 Computed datums, ranges, and standard deviations referredto MSL ....... 


8 Distribution functions for monthly high and low waters at New York, 
_(The Battery), New York ........ Ly Siyersine te OUEANS ob tei sido \cyeeoy bere nahin ashis 


9 Distribution functions for higher high, high, hourly, low, and lower low water 
at Atlantic City, New Jersey .............0.0.. 25050 00.0¢ 


10 Part of cumulative distribution table for Sandy Hook, New Jersey ........ 


Mil 


12 


13 


14 


15 


16 


17 


10 


CONTENTS 


TABLES—Continued 


Page 
Sampleiprobabilitycalculationst#enaiay meiotic s nteeeyi temeierian icy oe nton: 78 
Comparison of probability for Atlantic City, using Sandy Hook as reference 
station and Atlantic City as primary station .................. 78 
Probability distribution for the sum of two numbers from l1to6 ........ 81 
Probability, density functioniforzi= xetiyawiey heer bit le ome cnet: 81 
Computation of P(n),z=x+y,twounbiased dice ...............4. 82 
Frequencies of maximum winter (November to April) surge heights, Atlantic 
City, «New sJerseye) 5 ciiay sip) ay ays! atria emp anatiio "ashes fo eOea Ny ANY MSBP Ts 5 83 
Computation of joint probabilities for astronomical tides and extratropical storm 
surges at Atlantic City, New Jersey ....... Awa ond \ehictch.d. 0 [oi 0c 84 
FIGURES 
Tide predictions for Boston, Massachusetts, January 1963 ............ 16 


Predicted tidal curves at five locations for January 1963, showing various 


astronomical)tidesey i, tee W seek enn reed inlet rian: 2/ 
Mracings tromitidelsavrerecords)|p-ii.Wmenol lane ey ed ee nM tn 19 
Sample tide records showing tsunamis ........-+2-+++ eee eee 20 


Departure of the observed daily MSL from the predicted value for selected 


USC&GS tide) stations in 95 (1 yells tenet nel ail sien het on ten 22 
Observed monthly MSL at USC&GS Atlantic coast tide stations, 1930-40 .... 23 
Change in sea level with respect to adjacent land for Yakutat, Alaska, 

Honolulu, Hawaii, and Cristobal, Canal Zone .............-++.- 24 
Force diagram for the generation of astronomical tides ...........-... 27 
Tide-producingforces)). cil. )2i-) i) ene) neuen cl meen ene (fae ii-t-Me none 31 
Spring and neap tides during alunarmonth ...........+5 ++ ee ee 32 


11 


12 


13 


14 


15a 


15b 


16 


17 


18 


19 


20 


21 


22 


23 


24 


25 


CONTENTS 
FIGURES—Continued 
Illustration of tidal datums (Los Angeles, California (Outer Harbor), January 
Te HS a ee Cust Cops A ea ace SH ake SPEC a ee 


Relationship between NGVD and several tidal datums between Montauk and 
The Battery tee ese EAS). yo Sere dee tee: WA pak. Raieicene: 


Location of tide stations used in establishing the National Geodetic Vertical 
Datuml(NGND)cof71929 mae Ey satis) SP pisneereMe mace tio ual een. Peeper ee 


First-order level net (1963) showing MSL variations ............... 
Sample NOS index map of tidal bench-mark locations .............. 
SampleiofrelatedyNOSindexcmapmumbersig-e sri) oyna meee 
Sample NOS sheet of description of tidal bench marks .............. 


Location of reference and comparative tide stations, Atlantic, gulf, and Pacific 
COASUS) va seetsy cots iuomeetese sod caneiien Tak Cvanraltcen Fem oNel nee. eusdcucrace Coahivintciyience™ sagen we memen te 


Areal extent of tidal types and locations of stations with illustrated tidal curves . 
Schematicillustrationtofsappatent oravitys sew) ecn in nem eee 
Equipotentialvon mlevelisurlacesin.n umm uoncupaiiboaisar ie neu u eu okicioues 


Variation in annual MSL at New York, New York (The Battery); Portland, 
Maine; Baltimore, Maryland; and Charleston, South Carolina ......... 


Variation in annual MSL at Charleston, South Carolina; Mayport, Miami Beach, 
andiCedar Key, Ploriday) Barger. 2 ace Sc EIS oS es She Ss 


Variation in annual MSL at Cedar Key and Pensacola, Florida; Eugene Island, 
[FouisianajandiGalyestonshexass cancel siete Go enue cy ieee ners 


Variation in annual MSL at Seattle, Washington; San Francisco and San Diego, 
Califormia-yandlHonolulustawai ee ieee ee eee cae ene 


Variation in annual MSL at Ketchikan and Skagway, Alaska ........... 


26 


27 


28 


29 


30 


31 


32 


CONTENTS 


FIGURES—Continued 


Page 

A sample of an NOS tabulation of tide parameters ................ 60 
Annual and 19-year cyclical distribution of tide parameters. ........... 63 
Probability density graph for predicted hourly tidal heights at Atlantic City, 
ING WiJERse yi ie s.i[25s CARS Seen aR ret Ne RN inital) aire iat a iielat: caw siar Real cue 68 


Probability density graph for predicted hourly tidal heights at Pensacola, Florida 68 


Probability density graph for predicted hourly tidal heights at San Francisco, 
Californias, ye) cence) tepeieli tase seecoualncdoll stapes Me neine sa peutctl cue 6 oso ololo ¢ 69 


Commulative frequency density curve for tide parameters, Bridgeport, 
Connecticut, 1963-81) 3 ee Biers ead ei a Re ok Ree 69 


Observed tide, predicted tide, and storm surge for selected stations, 5 to 8 
Marchi T9625 235. cicth An ee cme agin ter eee A Ue ibn ga ta 75 


CONVERSION FACTORS, U.S. CUSTOMARY TO METRIC (SI) 
UNITS OF MEASUREMENT 


U.S. customary units of measurement used in this report can be converted to metric (SI) 
units as follows: 


. Multiply by To obtain 
inches 25.4 millimeters 
2.54 centimeters 
square inches 6.452 square centimeters 
cubic inches 16.39 cubic centimeters - 
feet 30.48 centimeters 
0.3048 meters 
square feet 0.0929 square meters 
cubic feet 0.0283 cubic meters 
yards 0.9144 meters 
square yards 0.836 square meters 
cubic yards 0.7646 cubic meters 
miles 1.6093 kilometers 
. square miles 259.0 hectares 
knots 1.852 kilometers per hour 
acres 0.4047 hectares 
foot-pounds 1.3558 newton meters 
millibars 1.0197 X 10°? kilograms per square centimeter 
ounces 28.35 grams 
pounds 453.6 grams 
0.4536 kilograms 
ton, long 1.0160 metric tons 
ton, short 0.9072 metric tons 
degrees (angle) 0.01745 radians 
Fahrenheit degrees . 5/9 Celsius degrees or Kelvins' 


To obtain Celsius (C) temperature readings from Fahrenheit (F) readings, use formula: C = (5/9) (F - 32). 
To obtain Kelvin (K) readings, use formula: K = (5/9) (F - 32) + 273.15. 


Ans 


SYMBOLS AND DEFINITIONS 
arbitrary constant 
amplitude of the nth tide constituent for station s 
amplitude of the nth tide constituents for an unspecified station and year 
arbitrary constant 
center of Moon or Sun 
distance in a line or surveys 
mass of the Earth 
tide-generating force per unit mass 
centrifical force 
force of gravity 
horizontal component of F per unit mass in the Earth’s surface 
centrifugal force 
component of F along line OC (Fig. 8) 
component of F along line PC (Fig. 8) 
universal gravitational constant 
dynamic height 
mass of the Moon or Sun 
center of the Earth 
an arbitrary point 
the cumulative probability that h > he 


arbitrary cumulative probability functions 


SYMBOLS AND DEFINITIONS—Continued 
index of tide type; R > 1.50 corresponds to a diurnal tide, 0.25 < R < 1.50 
corresponds to a mixed tide, and R < 0.25 corresponds to a semidiurnal tide 
equation 


radius of the Earth 


distance between an arbitrary point, P, in or on the surface of the Earth 
and the center of the Moon or Sun 


cos Z, in deviation of equation (9) 

distance between the center of the Earth and the center of the Moon or Sun 
average value of d 

d-d 


node factor needed to adjust the standard value of Ans to the proper value 
for a specified year 


acceleration of gravity 

geometric height above datum 

tide elevation at time t 

a tidal height whose probability is wanted 

mean water level referred to any identified datum 

tidal height at station s, year y, and time t 

lowest tabulated value of h > he 

highest tabulated value of h < he 

are at integers 1, 2, 3,... or a sequence of them 

masses of two attracting bodies in the universal law of gravitation 


summation index 


SYMBOLS AND DEFINITIONS—Continued 


p(y) probability that ¥ = y + Ay 


Pi» Poo P3 arbitrary probability density functions 


s subscript indicating station 
t time 
X,Y, Z arbitrary variables 
y subscript indicating year 
y(t) tidal height at time t 
ae tidal height in an estuary 
Yo tidal height in the ocean 
zZ angle between the lines connecting the center of the Earth to an arbitrary 
point, P, in the Earth or the Earth’s surface, and the center of the Moon 
or Sun 
a ratio a/d in deriving equation (9); running index in equation (25) 
On phase of the n@h tide constituent at t = 0 
Kns phase of the nth tide constituent at station s, when t = 0 
My equilibrium argument of the né constituent of the tide for the year, y 
p density of matter 
0 standard deviation 
on frequency of the nth tide constituent 
) arbitrary frequency (Sec. III); latitude (Sec. V) 
én phase of the nth constituent of the tide (Sec. III) 
w arbitrary frequency (Sec. III); frequency of the Earth’s rotation (Sec. V) 


TIDES AND TIDAL DATUMS IN THE UNITED STATES 


by 
D.L. Harris 


I. INTRODUCTION 

The coastal engineer must often measure the depth of the water or the height of the land 
near the shore. A reference point which can be used as the zero in making these 
measurements is essential. If the sea surface were level, and its position relative to the land 
were constant in time, the choice of a reference point would be simple—depths would be 
measured below and heights above the waterline. 

The sea surface, however, is not level and its elevation is not constant in time. The sea 
surface rises and falls once or twice daily in response to the varying gravitational attraction 
by the Sun and Moon. Irregular changes due to the action of the wind and atmospheric 
pressure are generally continuous. Violent changes occasionally occur in response to seismic 
disturbances; very slow changes occur in response to subsidence or emergence of the land, 
changes in the volume of the ocean or the shape of the Earth, and other unidentified causes. 

Thus, if the zero of the vertical scale is based on the elevation of the sea surface, it is 
necessary to use some statistical value such as the mean water level. Moreover, the mean 
must be referred to a fixed interval of time. The expression “tidal datum plane” has been 
widely used as a reference for the vertical scale based on tide records. This practice appears 
to have encouraged many engineers to use reference datums as planes in many situations 
where this was not justified. Therefore, this expression is now looked on with disfavor 
(Mitchell, 1969, p. 21). The preferred term is tidal datum or tidal datums. Several tidal 
datums are in common use. Others have been used in the past or proposed for use in the 
future. Each datum has been introduced for a specific purpose and has often been used for 
other purposes without a full understanding of how well it might satisfy this secondary use. 
A limited use of several of these datums will be necessary before an adequate base has been 
established for a rigorous definition. 

The variability of sea level must be considered in a variety of problems. In international 
law, national sovereignty is determined from the mean low water (MLW) line. In many 
States, the seaward limit of private property is determined by the mean high water (MHW) 
line. The elevation of the extremely low water levels is often critical for navigation. The 
elevation of extremely high water levels is critical for the design of coastal powerplants and 
flood protection procedures. 

The theory of sea level changes is not so highly developed that satisfactory predictions 
can be obtained without observations. The density of observations is not great enough in 
either space or time to permit satisfactory interpretation without the use of theory. Thus, 
an awareness of many of the physical processes which produce changes in sea level is 


13 


necessary to make full use of the available information about sea level variability or the 
elevation of land surfaces referenced to a tidal datum. 

This report examines astronomical tides from an engineering standpoint, defines widely 
used tidal datums based on tide records, and presents tide statistics. Many features of water 
level records must be identified in the coastal zone that are not due to astronomical tides. 
The causes of these other phenomena are not examined in detail, but a few references are 
given for additional study. Other reports in the Coastal Engineering Manual (CEM) series 
will discuss the two major nonastronomical causes for sea level variability—storm surges and 
tsunamis. Tsunamis are discussed in Camfield (1980). 

A description of astronomical tide phenomena and water level records which illustrate 
astronomical tides and nontidal phenomena that affect the water level near the coast are 
presented in Section II. An introduction to the classical basis for tide prediction, used by 
the National Ocean Survey (NOS) of the National Oceanic and Atmospheric Administration 
(NOAA), and tide prediction services of other nations is presented in Section III. The newer 
concepts of tide analysis, based on the application of an admittance function (Munk and 
Cartwright, 1966; Zetler, Cartwright, and Munk, 1970; Godin, 1976), are not discussed in 
this report because these concepts are not yet used in the United States for official tide 
predictions. | 

Tidal datums are described in Section IV, with particular attention given to the 
distinction between the often confused datums of mean sea level (MSL) and the National 
Geodetic Vertical Datum (NGVD) of 1929, formerly called the Sea Level Datum of 1929. 
Sources of information about tidal datums and sample bench-mark indexes and descriptions 
are also identified. 

The establishment of datums near large inland water bodies at a significant elevation 
above MSL presents special problems. As a result of the increasing strength of the 
gravitational vector from the Equator to the poles, the distance between two level surfaces 
(defined as normal to the gravitational vector) decreases from the Equator to the poles. This 
factor must be accounted for in assigning a single elevation value to the equilibrium surface 
of a lake with a large extent in the north-south direction. Two systems of elevation 
adjustments are widely used; both systems and their application to the establishment of 
datums in the Great Lakes region are discussed in Section V. 

Variations in sea level relative to the land over periods longer than a year are discussed in 
Section VI. Although these changes are small within a year, their cumulative effects during 
the lifetime of many engineering structures can be significant. Long-term changes in mean 
water level can result from the withdrawal of subsurface water or minerals from the ground, 
increased loading of the ground by dams, deposition of sediment, or from long-term changes 
in the shape of the Earth. Even when the proximate cause of past changes in sea level 
relative to land is known, predictions of future changes cannot be made with great 
confidence. 


Several statistical characteristics of astronomical tides, such as the diurnal, monthly, 
annual, and predictable long-term variations in tidal heights are presented in Section VII. 
Some applications of these statistical data are discussed in Section VIII. 


Section IX provides a few recommendations for improving the statistical data in any 
revision of this work. 


Many technical terms used in the study of tides and tidal datums are defined in 
Appendix A. Statistical data described in Sections VII and VIII for all NOS reference 
stations and a few other locations are presented in Appendix B. Auxiliary tables needed for 
the full use of the tables included in Appendix B are given in Appendix C. 


Il. DESCRIPTION OF THE RECORDS 
1. Astronomical Tides. 

Several important features of the astronomical tide are shown by the record in Figure 1. 
This record appears as a series of nearly sinusoidal oscillations with an average period near 
12 hours and 25 minutes. Note that the amplitude of these oscillations varies from one to 
the next and that the average range of any two successive tide waves rises and falls with a 
cycle of about 2 weeks. If a much longer period of record were shown, a cycle with a period 
near 29 days would also be discernible. The largest amplitudes coincide approximately with 
the time of a new Moon and a full Moon. The lowest amplitudes occur when the Moon is in 
first or third quarter. There is an approximate reproduction of the curve after periods of 
14.5 and 29 days; i.e., periods of % and 1 full lunar month. Letters and symbols (in Fig. 1) 
indicating significant events (discussed in Sec. III) in the lunar orbit have been placed on the 
eraph (record). Lines connecting alternate highs and alternate lows have been drawn in the 
figure to show that the semidiurnal wave of greatest amplitude near N has become the 
wave of least amplitude near S. Both waves have nearly the same amplitude near E. 


The tidal curve in Figure 1 shows a classical semidiurnal tide. This tide behavior is the 
most common type along the U.S. Atlantic coast, and much American tide lore seems to 
have been derived with this type of tide phenomena in mind. Tidal curves, however, may 
have many other shapes. Astronomical tides for January 1963 at five locations are shown in 
Figure 2. These curves have been normalized with respect to maximum range for each sta- 
tion to show the shape of the various curves rather than the relative range of the tide at each 
location. Curve A for New York, New York, is another example of a semidiurnal tide. The 
two highs and two lows of each tidal day, approximately 24 hours and 50 minutes, are more 
nearly equal than in curves B, C, and D. Curve E for Pensacola, Florida, is a typical example 
of a diurnal tide. Only one high and one low are clearly discernible for each lunar day. The 
other curves illustrate intermediate types of tide. 


5 


MHW 


AA 
AANA) SN i 


MSL 


te 


17 2 25 
Days 


Figure 1. Tide predictions for Boston, Massachusetts, January 1963; predicted 
mean range 2.92 meters (9.58 feet). Note that the envelope of alternate 
high and alternate low tides, which shows the greatest range in the first 
part of the month, indicates the lesser range during the latter part of the 
month. Letters and symbols above the curves are: K= Moon above 
Equator; P= Moon in perigee; A= Moon in apogee; N = Moon farthest 
north of Equator; S = Moon farthest south of Equator; © = Moon in first 
quarter; ® = Moon in third quarter; O = full Moon; @ = new Moon. 


AAMAWAAAAAVATLMAEAAAAAAAAM A EU 
a 


13 \7 
B. Key Westf, Fla. 


MLW Tre jerry 


2i 
(C. Port Townsend Wash. 


Hoh AAAI AAAN A A A AANA al 
ee 


13 17 2! 
D. St. Petersburg, Fla. 


So URINE ee eee aU ION ON eas 
VATA ATV ATA AVA TVV UV VV V Ve 


13 17 
E. Pensacola, Fla. 


MHW 


MSL 
MLW 


Figure 2. Predicted tidal curves at five locations for January 1963, showing various 
astronomical tides. 


Two highs and two lows during each tidal day can be recognized in curves B and C for 
Key West, Florida, and Point Townsend, Washington, respectively. The amplitude of 
consecutive tide waves are very unequal, except for short periods near 15 and 30 January in 
curve B. Tidal curves of this type are called mixed tides. Curve D for St. Petersburg, Florida, 
is intermediate between the mixed and diurnal types. Two distinct, unequal lows and highs 
are recognizable on most days, but there are several days when one tide wave vanishes, 
however, the tide appears to stand for a time at an intermediate value between the daily 
high and low, although only one distinct high and low can be identified. This phenomenon 
is often called a vanishing tide. The tidal range is generally low where these tides occur in 
the eastern United States, and there has been some confusion about a proper method for 
treating tidal datums where a vanishing tide occurs (discussed in Sec. IV). 

The prediction procedure discussed in Section III will predict the variety of tidal curves 
shown in Figure 2. The theoretical discussion provides an explanation for this behavior. 
Discussions of tidal theory have shown that both water level observations and theoretical 
considerations are essential for satisfactory tide predictions. Water level records, even in the 
ocean, are affected by phenomena other than the astronomical tide. These other effects 
must be identified in the records (which also show astronomical tides) and removed from 
the water level record to define the astronomical tide. Often these other phenomena alone 
are of significant engineering interest. 

2. Water Level Records. 

Tracings from several U.S. Coast and Geodetic Survey (USC&GS) (now NOS) standard 
tide gage records are shown in Figure 3. The Portsmouth, Virginia, trace, obtained from a 
harbor well inland from the open sea, is relatively smooth, but a nontidal perturbation, 
presumably due to the wind, is indicated by an arrow above the curve near 0000, 13 August 
1955. The trace from Atlantic City, New Jersey, was obtained as a tropical storm passed to 
the east of the station. The predicted tide has been added for comparison. The tide gage at 
Atlantic City is located near the end of the Steel Pier in the open ocean. Thus, with an 
exceptionally open exposure, and in spite of the use of a stilling well, wind waves make a 
significant contribution to the record. Several small oscillations with periods of 5 to 30 
minutes are also clearly apparent. These short-period oscillations, but not the wind waves, 
are prominent in the trace obtained at Little Creek, Virginia. 

Figure 4 presents a different type of tide disturbance. All three of these records include 
water level disturbances, commonly called tsunamis, which are produced by undersea 
earthquakes. Note that the large amplitude tsunamis have periods of less than 1 hour, but 
the larger storm surges have periods of several hours. Disturbances with periods of 10 to 60 
minutes and ranges of less than 1 foot may be produced by either tsunamis or 
meteorological phenomena. 

Figures 3 and 4 were taken from analog records of the tides to show examples of 
perturbations which actually occur in tide records. Tides, tsunamis, and storm surges cover 


18 


18 20 22 2 4 6 Ce lOi2n mI4eouGeuleh 20) 122 2 1 E4 68 ON 2 4 6 
<— || Aug. 12 Aug. LINN) § ae 


Portsmouth , Va. 
12-13 Aug. 1955 


10 12 14 16 18 20 22 2 4 6 8 10 12 14 16 18 20 ; 
SS 4 Sept. 18 8e98 —<$— $e 


Atlantic City, N.J. 
14-15 Sept. 1944 


Scale 
18 20 22 2 4 6 8 10 12 14 16 18 20 2 2 4 6 8 10 12 14 16 
<— || Aug. 12 Aug. 13 Me), << 
Little Creek , Va. 
[2-3 Aug. (955 


Figure 3. Tracings from tide gage records. 


19 


Tide Gage Record Showing Tsunami 
LOS ANGELES (BERTH 60), CALIFORNIA 
23-24 May 1960 


Approx. Hours G.MT. 
10 11 212 13 14 #15 16 17 18 19 20 21 22 23 O 


Tide Gage Record Showing Tsunami 
ALAMEDA, CALIFORNIA 


Approx. Hours G.M.T. 23-24 May 1960 
1418 16 «17: «18 «19 2 2 22 2 +O 1 


+—— Gage Limit 


Tide Gage Record Showing Tsunami 
HILO, HAWAII 
23-24 May 1960 


Approx. Hours G.M.T. 
EN. RL AC e 9 10 1 


Figure 4. Sample tide records showing tsunamis (after Symons and Zetler, 1960). 


20 


similar ranges in amplitude. The periods of tsunamis are always much shorter than tidal 
periods. The periods of storm effects overlap the periods of both tsunamis and astronomical 
tides but are less regular. Most of the instruments which record analog records have since 
been replaced as standard instruments by digital gages which record the tide on a punched 
paper tape at 6-minute intervals. 

3. Tide Observations and Tide Record Analysis. 

Standard tide records are routinely analyzed by tabulating the time and height of each 
high and low astronomical tide and each hourly value. Most tide records compiled by the 
NOS are used for defining tidal datums and the harmonic constants used for tide prediction. 
Thus, a systematic analysis procedure is required for all records. Detailed instructions for 
tide gage operation and data analysis are given in a manual published by U.S. Coast and 
Geodetic Survey (1965). According to this manual “... the general trend of the curve, 
rather than the individual peaks ....” are to be considered in tabulating highs, lows, and 
hourly values. Thus, perturbations with periods of 2 hours or less should be smoothed in 
determining the high and low waters and hourly values. Perturbations with periods of several 
hours, such as that shown in the record for Atlantic City (Fig. 3), are included in the 
tabulations. It is necessary to filter short-period oscillations with periods less than 2 hours 
from the hourly records because they cannot be properly represented, and including them in 
the record would lead to errors in determining the harmonic constants used for tide 
prediction. To include the effects of storm surges with durations exceeding 2 hours in the 
records would facilitate the determination of the extreme high and low water level, and 
because large storm surges are not common or very regular, it would introduce no more than 
a trivial error in the determination of harmonic constants. Barbee (1965) presents an 
additional discussion of the more recent types of tide gages adopted by the NOS. 

An average of all hourly tidal heights in a given month is taken as the average sea level for 
that month. A 12-month average is taken as the average sea level of the year. 

4, Perturbations in Tide Records with Periods Much Longer Than the Tidal Period. 

Tide records include many perturbations with small amplitudes and periods much longer 
than those of the astronomical tide. These perturbations are more easily recognized if the 
astronomical tides are removed from the record by some type of numerical filter. The most 
effective filtering process is to subtract the predicted astronomical tide from the observed 
tide. The difference between the observed average daily sea level (average of the 24 hourly 
values) and the predicted daily mean at five tide stations is plotted in Figure 5. The 
differences between the observed and predicted tides along the Atlantic and gulf coasts tend 
to be less variable from May to September than during the remainder of the year. The 
positive difference between observed and predicted mean daily sea level for the year results 
from a slow rise in mean water level relative to the land, that is neglected in tide predictions. 

Figure 6 illustrates the annual cycle of sea level and the yearly variability in this cycle. 
Each plotted point represents the average tide departure from the established local sea level 


2| 


(6S6T ‘steH) LS6T Ut suoHes opp SOROSN 
p2}09]9s 1OJ onjea poyorpoid oy} woI TSW ATep paasesqo sy} yo aimjredaq -c am3ryq 


‘930 ‘gad “NV 


testi - 
Agel 


inl We? NO1S313VHD 


= 
ar, 
ale Pa 


I- 


a HO 43389 31L1N 


4 


\ 


AW QO Agave 


=] 
<= 


| M_. [| 


A ca i) 0 INIOd $1374 
pe 


(2 


ii BLE Titans 
eh 


ae A il | 


Eastport 
re Portland 


Boston 
Newport 


eee Cedar Keys 
==3] Pensacola 


Galveston 
# Port Isabel 


Figure 6. Observed monthly MSL at USC&GS Atlantic coast 
tide stations, 1930-40 (Harris, 1963). 


datum (in use in 1963) for a period of 1 month. The local sea level has been established for 
some earlier time periods as discussed in Section IV, and the sea is rising, relative to the 
land, in this area. Thus, the mean of the observed record lies slightly above the established 
local MSL. The vertical bars plotted above the curves indicate months in which hurricanes 
passed near the tide gage. In general, the official local sea level datum differs from the 
NGVD (discussed later) and the observed MSL of the period shown in the figure. 

Perturbations in sea level with periods longer than 1 year are shown in Figure 7. A 
general trend for rising sea leveis, relative to the land, is clearly evident at Honolulu, Hawaii, 
and Cristobal, Canal Zone; a trend toward falling sea levels, relative to the land, is shown for 
Yakutat, Alaska. The means for individual years meander above and below the trend line in 
an erratic fashion. The accepted explanations for the secular trends in sea level at these and 
other tide stations are discussed in Section VI. 

The sample tide graphs presented in this section show a variety of phenomena that were 
not well known to the scientists who developed the tidal theory (Sec. III) or the engineering 
definitions (Sec. IV). These examples, however, give useful background information 
concerning the phenomena which must be considered later in this report. 


23 


TIME ( yr ) 
1900 1910 1920 1930 1940 1950 1960 1970 


Yoakutat , Alaska 
20 


15 


HEIGHT (em) 


SCALE (cm) 


Honolulu, Hawaii 


Cristobol , Canal Zone 


Figure 7. Change in sea level with respect to adjacent land for Yakutat, 
Alaska, Honolulu, Hawaii, and Cristobal, Canal Zone (National 


Oceanic and Atmospheric Administration, 1974). 


Ill. THE TIDE PREDICTION EQUATION 
The astronomical tide results primarily from the interaction of the gravitational fields of 
the Earth, Moon, and Sun. The gravitational tide-generating force can be expressed, with 
any desired accuracy, as the sum of a number of periodic terms, determined from the 


astronomical parameters pertaining to the orbit of the Moon around the Earth, and the 


24 


orbits of Earth and Moon around the Sun. The response of the sea to this force cannot be 
determined solely from first principles. Good predictions, however, can generally be 
obtained from equations of the form 


h(t) = hg + 2 Ancos (ont - On) (1) 
where 
h(t) = tidal height at time, t 
On = frequencies determined from theory 


An = amplitudes 
= phases determined partly from theory and partly from measurements 
= height of the local MSL datum above the datum of reference 


os 
nd 


The rotation of the Earth about the Sun and the Moon about the Earth gives rise to 
primary variations in the tide-generating force with periods near | day and near 12 hours. 
The amplitude of these oscillations is modulated by the variation in direction and distance 
of the selected point on the Earth’s surface from the center of the Moon and the center of 
the Sun. The most prominent periods in the modulating terms are near 1 lunar month and 1 
solar year. Interaction between these oscillations leads to other prominent periods near 2 
weeks and near 19 years. Several of the more prominent astronomical periods, important for 
tide prediction, are listed in Table 1. 


Table 1. Astronomical periods affecting the tides (Schureman, 1941; 
Doodson and Warburg, 1941). 


Phenomenon Astronomical period 


@ 
Sidereal day (with respect to fixed stars) 0.997270 


Lunar day (with respect to the Moon) 1.035050 


Nodical month (north-south cycle) 27.212220 
Tropical month (vernal equinox) 27.321582 


Anomalistic month (perigee to perigee, distance) |} 27.554550 
Synodical month (phases of the Moon) 29.530588 


Eclipse year (with respect to the lunar orbit) 346.620 
Tropical year (vernal equinox) 365.242 
Anomalistic year (distance) 365.259 


Revolution of lunar perigee 

Revolution of Moon’s node (ecliptic) 
Saros cycle (recurrence of eclipses) 
Metonic cycle (recurrence of lunar phases) 


Revolution of solar perigee 209 centuries 


25 


The effect of astronomical periods longer than 1 year can be accounted for by 
regarding An and ©, as the sum of a mean value and a perturbation with a period on the 
order of 9 to 19 years. Thus, the practical prediction equation may be expressed in the form 


hys(t) = ho + = fny Ans cos (ont - Pny - Kns) (2) 


where hys(t) is the tide at station, s, during year, y, at time, t; Ans and Kngs are 
standardized amplitudes and phases for a particular location; and fny and vpy modify the 
amplitudes and phases for the particular year. The parameters fny, called the “node 
factor” and Pry, called the “equilibrium argument,” are determined from astronomical 
theory. Derivations and tabulations of yearly values for the period 1900 to 2000 are given 
by Schureman (1941). The subscript y indicates that the parameter may change yearly but 
is independent of location. The combined parameters fnyAns and (Yny + Kns) are 
determined from the analysis of tide records. A period of 369 days is generally chosen for 
analysis. The theoretically determined fny and vyny are then eliminated from the 
empirically derived factors to obtain Ans and Kns. The subscript s indicates that these 
parameters depend on the location of the tide station. The subscript n is a summation 
index. 

After the parameters fny, Ans» On; bry and Kns have been determined, equation (2) 
can be used for tide prediction without additional consideration of the theory of tides. 

The following discussion of the tide generation forces is not essential in understanding 
the remainder of this report; however, it provides an understanding of tide phenomena, 
useful in the interpretation of tide records, when no tide predictions are available. 
Derivations are given only to the extent that they provide insight for physical processes or 
mathematical techniques. Several references are cited to provide greater detail in the study 
of tidal theory. Most derivations are based on Schureman (1941). The discussion of 
shallow-water tides is based on Doodson and Wareburg (1941). 

1. The Tide Generation Force. 

Every particle of the Earth is subject to the gravitational fields of the Sun and Moon as 
well as the gravitational field of the Earth. This attractive force is inversely proportional to 
the square of the distance between the particle and the center of the distant attracting body. 

The universal law of gravitational attraction between any two bodies may be stated as 


Gm,m 
= iVeamn2, 
Fg = ‘waza (3) 
The gravitational force of the Earth for mass m;, may be obtained from equation (3) by 
letting Fg equal gm), d equal the radius of the Earth, a, where g is the gravitational 
acceleration of the Earth at the surface, and mg equals the mass of the Earth, E. Solving 
the resulting expression for G_ yields: 


Ca (4) 


By substitution from equation (4) for G into equation (3), letting M equal M2 be the 
mass of the Moon or Sun, and d the distance between their centers, the law which governs 
the gravitational force between them may be stated as 


0D : 


where F is the tide-generating force per unit mass. 

The forces responsible for tide generation can be visualized in Figure 8: let C be the 
center of the attracting body, Sun or Moon, O the center of the Earth, and P an arbitrary 
point at a distance r from the center of the Earth, and z the angle COP. The force along 
line OC attracting a unit mass at the center of the Earth to the other body is given by 


2M 
Foc = Pg (4) E (6) 
The force along line PC attracting a unit mass at P to the other body is given by 


fre = v6 (#) ¥ (2) 


Figure 8. Force diagram for the generation of astronomical 
tides (after Schureman, 1941). 


The vector difference between the forces described by equations (6) and (7) is the 
tide-generating force. To compute this difference, it is necessary to resolve the forces into 
components along a common set of axes. The most useful axes are defined by 
line OP, directed toward the center of the Earth, a line directed north-south and a line 
directed east-west in the plane, orthogonal to OP which passes through point P. The 
component of the tide-generating force, directed along a line normal to the surface of the 
Earth, acts only to cause a slight change in the effective value of g by about +0.0002 of the 
mean value. This perturbation in the effective gravitational attraction is too small to have 
any practical effect. The component of the tide-generating force normal to the Earth’s 


27 


radius is almost unopposed by other forces and produces an acceleration toward the 
sublunar point or the subsolar point; i.e., toward the point on the surface of the Earth at 
which the Moon or Sun is directly overhead. A similar analysis, carried out for a point on 
the opposite side of the Earth from the Moon or Sun would reveal a force which causes an 
acceleration toward the nadir of the Moon or Sun. 

Schureman (1941) shows that this horizontal component of the tide-generating force per 
unit mass, Fn, is given by 


Maz. sin Z 
E 


2 2 13/2 
d h- 2 (3) cosz+ (3) | 


Equation (8) applies to particles of the solid Earth and the atmosphere as well as to the 
waters of the sea. The magnitude of the Earth tides, as the tides in the solid Earth are called, 
are several orders of magnitude smaller than the sea tides, but they can be measured in 


Ena) &; - sinz (8) 


subterranean observatories (Melchior, 1966). Atmospheric tides are more readily measured 
‘than Earth tides, but are about an order of magnitude smaller than the periodic changes in 
pressure due to solar heating and very much smaller than the changes due to traveling storm 
systems. Earth tides and atmospheric tides rarely, if ever, have any importance to coastal 
engineers and are not discussed here in any greater detail. In equation (8), r is replaced 
by a, the mean radius of the Earth, in all subsequent developments. 

The binomial theorem can be used to convert the fraction in equation (8) into a power 
series in a/d. Since a/d is approximately 1.67 X 10°? for the Earth-Moon system, and 
4.26 X 10°° for the Earth-Sun system, only the first few terms of the series are needed. 


Thus, 
h a) 2 @) cosz + alee = Ilse} (3) COS Z 
* (3) (i) (Scost 2-1) +... (9) 


Substitution from equation (9) into equation (8) yields: 
3 
Fn = eae) E cos 2+ 34 (5 cos? 2 - 1)| sin Z (10) 
Equation (9) is derived from equation (8) by: 
(a) rewriting equation (8) in the form 
2 
Fn = ome [a- 2ca + oz) ma? = i sin z (11) 


where a = a/dandc=cosz. 


28 


(b) expanding (1 - ca + a? ) 3/2 by the binomial theorem to obtain 


wel. 2] 13) © 2]? 
1 3 |. 2cata + BO [-2ca+a 
BP plon ion Oui. (e 213 
B} “ay op [-2ca+ o?| ate (12) 


(c) collecting powers of a to obtain 
3 5 
1 + 3ca + 3 [502-1] G2 abo [703 - 3c | 03 ee (13) 


Since a = a/d < 1.67 X 10°”, terms in  a® may be neglected in comparison 
with a. Substituting the above expression into (a) and neglecting terms in a? yield: 


Dp = = fe {3(4) COS Z +3 (3) [5 cos? z - i} sin Z (14) 


Collecting terms in a/d yields equation (9). Trignometric identities may be used to convert 
the products of trignometric functions into sums of trignometric functions, with arguments 
which are sums and differences of the original arguments, to obtain 


Fn = eo al [sin 27eF 75 cos? z Sainz (15) 


Note that the tide-generating force is the horizontal component of the difference 
between the gravitational force of the Moon or Sun at the center of the Earth and the 
gravitational force of the same body at the surface of the Earth. Equations (10) and (15) 
show that this force is inversely proportional to the cube of the distance between the Earth 
and the other heavenly body. This explains why the Earth is affected more by the 
gravitational force of the Sun than the gravitational force of the Moon, but is affected by 
the tide-generating force of the Moon more than by the tide-generating force of the Sun. No 
other astronomical body exerts a significant tide-generating force on the Earth. 

The distances between the Earth and Sun and Moon are periodic variables. By expressing 
these in the form 


dla (=) (16) 


29 


where d is the mean distance, and d’ the deviation from the mean, the binomial theorem 
can be used to convert the variable part of the denominator in equation (15) into a power 


series in d’/d. Thus, 
a3 = 43 fi-s ee 6 (¥) BN 
d d 


a ' \2 
a4 = a4 fp-4($)+ 10 (4) ae 
d d 


The term d/d is a quasi-periodic function, whose amplitude for the Earth-Moon system 


(17) 


varies from approximately 0.04 to 0.07 with an average value of 0.055. For the Earth-Moon 
system, the amplitude of this term is about 0.017. Thus, only the first two terms of 
equation (17) need to be considered. The period of the variation in distance is the 
anomalistic year of 365.259 solar days for the Sun and the anomalistic month of 27.554550 
solar days for the Moon. The slightly higher tidal ranges when the Moon is nearest the Earth 
are called perigean tides. The slightly lower tidal ranges when the Moon is farthest from the 
Earth are called apogean tides. The effect of the variable distance from Earth to Sun is much 
smaller and does not often receive any special recognition. Trignometric identities can be 
used to combine the trignometric expressions arising from the variability of distance with 
the trignometric functions which depend on the angle z. 

The angle z is obviously a function of the latitude of P, and the hour angle which 
results from the Earth’s rotation beneath the Sun and Moon. It is also a function of the 
declination of the Sun and Moon. The importance of these latter factors is further explained 
below. 

2. The Declination of the Sun and Moon. 

It is well known that the equatorial plane of Earth is inclined to the plane of the 
revolution of the Earth around the Sun by an angle of 23°27’. Asa result, the Sun appears 
to be directly above the Equator at the vernal equinox, 23°27’ north of the Equator at the 
summer solstice, above the Equator again at the autumnal equinox, and 23°27’ south of the 
Equator at the winter solstice. Figure 9 shows that the high point of the tidal bulge due to 
the Sun will be north of the Equator in the Northern Hemisphere by day and south of the 
Equator by night near the summer solstice. The tidal bulge due to the Sun is centered over 
the Equator at the equinoxes. Thus, the contribution of the Sun to the two daily tidal 
bulges will be nearly equal in both hemispheres near the times of the equinoxes when the 
Sun is above the Equator. When the Sun is near the northern or southern limits of its orbit 
as seen from the Earth, a fixed point on the tidal bulges which it produces in each 
hemisphere will be unequal. 


30 


Figure 9. Tide-producing forces. The arrows represent the magnitude and 
direction of the horizontal component of the tide-producing 
force on the Earth’s surface: A—when the Moon is in the plane 
of the Equator, the forces are equal in magnitude at the two 
points on the same parallel of latitude and 180° apart in 
longitude; B—when the Moon is at north (or south) declination, 
the forces are unequal at such points and tend to cause an 
inequality in the two high waters and the two low waters of a 
day (Bowditch, 1958). 


It is not so widely known that the plane of the lunar orbit is inclined to the plane of the 
terrestrial orbit by an angle of 5°8’. Thus, the Moon may appear to be as much as 5°8’ north 
or south of the Sun. If the Moon appears to be 5°8' north of the Sun near the summer 
solstice when the Sun appears to be 23°27’ north of the Equator, the Moon will appear to be 
23°27' + 5°8' or 28°35’ north of the Equator. This would correspond to a time of 
maximum inequality between the two daily semidiurnal tides. If the Moon appears to be 
5°8' south of the Sun when the Sun is 23°27’ north of the Equator, the Moon will be only 
18°19’ north of the Equator. Although this corresponds to the maximum diurnal equality 
of the fortnight, the inequality will be less than for the case when both Sun and Moon are 
near the most northern part of their orbits. The Moon, like the Sun, appears to be over the 
Equator twice within each north-south cycle, which for the Moon consists of 27.212220 
solar days. This period is called an anomalistic month. When the Moon is above the Equator, 
the two tidal bulges each day due to the Moon are nearly equal in each hemisphere. The 
maximum inequalities in the tides occur on or near the days on which the Moon is at the 
northern or southern extremes of its orbit. The complete lunar orbit of the Earth, measured 
with respect to the vernal equinox requires the slightly longer tropical month of 27.321582 
solar days. The two nearly equal tidal bulges which occur when the Sun is over the Equator 
are called equatorial tides. The unequal bulges which coincide with the northern and 
southern limits of the lunar orbit are called tropical tides. 

The functions of z, required by equation (15), can be expanded as a polynomial of 
trignometric functions depending on the periods discussed above. These polynomials can be 
converted into simple sums of trignometric functions by the repetitive use of trignometric 
identities or the binomial theorem. 

These expansions yield two sets of trignometric functions, one depending on the Moon 
and the other on the Sun. A few terms are common to both series. 


3| 


3. Interaction of Solar and Lunar Tides. 

The most prominent modulation of the tidal range is that associated with the phase of 
the Moon as shown in Figure 10. When the Sun and Moon are generally in line as at new 
Moon or full Moon, the tide-generating forces of the Sun and Moon are in phase. The two 
results are additive and the resulting tides are called spring tides. When the Sun and Moon 
are separated by about 90° with respect to the Earth, as at the first and third quarters of the 
Moon, the tide-generating force of the Sun is in opposition to that of the Moon. The 
resulting smaller tides are.called neap tides. Spring and neap tides are sometimes referred to 
as syzygy tides and quadrature tides, respectively. 


al Spring or Syzygy Tides Spring or Syzygy Tides 


Earth Earth San 


Full Moon 


Neap or Quadrature Tides 


First Quarter 


‘e 


Moon in Quadrature 


Last Quarter 


© 


Moon in Quadrature 
Figure 10. Spring and neap tides during a lunar month (after Schalowitz, 1964). 


4. Net Variation in Tidal Range. 
The amplitudes of diurnal or semidiurnal tides are modulated by several factors: 
(a) Distance between Earth and Moon (apogee) (perigean or apogean tides). 
(b) Declination of Moon (equatorial or tropical tides). 
(c) Declination of the Sun (equinoctial or solstitial tides). 
(d) Phase of the Moon (spring (syzygy) or neap (quadrature) tides). 

The astronomical tides are higher than normal when perigean and spring tides are 
approximately in phase. The highest astronomical tides at many locations occur when there 
is a near coincidence of spring, perigean, and tropical tides. Wood (1978) discusses the 
coincidence of coastal flooding with perigean-spring tides and presents an extensive 
collection of data to show that flooding and coastal erosion tend to be more than normally 
severe when spring and perigean tides are in near coincidence. Wood suggests that the tide 
prediction equations should be expanded to a higher order of accuracy for those dates in 
which there is a near coincidence of spring and perigean tides. 


a2 


5. Shallow-Water Tides. 

The astronomical tides generated in the deep ocean act (in general) like progressive waves 
as they travel across shallow parts of the continental shelves and into estuaries, where the 
tides are most important to man. Whenever the amplitude of the tide wave is of the same 
order of magnitude as the water depth, the crest of the wave travels more rapidly than the 
trough. As a result, the time interval from low water to high water in the upper reaches of 
an estuary is generally shorter than the time interval from high water to low water. The 
complete cycle from low water to high water to low water, however, remains unchanged. 
The asymmetry in wave speed results in a nonsymmetric wave shape which can be described 
in terms of trignometric functions by adding harmonics of the fundamental waves. If the 
original wave shape were sinusoidal with frequency w, the additional terms due to shallow 
water would have the form nw, where n= 2,3,4,... . The tide wave, however, is a 
composite of several trignometric terms of nearly the same frequency, and as a result, the 
structure of the shallow-water terms is complex. The principle can be illustrated, but not 
rigorously established, by considering the estuarine tide to be expressed as a power series of 
trignometric functions. Thus, if the open-sea tide could be expressed as 


Yo = Acos wt + B cos ¢t (18) 


where w and ¢ are arbitrary frequencies, the estuarine tide might be expressed in the 
form 


Yor a Ona Tava anyon tee (19) 
evaluated at a slightly later value of t. Note that y? has the form 
ye = A2 cos? wt + B? cos? gt + 2AB cos wt cos ot (20) 


Introduction of suitable trignometric identities yields: 


yz = me + B2) + uw cos 2wt + B? cos 2¢t) 


+ AB [cos (w- ¢) t + cos(w+¢) t] (21) 


and y3 can be expanded in a similar way. This procedure can be extended to consider more 
irignometric terms in y,. 

The important principles to note are that the tide wave is distorted as the tide is 
propagated in shallow water. The resulting hydrograph can be described by introducing new 
trignometric functions whose frequencies are sums and differences of the frequencies used 
to describe the tide in the open sea. The fundamental frequencies to be considered in this 
expansion are those that correspond approximately to one or two cycles per day. 


33 


The number of trignometric terms needed to describe the astronomical tide varies with 
the location. More terms are needed where the tide must travel a great distance over shallow 
water than when the tide station is near the open sea. Additional terms may be needed to 
obtain an adequate representation when the tidal range is large rather than small. In the 
United States, 37 standard constituents are found to be adequate for most tide stations 
(Schureman, 1941). 

6. Classical Harmonic Constituents of the Tide. 

Tidal constituents regularly used by the NOS, with their frequencies expressed as degrees 
per hour and the symbols normally associated with each, are given in Table 2. The symbols 
may be used to identify the frequency, amplitude, or phase of the constituent. Symbols 
with subscripts 1, 2, 3, 4, 6 or 8 indicate the approximate number of cycles per tidal day; 
symbols without subscripts indicate periods much longer than 24 hours. 


Table 2. Tidal constituents commonly T Soar the National Ocean aa (NOS). 


115.936 
58.984 


A quantitative definition of the type of tide (diurnal, semidiurnal, or mixed) may be 
expressed by 


A(K,) + A(O,) 


= K(M,) + AG) cou 


34 


where A(K;), A(O;), etc., represent the amplitude of constituents, such as Kj , O,. The 
type of tide is specified as 


semidiurnal, if R < 0.25, 
mixed, if 0.25 < R < 1.50 , and 
diurnal, if 1.50 < R 


The constituents identified by K, and Oj, in equation (22) are generally the dominant 
components of the diurnal tide; constituents identified by Mg and Sg generally indicate 
the largest components of the semidiurnal tide. 

Although the 37 terms listed in Table 2 are adequate for most tide stations in the United 
States, Zetler and Cummings (1967) have shown that 114 constituents are needed for 
Anchorage, Alaska. A similar number of constituents are needed to describe the tides at 
several European ports. 

7. Tide Analyses. 

The harmonic constants of the tide, the amplitudes Ans, and the phases kns, of 
equation (2) must be determined empirically from the analysis of tide records. Until the 
early 1960’s, the constants had to be derived by combining the hourly tidal heights in 
special ways for each constituent or series of constituents as described by Schureman 
(1941). Harmonic constants, based on 369 days of tide observations and corrected for the 
influence of astronomical phenomena with longer periods, are generally used by tide 
prediction agencies of other nations for practical tide predictions. The probability that a 
significant error might result from the actual pattern of storms during the period of data 
analyzed does not appear very great (it apparently has not been given much attention). It is 
unlikely that a standard analysis would ever be based on a period which contains a major 
storm surge. Harris, Pore, and Cummings (1965) reported that a full set of coefficients could 
be obtained at one pass by a least squares analysis of the tide records for a period of 369 
days in terms of the frequencies indicated by the theoretical analysis. 

At many locations, the water level variations near the coast frequently show a diurnal 
cycle due to land-sea breezes and annual and semiannual cycles due to seasonal changes in 
temperature and prevailing winds. It would be difficult, in the empirical analysis, to separate 
the average value of these meteorological cycles from the gravitational cycles with the same 
periods and there is little practical reason for doing so. Both the meteorological and 
gravitational cycles with periods of 1 day and 1 civil year (approximately an anomalistic 
year) may be properly called astronomical cycles as both are controlled by astronomical 
factors. The meteorological component of the annual cycle is generally much larger than the 
gravitational component. 

The harmonic constants for a tide station may be altered when the character of the 
channel between the tide station and the open sea is changed by dredging, silting, or 


35 


construction which modifies the free travel of waves from the open sea. Zetler and 
Cummings (1967) list the harmonic constants for Philadelphia, Pennsylvania, as determined 
from observations in 1946, 1952, and 1957. The amplitude of major constituents vary by 
about 4 to 8 percent of the minimum value, and phases vary by about 5° to 40°. Philadelphia 
has one of the longest, most constricted channels from the open sea of any U.S. port. The 
variability of the harmonic constants at Philadelphia is believed to be near an upper limit for 
the United States. 

Derivations by the tide prediction equation, in greater detail, are given by Schureman 
(1941), Doodson and Warburg (1941), Pillsbury (1956), Defant (1961), Dronkers (1964), 
Ippen (1966), and Godin (1972). 


IV. TIDAL DATUMS 

Mean sea level (MSL) was widely adopted as a primary datum many years ago on the 
assumption that it could be determined accurately and simply from the records of any 
reasonably well-exposed tide gage. The mean elevation of the sea surface is an equipotential 
surface by the definition of equipotential. In principle, it might be considered that MSL 
should be established by integrating the tide record over a long period. In practice, this is 
not only difficult but may be undesirable because tide records frequently contain 
irregularities of a local and nonperiodic nature due to meteorological effects and tsunamis 
(see Figs. 3 and 4). In addition, MSL determinations are based on the average of the hourly 
determinations of tide level. Disturbances of the type shown in Figures 3 and 4 have often 
been smoothed before tabulating the tide record. 

The ideal length of record to be considered is generally taken as about 19 years, partly to 
account for the cycles of 18 to 19 years in tidal amplitude and phase, but mostly to average 
out the more important meteorological effects. The existence of trends in the elevation of 
the sea relative to the land for periods longer than 19 years is not explicitly recognized in 
selecting a period of 19 years. The existence of long-period trends, however, is a major 
factor in requiring revisions of the official datums at intervals of about 25 years. The MSL 
must often be estimated when less than 19 years of data are available. An integral number of 
years should be used, if possible. If less than 1 year of data must be used, the preferred 
period is 29 days or a multiple of 29 days. Methods for minimizing the errors in short-period 
determinations of sea level are provided by Marmer (1951) and Swanson (1974). 

Briefly, their technique compares the available record for MSL or mean tide level with 
the same period of record at nearby stations with similar tide forms with a record duration 
of 19 years or longer, to identify any long period anomaly and to assume that any anomaly 
in the short record is the same as that at a station with long records. Marmer advocates 
transferring the mean tide level and the mean tide range; Swanson recommends separate 
comparisons for each datum of interest. 

If it is impractical to consider hourly values, a good approximation is provided by the 
half-tide level, sometimes called mean tide level (MTL). 


36 


The half-tide level is a tidal datum midway between MHW and MLW. The MTL may be 
above or below MSL by an amount which depends on the relative importance of the diurnal 
components of the tide. 

Several other datums are defined with respect to the tides (Fig. 11). Formal definitions 
are presented in Appendix A. Each datum is more suitable than MSL for a restricted class of 
problems, and all depend on the tidal range and the characteristic shape of the tidal curve. 
Corrections may be necessary to the observed data when these datums are determined from 
less than 19 years of record. 


9 
(d) 


Figure 11. Illustration of tidal datums (Los Angeles, California (Outer Harbor), 
Janurary 1973; mean range = 3.78 feet or 1.15 meters). 


The most important of these datums for most navigation-related activities are MLW for 
the Atlantic coast and mean lower low water (MLLW) for the Pacific coast, defined as the 
average height of the tide at low water or lower low water when all tides for a 19-year 
period are considered. MLLW is being adopted as the standard datum for all locations as 
NOS charts are revised (Swanson and Thurlow, 1979). 

When planning the development of land above MSL, the datums MHW and mean higher 
high water (MHHW) may be more useful than the low water datums. They are defined in a 
manner analogous to that used for MLW and MLLW and require similar corrections when 
based on short series of observations. The MHW or MHHW datums are often used to define 
the seaward limit of private property. 

The difference between MHW and MLW is called the mean range of the tide where the 
tides are semidiurnal. The difference between MHHW and MLLW is called the diurnal range 
or the great diurnal range of the tide. This is identical with the mean range for diurnal tides. 
The range of the tide may change drastically within short distances as shown in Figure 12. 
This is not an extreme example. Because the range of tide, and, consequently, the high and 
low water datums may vary greatly with short distances, measurements referred to these 
datums are not suitable for comparing elevations at different locations unless both 
comparisons are based on the same bench mark. 


37 


NOTE: THE CURVE BETWEEN POINTS 1S AN APPROXIMATION OF ACTUAL VALUES 
AND SHOULD BE USED FOR ILLUSTRATION PURPOSES ONLY. 


‘ 
: —— d MEAN TIDE LEVEL Fo} ts 


mt 
3 
a 


POINT Soe ne 


' 

' 

' 

' 

' 

' 

' 

' 

' ral 

t wt 

wt 

1 eas x 
z a * 2 
st oh 2 
et 4, -! 
. a z= 
a 
o 2 

' 

' 

‘ 

' 

' 

' ¢ 

' 

' 


Figure 12. Relationship between NGVD and several 
tidal datums between Montauk and The 
Battery (Swanson, 1974). 


1. The National Geodetic Vertical Datum (NGVD). 

A reference for comparing land elevations is often needed for locations near the coast 
where no tide observations are available and at interior locations where tide observations are 
impossible. By the mid-1920’s, several first-order leveling lines connecting the Atlantic and 
Pacific coasts, and many tide gages on both coasts, had been surveyed. In first-order leveling, 
each line is surveyed at least twice, once in each direction, and the maximum allowable 
height difference in surveys is 4 millimeters per Vk or 0.017 feet per Vk, where k is 
distance measured in kilometers or statute miles (National Oceanic and Atmospheric 
Administration, 1974; 1977b). These surveys consistently show sea level to be higher on the 
Pacific coast than on the Atlantic coast and higher in the north than in the south on both 
coasts. It seemed desirable to have the zero of the geodetic leveling net coincide with local 
MSL wherever both quantities were known. Thus, a general adjustment was made in 1929 in 
which it was assumed that the geodetic and local sea levels were equal to zero at 26 selected 
tide gages in the United States and Canada (Rappleye, 1932). The differences previously 
computed were treated as errors and were distributed over the network of observation 
points. The locations of the tide gages used are shown in Figure 13. The period of the 
observations from U.S. tide stations used in defining the reference datum and the height of 


38 


(ZE6T ‘eAatddey s013e) 6Z6T FO 
(CAON) wy [PoHI9A OMepoay [euoHEN oy SuTYystqeyso Ur posn suotyeys opt} Jo uoBoOT “ET omnstq 


0012 a WW 


INIISNNY ‘1S AI YY0I9 
YNIONYNYIS ene 


YIOIYSNId —IXOTI4 05310 NYS 


O40Id NYS 


$93038§ OISIINYYY NYS 
paziun 


XvdIIVH ae d 


TULYIS SILYOIYNY 


INIOd YFHLV4 YIANOINYA 


pponung 
1u3dny JONIUd 


39 


MSL at all stations relative to Galveston, Texas, is given in Table 3. The reference datum 
defined in this manner was originally called the “Sea Level Datum of 1929.” The term 
“National Geodetic Vertical Datum” (NGVD) of 1929 was adopted in 1963, and is 
identified as MSL on many U.S. Geological Survey (USGS) charts and Corps of Engineers 
documents. It has been well established since 1929 that the elevation of the mean water 
level with respect to the land varies with time as a consequence of land subsidence and 
emergence and a slow redistribution of the waters of the Earth. Braaten and McCombs 
(1963) published a new determination of a geodetic datum of national scope based only on 
stations for which a series of 19 years of tide data was available. The variations in sea level 
revealed by this survey are shown in Figure 14. Some leveling lines in regions of known 
subsidence and suspected subsidence have been resurveyed many times since 1929. An 
example of a study of this type is given in National Oceanic and Atmospheric 
Administration (1973). New surveys of this type are based on elevations assigned to the 
more stable parts of the continent by the 1929 adjustment, and they lead to new 
determination of the elevations of bench marks in the subsiding or emerging areas. Thus, the 
elevation assigned to a specified bench mark may vary over a period of many years because 
of changes in the elevation of the solid surface of the Earth or changes in the mean elevation 
of the nearby surface of the sea. 

Shalowitz (1964), Dracup (1974), Berry (1976), and Plasker (1976) present histories of 
the development of geodetic networks in the United States. Dracup and Plasker describe 
plans for a new readjustment of the National Vertical Control Network scheduled for 
completion about 1982 or 1983. 

2. Tidal Datum Bench Marks. 

Index maps of tidal datum bench marks and lists of the established references between 
the NGVD of 1929 and the local MSL are available for each State from NOS. Several maps 
are required for States with long coastlines. A sample index map and related index map 
numbers are shown in Figure 15 (a and b). Individual bench-mark sheets, describing two or 
more bench marks established near each tide observation point and the relation between the 
various tidal datums, are reported for each tide observation station. A sample of an NOS 
tidal bench-mark sheet is shown in Figure 16. 

A general trend toward rising sea levels, relative to the land (see Fig. 7), is evident along 
all of the U.S. coastline south of Alaska and in southern Alaska. As a result of this trend, the 
MSL datum changes with each new epoch used for defining tidal datums. The NGVD, 
however, is a fixed surface whose elevation does not vary with time, although elevations of 
fixed points (as referred to NGVD) may change. 

It is well established that the elevation of the Earth’s surface may rise or fall as a result of 
earthquakes or volcanic activity. The land surface in many areas has been sinking during this 

century as a result of the removal of petroleum, water, or other underground resources. 
Slow rises of the land surface also occur. The extent of these changes are measured by new 
determinations of the elevation of the land surface relative to the NGVD. This is 
accomplished through new surveys from regions which are believed to be more stable. 


40 


Table 3. Tide data used in establishing the National Geodetic Vertical Datum (NGVD) 


of 1929 (from Harris and Lindsay, 1957; Rappleye, 1932). 


Station 


Galveston, Tex. 
Biloxi, Miss. 
Pensacola, Fla. 

Cedar Key, Fla. 

St. Augustine, Fla. 
Fernandina, Fla. 
Brunswick, Ga. 
Norfolk, Va. 

Old Point Comfort, Va. 
Annapolis, Md. 
Baltimore, Md. 
Atlantic City, N.J. 
Perth Amboy? 
Boston, Mass. 
Portland, Maine 
Yarmouth, Nova Scotia 
Halifax, Nova Scotia 
Father Point, Quebec* 
San Diego, Calif. 

San Pedro, Calif. 

San Francisco, Calif. 
Fort Stevens, Oreg. 
Seattle, Wash. 
Anacortes, Wash. 


Vancouver, British Columbia 
Prince Rupert, British Columbia 


1 Relative to Galveston, Texas. 


Period of record used 


1 Dec. 1903 to 29 Nov. 1906 


1882; 1884; 1896-98 


1924-26 (compared with Key West) 


1892-93 

1892-93 
1898-1923 (25 mo) 
1904-05, 1908-09 
1908-1915 
1853-1878 


Two 1l-month series 1875, 1888 


1903-1921 
1912-26 


Aug. 1921 to July 1923 
1915-25 


1906-08 

1924-25; 1927-28 
1898-1913 
1925-26 
1899-1917 


1 June 1921 to 31 May 1924 


ee 


levation of local MSL! 


(m) (ft) 


0.00 
-0.30 
-0.16 
- 0.26 
- 0.89 
- 0.66 
-0.52 
- 0.46 
-0.92 
- 0.56 
-0.59 
+0.10 
+0.03 
+0.23 
+0.39 
+0.16 
+0.26 
+0.66 
+1.08 
+1.02 
+1.12 
+1.94 
+1.57 
+1.48 
+1.64 
+1.90 


2No tide gage located on Perth Amboy; a bench-mark elevation was held as determined by 
leveling from the tide gage at Sandy Hook, New Jersey. 


3Dates for the Canadian tide gage are unavailable. 


4Pointe Au Pere. 


4| 


| 
"| 


\ 
3 " i 
\ 
\ 


i: 
LN 
ce 

2 Ss 
oe Qe ose 
eC ea 
Se ee 
TREK 


: SS 
= E \ af \ 
} yer SS , \e : \ UE 
Lo eo ° mie Gee che Be 
v as OQ Be ee 
i ne el oe 
= oh > \ Neer 
| (i 
\ 
Q 
H M 


LIN ike AO 
SAY 


(KE 
hss 
vee cp ae \ \ i 


¢2 
a 
Y ee) 
ay SSE OTe EMS | e 
os i ii 
\ 


CHE ES 
REA AIA 


TR nee 


: eX 
ibs 


oY 
ca 


A 


Nes 


Pan 
a 


pee 


cle 
ee) 
« \A 
4 
a 


LF 
hie 


42 


observations is higher than the geoid surface determined by leveling, assuming equality at Portland, Maine 


Figure 14. First-order level net (1963) showing MSL variations. A plus variation shows that the local MSL plane from tide 
(from Braaten and McCombs, 1963). 


0 


| 
| 
| 
| 
\ 


Figure 15a. Sample NOS index map of tidal bench-mark locations. 


43 


IVA: Atblage oe Beats 


INDEX MAP 
NUMBER 
(See reverse side) 


Pineg Povelk 


254 


OCOVONAWVPwNY 


Crandall, St. Marys River 
Chester, Bell River 

Fernandina Beach, Amelia River 
Fort Clinch, Amelia Island 
Fernandina Beach, Atlantic Ocean 
Kingsley Creek (S.A.L. R.R. BR.) 
Amelia, South Amelia River 
Nassauville, Nassau River 

Mink Creek Entr., Nassau River 
Half Moon Istand, Nassau River 
Boggy Creek, Upper Nassau River 
Sawpit Creek Entr., Nassau Sd. 
Sawpit Creek 

Simpson Creek Entr., Nassau Sd. 


Fort George Silene River” 
a Yd 
Mayport, St. Johns River 
Pablo Creek 

Fulton, St. Johns River 

Mill Cove, St. Johns River 
Dame Point, St. Johns River 
Chaseville, St. Johns River 
Trout River, St. Johns River 
Jacksonville (Corp of Engineers Dredge Depot) 


Little Pottsburg Creek, Arlington R., St. Johns R. 
Jacksonville (MeGrttrr-ternnnpe-de.), St. Johns R. 


s ACes tr 
Gn we 


Ortega River Entrance 
Orange Park, St. Johns River 
Mandarin, St. Johns River 
Green Cove Springs, St. Johns River 
East Tocoi, St. Johns River 
Palmetto Bluff, St. Johns River 
Palatka, St. Johns River 

Shell Bluff, Crescent Lake 

Crescent City, Crescent Lake 
Buffalo Bluff, St. Johns River: 
Welaka, St. Johns River 
Georgetown, St. Johns River 


g-4 Bal 0's k 
SIB Sebastian Sk 


| 


INDEX MAP 
NUMBER 


e7- 


SSSLRRESSLSSELSRESSES 


aa 
wi 


2S 


Juniper Club, Lake George, St. Johns River 
Astor and Volusia, St. Johns River 
De Land Landing. St. Johns River 
Sanford, Lake Monroe, St. Johns R. 
Lake Jessup, St. Johns R. 
Lake Harney Outlet, St. Johns River 
St. Augustine 
Summer Haven, Mantanzas Inlet 
Daytona Beach 
Allenhurst, Indian River 
Titusville, Indian River 
Gepe Canaveral Har be r EC atance 
Cocoa, Indian River 
Ft. Pierce Breakwater 
Binney Dock, Ft. Pierce Iniet 
Ft. Pierce (Municipal Docks) 
North Jetty, St. Lucie Inlet 
Sewall Point, St. Lucie River 
Great Pocket, St. Lucie Inlet 
Canal Pt., West Palm Beach Canal 
Belle Glade, Hillsboro Canal Entr. Locks, 
L. Okeechobee 
South Bay, North New River Canal Entr. Locks 
Lake Harbor, Miam: Canal Entr. Locks, 
L. Okeechobee 
Moore Haven, Old Locks in Caloosahatchee Canal 
Taylors Creek, L. Okeechobee 
Jupiter Inlet 
Port of Palm Beach 
Palm Beach (Ronee Pier) 


C9 Fort Lauderdale, Bahia ar Yacht Club 


lh 7B Jiort Lit dertele, Mitdle BRiiyen 


Fort Weuderdsie® New River 

Port Everglades, Lake Mabel 
Intracoastal Canal, L. Mabel 

Indian Creek Golf Club, Biscayne Bay 
Miami (79th Street Causeway) 

Miami Beach (City Bie!) 


ame, Biscoyne Bay 


NOTE: Unnumbered red dots on the index map on the reverse 
side indicate nearest tidal bench mark locations in the State of 
Florida, Part || (Florida Keys) and in the State of Georgia. 


Tidal bench mark locations in the State of Florida 


are shown on three index maps as follows: 
East Coast 
Florida Keys 
West Coast 


Part |. 
Part Il. 
Part III. 


Tiaal bench mark data are available for the above locations and may 
be obtained by writing to the Director, Coast and Geodetic Survey, 


Washington 25, D.C. 


In requesting these data, please refer to botn 


the index map numbers and the names of the particular localities in 


which you are interested 


Figure 15b. Sample of related NOS index map numbers (see Fig. 15a). 


44 


CVE Port Laude Kip SER Coastal (Ja terway 


FLORIDA - I - 74 


U.S. DEPARTMENT OF COMMERCE 
NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION 
NATIONAL OCEAN SURVEY 


TIDAL BENCH MARKS 


Miami Beach (City Pier) 
Lat. 25° 46'.1; Long. 80° 07'.9 


BENCH MARK 4 (1928) is a standard disk, stamped "NO 4 1928", set vertically 
in the south face of the south post in the north-south fence line around a large 
city water tank. It is about 66 feet north of the extended centerline of 
Commerce Strect, 36 feet west of the centerline of Jefferson Avenue, and 1/2 
foot above ground level. Elevation: 5.62 feet above mean low water. 


BENCH MARK 6 (1931) is a standard Corps of Engineers disk, stamped "BM NO 6," 
set in top of a 2-inch pipe surrounded at top with a 12-inch by 18-inch manhole 
frame with a removable cast iron cover, directly in centerline of a blacktop 
driveway which parallels Government Cut. It is at the U.S. Government Reser- 
wation on the north side of Government Cut, about 186 feet east of U.S. Engineers 
flagpole and 13 1/2 feet west of the center of a road junction. Elevation: 

7.13 feet above mean low water. 


BENCH MARK 7 (1937) is a standard disk, stamped "7 1937," set in the top of 
the northwest side of the concrete base to the east post of entrance gate to 
drive to the Corps of Engineers Office Building. It is about 100 yards south of 
intersection of Washington Avcnue and Biscayne Street, 8 feet east of the extended 
eenterline of the Avenue and 1/2 foot above ground level. Elevation: 5.03 feet 
above mean low water. 

\ 

BENCH MARK 9 (1955) is a standard disk, stamped "9 1955," set in top of con- 
erete deck along northedge of City Pier near the east end of Biscayne Street. 

It is about 122 yards east of the west end of pier, 39 feet northwest of the 
mortheast corner of the ladies rest room and 1/2 foot south of south face of 
Borth guardrail. Elevation: 11.29 feet above mean low water. 


BENCH MARK 10 (1956) is a standard disk, stamped "NO 10 1956," set on top 
of the northwest corner of the concrete base of light pole No. 166D6 about 68 
yards west of the junction of Biscayne Street and Alton Road. It is near the 
morthwest corner of the South Shore Recreation Park about 62 feet east of the 
west edge of the bulkhead on the water front and 9 1/2 feet northeast of the 
east edge of the north entrance to the Recreation Building. Elevation: 5.23 
feet above mean low water. 


BENCH MARK 11 (1956) is a standard disk, stamped "NO 11 1956," set in top 
ef north corner of a concrete base which supports a 6 inch metal post near the 
City of Miami Beach Warehouse. It is near the intersection of Alton Road and 
First Street about 21 1/2 feet southwest of the southwest curb of Alton Road 
and 9 feet northwest of the northwest corner of the warehouse building. Ele- 
wation: 4.92 feet above mean low water. 


Mean low water at Miami Beach is based on 19 years of records, 1941-1959. 
Elevations of other tide planes referred to this datum are as follows: 


Highest tide (observed) 

September 8, 1965 6 
Mean high water 2 
Mean tide level 1 
NGVD, 1929 0 
Mean low water 0 
Lowest tide observed 

(March 24, 1936) -1 


Figure 16. Sample NOS sheet of description of tidal bench marks. 


45 


The NGVD of 1929 is defined or definable everywhere by first-order leveling. The other 
tidal datums are defined with respect to a specific tide gage location. Thus, when a low 
water datum, half-tide level datum, or any tidal datum other than the NGVD of 1929 is 
used, the location at which the datum applies should be specified. In areas where subsidence 
or emergence is' known to be in progress, the date of the survey used should also be given. 
Reference datums have also been established by many States and local jurisdictions. 

The relation between the various datums discussed in this section at the reference tide 
stations (where NOS publishes daily tide predictions) are presented in Table 4. Note that 
older low water datums, below the MLW or MLLW, continue to be used at a few locations. 
The locations of these tide stations are shown in Figure 17. 

In 1977, a new regional datum called the Gulf Coast Low Water Datum (GCLWD) was 
adopted by National Oceanic and Atmospheric Administration (1977b; 1977c). This datum 
is defined as the MLLW where the tide is mixed and MLW in regions with diurnal tides. This 
new datum, which will become the chart datum for the Gulf of Mexico, is desirable because 
of the frequent shifts in the type of tide along the gulf coast (Fig. 18). This will end 
numerous discontinuities in the chart datum along the gulf coast. Because of the generally 
small tidal ranges in the Gulf of Mexico, and the sparcity of data, the importance of these 
discontinuities was not fully recognized until the past decade. 

The adoption of MLLW and the mean diurnal tidal range as the standard everywhere will 
simplify the definition of tidal datums but would require numerous associated changes. 

The Environmental Protection Agency (EPA) has recently asked the Corps of Engineers 
(through court action) to propose an extension of its jurisdiction limits beyond MHW to 
include entire salt marshes. Provost (1976) argues that this will require the introduction of a 
new datum defined as the average of the highest predicted tide for each year of the 19-year 
cycle. 


V. SPECIAL DATUMS FOR THE GREAT LAKES 
1. Early Great Lakes Datums. 

Special datums for the Great Lakes region, based on the assumption that the mean water 
level in each lake defines a level surface, have been in use for more than a century. Moore 
(1939a; 1939b) presents a history of the various datums used by the U.S. Lake Survey 
before 1939. The earliest datum widely used was based on the high water of 1838. Other 
widely used datums based on low water levels were established for the years 1877 and 1903. 
A system of datums for the Great Lakes adopted in 1935 was defined as elevations above 
sea level at New York, New York. Moore (1939a) reported that the level lines cannot be 
traced back to specific sets of observations in the coastal region, that the site may not have 
been New York as often stated, and that the datum used may have been half-tide level and 
not MSL. Moore (1939a; 1939b) also recognized the importance of crustal motion in 
changing the relative height of bench marks in the Great Lakes region. The entire region is 
rising with respect to sea level. The rate of rise is greatest north of Lake Superior and 


46 


Station 


Eastport, Maine 
Portland, Maine 
Boston, Mass. 
Newport, R.I. 
New London, Conn. 

Bridgeport, Conn. 

Willets Point, N.Y. 

New York, N.Y. (The Battery) 

Albany, N.Y. 

Sandy Hook, N.J. 

Breakwater Harbor, Del. 

Reedy Point, Del. 

Philadelphia, Pa. 

Baltimore, Md. 

Washington, D.C. 

Ilampton Roads, Va. (Sewells Point) 
Wilmington, N.C. 

Charleston, S.C. 

Savannah River Entrance, Ga. (Ft. Palaski) 
Savannah, Ga. 

Mayport, Fla. 

Miaini Harbor Entrance, Fla. 

Key West, Fla. 

St. Petersburg, Fla. 

St. Marks River Entrance, Fla. 

Pensacola, Fla. 

Mobile, Ala. 

Galveston, Tex. (Ship channel) 

San Juan, P.R. 


San Diego, Calif. 

Los Angeles, Calif. (Outer Harbor) 
San Francisco, Calif. (Golden Gate) 
Humboldt Bay, Calif 

Astoria, Oreg. (Tongue Point)? 
Aberdeen, Wash. 

Port Townsend, Wash. 

Seattle, Wash. 

Ketchikan, Alaska 

Juneau, Alaska 

Sitka, Alaska 

Cordova, Alaska 

Seldovia, Alaska 

Anchorage, Alaska 

Kodiak, Alaska 

Dutch Harbor, Alaska 

Swecper Cove, Alaska (Adak Island) 
Massacre Bay, Alaska (Attu Island) 
Nashagak Bay, Alaska (Clarks Pt) 
St. Michael, Alaska 

Honolulu, Hawaii 


D 
D 
D 
D 
D 
D 
D 
D 
D 
Db 
D 
D 
D 
D 
D 
D 
D 
D 
D 
D 
D 


‘Except as footnoted, chart datum is MLW for the Atlantic and gulf coasts and MLLW for the Pacific coast. 


21) = diurnal; M= mean. 


Table 4. Datums for reference tide stations.! 


MTL | NGVD | MLLW | MLW 


0.00 
0.00 
0.201! 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 
0.00 


Extremes of record 


Interval for establishment 


of datum 


1941-61 
1941-59 
194159 
1941-59 
1941-59 
1967 (1 yr) 
1941-59 
1941-59 
1941-59 
1941-59 
1953-61 
1957-61 
1941-59 
1941-59 
1941-59 
1941-59 
Jan. 1969 to Nov. 1973 
1941-59 
1941-59 
1941-59 
1941-59 
1941-59 
1941-59 
1948-59 
1941-59 
1941-59 
1941-59 
1941-59 


1941-59 

1941-59 

1941-59 

1962 

1941-59 

1955, 1956 
1972-74 

1941-59 

1941-59 

1966-72 

1941-59 

1965-74 

1971-74 

1964-68 

1935-36 

1935-38 

1958-60; 1944, 1949 
1950, 1952, 1960 
1958 


1941-59 


3\ILLW and MHHW were not routinely derived for Atlantic and gulf coast stations for the 1941-59 epoch used for establishing most of the datums. 


4Boston Low Water Datun (adopted about 1927). 


5Estimated value. 
®Data unavailable at the time of compilation. 


71atums and the mean range for Philadelphia were revised in July 1979 based on observations for the period 1969-77. 
8 ultimore Low Water Datum (adopted 1922 by NOS and COE based on observations 1903-1921). 


Mean River Level. 


10Charleston Low Water Datum (used since 1905 by NOS, and by COE in May 1929). 


My ow Water Datum at the Presidio, Golden Gate, San Francisco, is based on miscellaneous observations before 1907. 


47 


Apr. 1962 to Dec. 1963 


-s]se09 oILoeg pure ‘jnd ‘onuEpY ‘suorjeys apy oayeredurod pue souadajor Jo UOBIOT “LT gins y 


yam Aay 
® Q. nrROUDH 
—@ 


19 “AH We * 


(Gs2e= \ ‘ b Ss o8aig Les 


— 

4 \ (am 0) 17 
‘. 

-/ 


Baer 


48 


Apalachicola - 
Pensacola 


Sabine Pass Calcasieu Pass 


DIURNAL 


MIXED 

DIURNAL 

Tampa Bay 

Rio Grand DIURNAL 
Charlotte Hbr. % 
PN 
3 
f O f Mexico vA 
Key West 


Figure 18. Areal extent of tidal types and locations of stations with illustrated tidal curves. 


decreases in a southerly direction (Walcott, 1975). Thus, for a constant water volume in 
Lake Michigan, the water level would be rising relative to the land in Chicago and falling 
relative to the land in the Straits of Mackinac. Moore (1939a) concluded that the elevation 
of the Great Lakes above sea level were not known with any precision, and that sea level as a 
datum for precise elevations in the Great Lakes region was of doubtful value. 

Ramey (1952) discussed the changes in levels of the Great Lakes, identifying changes due 
to the construction of various navigation facilities and changes due to variable winds and 
variable rainfall. Although not discussed by Ramey, the construction of storm sewers, 
clearing of forests, and other actions which affect the speed with which rainfall reaches the 
lakes, change the natural hydrologic cycles of the lakes and may also change the lake levels. 

An international coordination committee, representing the U.S. Army, Corps of 
Engineers and the Departments of Transport, Mines, and Technical Surveys and Resources 
and Development, Canada, was established to develop an identical set of hydraulic and 
hydrologic data for the Great Lakes basin for use. by both countries. This committee 
adopted a Great Lakes datum called the International Great Lakes Datum (IGLD) of 1955 
(Coordinating Committee on Great Lakes Basin Hydraulic and Hydrologic Data, 1961). This 
committee is composed of representatives from the U.S. Army, Corps of Engineers, the 
National Oceanic and Atmospheric Administration (NOAA), and the Department of the 
Environment in Canada. It is the first datum for the Great Lakes region to gain wide 
acceptance in both the United States and Canada. 


49 


The IGLD is based on slightly different principles than the NG VD, with small differences 
in the elevations assigned by each system to the same point. The differences will rarely have 
any practical importance in engineering calculations when only one system of elevations is 
used. Recognizing that there is a difference between the systems and that both have a logical 
basis will reduce the possibility of error. The different systems are discussed below; detailed 
explanations are in Feldscher and Berry (1968), Bomford (1971), and National Oceanic and 
Atmospheric Administration (1974; 1977b). 

2. The Definition of Elevation. 

When two points at approximately the same latitude and longitude are displaced from 
one another in the vertical, the elevation of the higher point above the lower is adequately 
defined as the component of the distance between them along a line normal to a level 
surface passing through one of the points. This definition is not adequate when the two 
points are separated by a considerable distance in the north-south direction. Difficulty arises 
because the apparent gravity at the surface of the Earth is the resultant of two distinct 
forces—a force toward the center of the Earth described by equation (3) and the centrifugal 
force due to the Earth’s rotation. The centrifugal force, Fe, acts outward along a line 
parallel to the equational plane. Its magnitude is expressed with good approximation by 


Fe = -w? 


acos@ (23) 
where w is the angular frequency of the Earth’s rotation, a the radius of the Earth, 
and ¢ the geographic latitude. As illustrated in Figure 19, the resultant force, i.e., the 
apparent gravitational force, is directed toward the center of the Earth only at the poles 
where the force, Fc, vanishes and at the Equator where F¢ and Fg are parallel; the 
apparent gravitational force is generally implied in engineering discussions unless it is clear 
that this is not the case. 

Since the universal gravitational force is directed toward the center of the Earth, and the 
centrifugal force is directed outward from the polar axis, the apparent gravity has its 
maximum value at the poles and its minimum value at the Equator. 

A level surface is defined as a surface normal to the local gravitational vector. Since the 
gravitational vector is not, in general, directed toward the center of the Earth, sea level 
cannot be a spherical surface. Newton showed in 1687 that the figure of the Earth must be 
given approximately by an ellipsoid of revolution (Feldscher and Berry, 1968). The exact 
shape of this ellipsoid is determined by the requirements that the MSL be a surface which is 
everywhere normal to the apparent force of gravity. The resulting surface has a radius which 
is larger at the Equator, where the apparent gravitational force is a minimum, than at the 
poles where the gravitational force is a maximum (as shown in Fig. 20). The difference 
between the polar and equatorial radii of the level surfaces increases with elevation above 
MSL. As a result, the differences between two specified level surfaces increase from pole to 


50 


Figure 19. Schematic illustration of apparent gravity. The force Fg, is 
everywhere directed toward the center of the Earth, and is 
nearly constant in magnitude; F¢ is parallel to the equatorial 
plane and decreases from a maximum at the Equator to zero at 
the poles. The resultant, Fag, illustrated for only near the 
middle of the first quadrant, is directed toward a point in the 
equatorial plane removed from the center of the Earth. 


Figure 20. Equipotential or “‘ievel” surfaces (from Feldscher and Berry, 1968). 


5 | 


Equator. The surface of a large water body which is not influenced by wind or currents will 
be level, whether at sea level or at a plateau several hundred meters above sea level. The 
vertical distance between the surface of an elevated body of water and sea level, however, 
will be less when measured at the northern extremity than when measured at the southern 
extremity. It would be awkward to quote different elevations for a single level surface as a 
function of the path used by surveyors in measuring the elevation. Therefore, corrections 
have been developed to account for the divergence of level surfaces from pole to Equator. 
These corrections, called orthometric corrections, lead to the assignment of the same value 
to the height of a level surface regardless of the latitudes at which it is measured. The 
correction is a function of the mean latitude, the difference in latitude, and the mean 
elevation of the line of levels used in the measurement. Orthometric corrections are used in 
the definition of the NGVD to reduce the uncertainties of surveying the network of 
geodetic lines. 

Orthometric corrections do not provide all of the information needed for hydraulic 
calculations, since the gravitational force active on any level surface is higher at the poles 
than at the Equator. Thus, the energy required to lift a given mass between two level 
surfaces increases from Equator to pole. It is convenient in hydraulic calculations to define 
the difference in elevation of two points in such a way that the energy required to lift a unit 
mass from the lower elevation to the higher one is independent of the path followed in the 
elevation changes. Heights computed in this manner are called dynamic heights. The 
dynamic height difference, H, between two level surfaces is given by 


h 
1 
H = —-| ¢(¢) dh (24) 
aad et é 


where g,. is the value g at a latitude of 45°, g(¢) the actual gravity at latitude 
¢, and h the orthometric height. When the concept of dynamic heights was first 
introduced and when running the levels used to define the IGLD, values of gravity 
computed according to standard formulas for g as a function of latitude were used in 
computing dynamic heights. With recent improvements in gravimeters, it would be possible 
to use observed values of gravity in computing dynamic heights. 

Note from the above explanation that if the orthometric and dynamic elevations of a 
point at the Equator are equal and both are 1,000 meters above sea level, a point with the 
same dynamic elevation over the pole will be beneath the point with the same orthometric 
level, which will be only 995 meters as measured above sea level as measured at the pole. 

3. The International Great Lakes Datum (1955). 

The Great Lakes Basin and St. Lawrence River were treated as an integral system in 

defining the IGLD. The zero of the system was established as the average of all hourly water 


52 


level readings at Father Point (Pointe Au Pere) Quebec, for 11 years of available records 
between 1941 to 1956. Although additional records were available, this period was selected 
as representing the most reliable data. First-order level lines were run from Father Point to 
Kinston to establish the elevation of Lake Ontario. 

It was assumed that the mean water level of Lake Ontario from June to September 
(1952-58) defined a level surface. First-order leveling was run from western Lake Ontario to 
eastern Lake Erie to define the elevation of Lake Erie. The mean water level of Lake Erie 
from June to September (1952-58) was assumed to define a level surface. First-order levels 
were run from western Lake Erie to southern Lake Huron to establish the level of Lakes 
Michigan and Huron. Lakes Michigan and Huron are assumed to have the same level because 
of the wide and deep connection of both lakes at the Straits of Mackinac. First-order 
leveling was run from northern Lake Huron to eastern Lake Superior to establish the level of 
Lake Superior. As with Lakes Ontario and Erie, the mean water level from June to 
September (1952-58) was used to establish the datum for the entire shoreline of each lake. 
All calculations were made to a resolution of 0.001 foot. Elevations assigned in the IGLD 
(1955) do not, in general, agree exactly with elevations assigned to the same bench marks in 
the NGVD system based on orthometric leveling. The differences, however, have never 
exceeded 2 feet. 


VI. LONG-TERM VARIATION IN MEAN SEA LEVEL 

Although MSL with respect to the land is a relatively stable reference surface, it varies 
wregularly with time (see Fig. 7) and location. In general, the sea level is either rising with 
respect to the land or shows no discernible trend at low latitudes, and is falling with respect 
to the land at northern latitudes. The variability in sea level during this century, as revealed 
by many tide gage records in the United States, is clearly shown in Figures 21 to 25 and 
Table 5. In Figure 21, the data points for New York are connected by straight lines to 
facilitate recognition of both the general trend and the variation about this trend. Records 
for other stations in the figure are shown as point values only to demonstrate that, although 
the general trend and longer perturbations are similar at all locations, there is also a great 
deal of scatter with the shorter perturbations. The southernmost station (Charleston) is 
repeated in Figure 22 and three additional stations are added. Again, a general trend toward 
rising sea levels is clearly apparent. All records are highly correlated with respect to some 
perturbations, particularly the high sea level of the late 1940’s, but not with all perturbations. 
The message is repeated for the four stations in the Gulf of Mexico (Fig. 23). 

Records for three stations on the west coast of the conterminous United States and for 
Honolulu are shown in Figure 24. The same upward trend and general similarity of the 
perturbations about the trend are revealed. 

A change in this general trend is seen in Figure 25 for Alaska. The record from the 
northernmost station (Skagway) shows a clear trend toward declining sea levels relative to 
the land; the record from the southernmost station (Ketchikan) shows a great deal of scatter 
but no clear trend. 


<8) 


Table 5. Trends and variability of yearly MSL through 1972 (from National Oceanic and o— Administration, 1974). 


Location 


Eastport, Maine 
Portland, Maine 
Portsmouth, N.H. 
Boston, Mass, 
Woods Hole, Mass. 
Buzzards Bay, Mass. 
Newport, R.I. 
Providence, R.I. 
Montauk, N.Y. 

New London, Conn. 
Port Jefferson, N.Y. 
New Rochelle, N.Y. 
Willets Pt., N.Y. 
New York, n.Y.* 
Sandy Hook, N.J. 
Atlantic City, NJ. 
Lewes, Del. 
Philadelphia, Pa. 
Baltimore, Md. 
Annapolis, Md. 
Washington, D.C. 
Solomons, Md. 
Hampton Roads, Va. 
Portsmouth, Va. 
Charleston, S.C. 
Fort Pulaski, Ga. 
Fernandina, Fla. 
Mayport, Fla. 
Miami Beach, Fla. 


Key West, Fla. 
Cedar Key, Fla. 
Pensacola, Fla. 
Eugene Island, La. 


Galveston, Tex. (Pier 21) 


San Diego, Calif. 

La Jolla, Calif. 

Los Angeles, Calif. 
Alameda, Calif. 

San Francisco, Calif. 
Crescent City, Calif. 
Astoria, Oreg. 
Seattle, Wash. 

Neah Bay, Wash. 
Friday Harbor, Wash. 
Ketchikan, Alaska 
Sitka, Alaska 
Juneau, Alaska 
Yakutat, Alaska 


Honolulu, Hawaii 
So Canal Zone 


1957-58 
1935-39 


1965, 1967-69 
1959 


1947-56, 1967 
1959, 1972 


1921-22, 1970-71 


1923-36, 1940-47, 1950-52 
} 1921-22, 1959-60 


1969 


} 1970 


1926-38 


1971-72 


1954-55 


gee of a least squares line of regression: 


Exy - (2x) (Ef, 
Ex? - (2x)"/, 


where 
x = date 
y = height of yearly MSL 
= number of yearly MSL values 


2 Standard error of estimate (standard deviation from line of regression); 
; : 
By - GY, - (xy - FEN.) 
n-2 


Entire series 


Standard error 
of trend? 


ariability? 


standard error of slope: 


S, = = 
b= Vv Ix? - Ce 


where 
Sy. x = standard error of estimate. 


41893-1920, Ft. Hamilton; 1921-72, The Battery. 


54 


dard error | Variability 


—+— New York, N.Y. 
Portland, Maine 
Baltimore, Md 
& Chorleston, SC 


0 
1830 1900 


1910 1920 1930 1940 


1950 1960 1970 
Yeor 


Figure 21. Variation in annual MSL at New York, New York (The Battery); 


Portland, Maine; Baltimore, Maryland; and Charleston, 
South Carolina. 


—— Chorleston, S.C. 
+ Mayport, Fla 
e Miomi Beach, Fla 


™  Cedor Key, Fla. 


Feet 


{e) 
1890 1900 


:910 1920 1930 1940 


1950 1960 1970 
Year 


Figure 22. Variation in annual MSL at Charleston, South Carolina; 
Mayport, Miami Beach, and Cedar Key, Florida. 


55 


All Stations Other than Galveston (ft) 


0.2 


0.9 


0.8 x Cedor Key, Flo. 

& Pensacola, Flo 

+ Eugene Islond, La. 
0.7 — > Golveston, Tex. 


fo) 
an 


to} 
uo 


° 
e-) 


° 
w 


0.1 
f) 
1890 1900 1910 1920 1930 1940 1950 1960 1970 
Yeor 
Figure 23. Variation in annual MSL at Cedar Key and Pensacola, Florida; 
Eugene Island, Louisiana; and Galveston, Texas. 
09 
0.8 
0.7 
06 
05 
Bs 
uw 


03 


+ Seottle, Wash 

—x— Son Francisco, Colif 
© San Diego, Calif. 
46 Honolulu, Hawaii 


02 


fe) 
1890 1900 1910 1920 1930 1940 1950 1960 1970 
Yeor 


Figure 24. Variation in annual MSL at Seattle, Washington; San Francisco 
and San Diego, California; and Honolulu, Hawaii. 


56 


Galveston (ft) 


-~- Ketchikon, Alaska 
—+— Skogwoy, Alaska 


Ketchikan (ft) 
Skagwoy (ft) 


1910 1920 1930 1940 1950 1960 1970 
Yeor 


Figure 25. Variation in annual MSL at Ketchikan and Skagway, Alaska. 


Figures 21 to 25 and some additional tide data are summarized in Table 5. Trends and 
variability of the annual MSL are shown for 50 NOS tide stations for the period of record 
through 1972 and for the common period 1940 to 1972. All but two stations south of 
Alaska show a rising trend when the full period of record is considered. The Alaska stations 
in this table, other than Ketchikan, show a trend toward falling sea level over the same 
period. 

Tide gage records from many other stations show much the same pattern of changes as 
shown by the NOS records. Hicks (1978) summarizes data for the conterminous States for 
an additional five generally homogenous regions. The overall national trend is 1.5 dynamic 
millimeters per year with generally higher values along the mid-Atlantic coast and lower 
values along the Pacific coast. 

During the past 6,000 years, worldwide sea level has changed much more slowly. There is 
considerable controversy as to whether sea level peaked one or more times during this 
interval, or whether it gradually approached its present high elevation. Resolution of this 
highly contested question may be of little practical concern to coastal engineers. It is more 
important to note that proponents on both sides of the controversy would agree that sea 
level has not been more than 3 or 4 meters above present elevations during the last 6,000 
years. Higher stands, up to 100 meters above present sea level, occurred much earlier in 
geologic time. 

During the present period of a worldwide trend of rising sea level at midlatitudes, tide 
gage records show that the coasts of Scandinavia, the British Isles, Canada, and Alaska have 
experienced falling sea levels. 


57 


1. Explanation of Sea Level Trends. 

The worldwide increase in sea level, occuring between 16,000 and 6,000 years ago, is 
generally attributed to the increase in the volume of water in the oceans as a result of 
melting of the ice sheet from the last glacial stage. Much of the evidence for this explanation 
is summarized by Walcott (1975). The concept of worldwide changes in sea level due to 
melting ice is generally referred to as the glacioeustatic rise. 

The trend toward falling sea levels, relative to high latitude landmasses, is generally 
explained as a regional glacioeustatic adjustment of the Earth’s crust to the removal of the 
ice overburden. As the ice sheet accumulated, its increased weight caused a downward 
deformation of the Earth’s crust in the glaciated area and a compensatory rise in peripheral 
zones. With the removal of the excess weight, the glaciated areas gradually rebounded 
toward their former shape, leading to emergence of these land surfaces relative to the water. 
Walcott (1972) summarizes much of the evidence of the glacioeustatic adjustment. 

The downwarping was a maximum near the centers of the ice sheets and decreased 
toward the edges. Because of upwarping beyond the edge of the ice sheet, the rebounding of 
the Earth’s crust in some regions may be associated with subsidence in areas not covered by 
the ice. The glacioeuostatic adjustment during and after the period of glaciation, was 
therefore nonuniform and this factor may explain much of the nonuniformity of recent sea 
level changes. 

Other factors, however, must also be considered. Rather dramatic vertical movements of 
the Earth’s surface may result from earthquakes and volcanic eruptions. These changes are 
called tectonic adjustments. 

Continued slow increase in sea level during the last few thousand years may be partially 
attributable to delayed isostatic response to the loading by higher sea levels on continental 
shelves (Wellman, 1964; Bloom, 1967). Some of this rise in sea level may also be due to 
retreat of coastal glaciers. According to Donn, Farrand, and Ewing (1962) an additional 
increase of about 60 meters (200 feet) could still occur if the Greenland and Antartica ice 
sheets were to melt. 

A more subtle and, in certain cases, a more important factor affecting modern sea level 
relative to the land, is subsidence of the Earth’s surface, often as a result of the withdrawal 
of subsurface water, petroleum, gas, minerals, or the imposition of excessively heavy loads, 
such as buildings, dams, and occasionally water. Swanson and Thurlow (1973) discuss the 
evidence of subsidence along the Gulf of Mexico coast as determined from tide 
measurements. Poland and Davis (1969) present examples of subsidence due to the 
withdrawal of fluids in many parts of the world, and provide an extensive bibliography of 
case studies where coastal land fringes are flat. Small changes in relative sea level can 
inundate broad expanses of low-lying coasts. Even where steeper backshore gradients limit 
inundation, measurements have indicated that small changes in relative water level can 


accelerate erosion of coastal dunes, and over a period of years be responsible for a major 


58 


shift in shoreline position (Hands, 1976). Lofgren (1969) discusses many examples of land 
subsidence due to the application of water. Although subsidence due to this cause can be 
troublesome in many continental locations, it is not likely to affect the relative elevation of 
land and sea in the coastal zone. 

Worldwide changes of sea level during the past few thousand years have been summarized 
by Chappell (1974), Morner (1976), Pirazzoli (1976), and Pouchet (1976). Each of these 
references provides improved comprehension of the subject and supplies perspective for 
modern measurements. 

2. Conclusions and Recommendations. 

This brief examination of the records for sea level variability in this century and over the 
past few thousand years demonstrates that the sea level has been changing for as long as any 
type of records exists. The general trend toward rising sea level at midlatitudes and falling 
sea level at northern latitudes has been continuing for many centuries. Many factors 
contribute.to the changes and, except for subsidence due to the removal of subsurface fluids 
and other minerals, there appears to be little reason for believing that future predictions can 
be made with great confidence. The optimum procedure to use for any essential 
extrapolation depends on the reason for extrapolation. For structure design, extrapolation 
of observed trends for the next 100 years is perhaps the most conservative policy. Extrapo- 
lation, however, should always be based on the best available data. 

3. Data Sources for Detailed Studies. 

The NOS maintains a running summary of the monthly MSL, the mean and extreme high 
and low waters of the month, and many other tidal statistics. Photocopies of these records 
may be obtained from NOS upon request. A sample NOS summary of tide level and sea level 
is provided in Figure 26. This particular sample was selected because it shows several 
realistic characteristics of the records. For example, few observations may be missing in a 
month where enough data are collected to provide a meaningful estimate of the tabulated 
quantity. In these cases the estimate is shown in parentheses. Erroneous data may be 
entered in the record and not immediately detected; e.g., repairs to a gage may cause a small 
shift in gage zero that is not measured until the next visit of a survey party. In these cases, 
the incorrect data are ruled out and corrected values entered. Because tide level and sea 
level are entered on the same sheet in this sample, it is readily seen that although MSL and 
MTL are highly correlated, they are different. Even where annual means are considered, 
MTL may be above MSL in some years and below MSL in others. 

The National Geodetic Survey (NGS) (part of the National Oceanic and Atmospheric 
Administration) continually relevels various survey lines throughout the United States. 
Elevation changes between surveys may be used to map the extent of vertical crustal 
movement. If the engineer needs information on vertical changes for a particular problem 
area, the request to NGS should specify uncorrected data to compute vertical change. For 
many geodetic purposes, it is necessary to combine a mixture of time-scrambled data; 


59 


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60 


adjustments desirable to maximize coverage and regional consistency may be undesirable for 
calculating local elevation changes (Holdahl, 1975). Adjusted level surveys should, therefore, 
be compared only if the nature of the adjustments is fully understood. 


VII. STATISTICAL DESCRIPTION OF THE PREDICTED TIDE 
1. Introduction. 

A computer program which uses equation (2) for the prediction of hourly tidal heights 
and the times and heights of high and low waters, was developed by Harris, Pore, and 
Cummings (1965). Pore and Cummings (1967) published a Fortran version of the program. 
In their program the hourly tides for 1 month are predicted first, then the time and height 
of high and low tides are determined by refining the calculations near the extreme hourly 
values to obtain the required accuracy in time and height. Stored tables are used for the 
trignometric functions. A version of this program used by NOS for preparing the published 
tide tables uses 2,048 angular steps in one quadrant of 90°. Times of high and low water are 
calculated to the nearest minute. The choice of mean water level used by NOS in the 
program is arbitrary. In their preparation of tide tables, MLW or MLLW is used as the datum 
of tabulation and tidal heights are rounded to the nearest one-tenth of a foot. When 
predictions are made for comparison with gage records it is convenient to use the gage zero. 
For the theoretical study in this report the local MSL is used; thus, ‘the mean value of the 
predicted tide is zero. 

Calculations are made for each of the 50 NOS reference stations listed in Table 4. Since 
NOS publishes tide predictions only for the reference stations, predictions for other loca- 
tions are obtained by modifying the tide predictions for the reference stations (the proce- 
dure is explained in the NOS Tide Tables). The information needed to compute the tides 
by equation (2) is available for only a few nonreference stations. 

To provide insight for the probable accuracy of the inferred tide predictions and the 
inferred tide statistics, this report includes calculations for a few nonreference stations 
where the necessary harmonic constants are available. These stations are listed in Table 6. 
The accuracy of predictions for these stations is likely to be a little better than the average 
accuracy for all stations, because at many locations the parameters used to adjust the 
reference station values to the specific locations have been based on a series of observations 
of 29 days. Even shorter periods of record have been used for a few locations. Two versions 
of the tide prediction program are used; both involve changes in the NOS version to provide 
additional output not wanted for the published predictions, and to delete unneeded output. 
2. Tide Hydrographs. 

One version of the program is used to tabulate and plot the predicted tides for a 1-month 
period for each NOS reference tide station to display characteristics of the daily and 
monthly cycles at each location. Plots for a few nonreference stations for which harmonic 
constituents are available are included to provide perspective for the accuracy of the tide 


6| 


Table 6. Comparative tide stations, 


Station Reference station | Normalizing] MTL | NGVD| MLLW| MLW | MHW | Record __| Interval for establishing 
factor! Highest datums 


Allantic City, N.J. Sandy Hook N 2. si y 4. i 1941 to 1959 


Naples, Fla. St. Marks H rs ; 2.2 1966 to 1968 
Crescent City, Calif. Humboldt Bay U i i y 4 1934 to 1941 


Southbeach, Oreg. Humboldt Bay 7 Kl a df b 1968 to 1973 


Friday Harbor, Wash. Port Townsend Ci : z b 4 5 it 1941 to 1959 


1\ = mean tidal range; D = diurnal tidal range. 
2 Missing data. 

3Local datum is MLW. 

Estimated record. 

5Local datum is MLLW. 


predictions inferred from the reference stations. Figures 1 and 2 are based on the output 
obtained with this program. Hydrographs for all reference tide stations and a few others are 
provided in Appendix B. The scale for each plot is adjusted to allow the extreme range of 
the 19-year epoch to occupy the full vertical expanse of the graph. The reason is to show 
the variable waveforms of the astronomical tide, not to provide quantitative data in 
graphical form. The position of the datum planes MLLW, MLW, MSL, MHW, and MHHW is 
shown on each graph as a measure of scale. The mean range, as indicated on the graph and as 
tabulated in Appendix C, provides the vertical scale. In general, the changes in tide 
hydrographs with distance along the shore are slow and continuous from Eastport, Maine, to 
Galveston, Texas, and from San Diego, California, to Alaska. One notable exception is 
Baltimore, Maryland, where the hydrograph resembles those for the Gulf of Mexico coast 
more than those for nearby Atlantic coast locations. All predictions for the Atlantic and 
gulf coasts in this set are for January 1963. All hydrographs in Appendix B for the Pacific 
coast are for January 1973. 


3. Graphs Displaying Other Tide Characteristics. 

A second version of the tide prediction program is used to prepare tide predictions for 19 
successive calendar years to cover all periods up to and including 19 years (see Table 1). The 
detailed output is suppressed in this version of the program, but the results are summarized 
in statistical form. One form of the summary is shown in Figure 27 which gives the annual 
and the 19-year (metonic) cycles for Sandy Hook, New Jersey.-Plots A to H in Figure 27 
are defined below. 


(a) Plot A shows the predicted annual cycle of mean water levels in feet as defined by 
the monthly mean of the predicted tides as averaged over the 19-year period. 


(b) Plot B shows the predicted MSL for each year in the metonic cycle. The variability 
in annual MSL cannot be predicted by any established procedure; therefore, the annual MSL 
has been held at zero in these calculations. This constant plot is included only to emphasize 


that long-term changes in sea level have not been considered in these calculations. 


62 


SANDY HOOK, NEW JERSEY 


0.5 
0.0 PEG eR ERS BESSY Xx«KK MM KK KKK KKK KKK XX 
=5.5) 
123456786910 1t2 6 69 7 79 
A. MONTH OF THE YEAR B. YEAR (1963-1981) 


MEAN SEA LEVEL 


“12385676910 12 Bu 69 7 79 
MONTH OF THE YEAR D. YEAR (1963-1981) 
RANGE © o& DIURNAL TIDE © @ MEAN TIDE X= STD DEVIATION 


123W¥5678910 12 6H 69 7 79 
: MONTH OF THE YEAR F. YEAR (1963-1981) 
LOW WATER ® «=nean ® = MEAN Loven X= MINZMUM 


00900000 
XxKXxXxXxXKXxXX 


79 


12345678910 12 64 69 74 
G. MONTH OF THE YEAR H. YEAR (1969-1981) 


HIGH WATER = MAXIMUM @ © WEAN HIGHER =X = WERN 


Figure 27. Annual and 19-year cyclical distribution of tide parameters. 
See text for discussion. 


63 


(c) Plot C is the annual cycle in tidal range. Three measures of the range have been 
used: the standard deviation of all computed hourly values, the mean tidal range, and the 
mean diurnal tidal range. These data are normalized with respect to the computed mean 
range for the Atlantic coast and the computed diurnal range for the gulf and Pacific coasts. 
In general, the standard deviation shows the least variability with season and the diurnal 
range shows the most. Calculations were first made for each month, and the monthly values 
were averaged for 19 years. 

(d) Plot D shows the variability of each measure of range for the metonic cycle. The 
anticipated 19-year cycle is apparent for each measure. These data also are normalized with 
respect to the computed mean daily range. 

(e) Plot E gives the annual cycle of calculated low water parameters. The lowest point 
for each month represents the lowest predicted tide for that month in any year of the 
metonic cycle. The upper point, indicated by an x, represents the mean predicted low 
water for that month, when all predicted low waters of the 19-year period are considered. 
The intermediate points represent the means of the lower low water for each calendar day 
averaged for each month. All data in this graph are normalized as indicated in (c) above. 
Note that the MLW and MLLW plots represent a combination of the annual cycle in MSL 
and the annual cycles in the tidal range. In nearly all cases, the annual cycle in MSL is 
dominant. 

(f) Plot F is similar to plot E and normalized in the same manner, but presents data for 
the metonic cycle. The MLW and MLLW graphs show the expected 19-year cycle. The 
predicted extreme low tides for each year show an unexpected periodicity of about 6 years. 
No effort has been made to determine the reason for this periodicity. 

(g) Plots G and H are similar to plots E and F but are normalized as indicated in 
(c) above. The annual cycles follow approximately the same patterns as the mean sea levels. 
The 19-year cycle is apparent in the MHW and MHHW data. The period of approximately 6 
years appears in the extreme predicted high waters as well as in the predicted low waters. 

Plots for each of the NOS reference stations and for a few nonreference stations are 
presented in Appendix B. The data appearing on these plots for all locations discussed in 
this report are summarized in tables shown in Appendix B. 

Values of MHHW, MHW, MLW, MLLW, standard deviation, mean range, and the mean 
diurnal range based on these calculations are given in Table 7. Observed values of the mean 
and diurnal ranges obtained from NOS bench-mark sheets are also shown in the table. All of 
the calculations in this report are based on the period 1963 to 1981; no storm effects are 
included. The NOS values are based on observations, generally for the period 1941 to 1959, 
and include minor storm effects. Thus, exact agreement is not to be expected and the NOS 
values for range are expected to be slightly larger than those based on astronomical 
calculations. 

The definitions used in the computer program to derive the high and low water datums 
differ slightly from those used by NOS for dealing with observations. In the computer 


64 


Table 7. Computed datums, ranges, and standard ean referred to oe 


Station 


Eastport 

Portland 

Boston 

Newport 

New London 

Bridgeport 

Willets Point 

New York (The Battery) 
Albany 

Sandy Hook 

Atlantic City 

Break water Harbor 
Reedy Point 
Philadelphia 

Baltimore 

Washington 

Hampton Roads 
Wilmington 

Charleston 

Savannah River Entrance 
Savannah 

Mayport 

Miami Harbor Entrance 
Key West 

Naples 

St. Petersburg 

St. Marks River Entrance 
Pensacola 

Mobile 

Galveston (ship channel) 
San Juan 

San Diego 


Los Angeles (Outer Harbor) 
San Francisco (Golden Gate) 


Humboldt 
Crescent City 
South Beach 
Astoria 
Aberdeen 

Pt. Townsend 
Seattle 
Friday Harbor 
Ketchikan 
Juneau 

Sitka 
Cordova 
Seldovia 
Anchorage 
Kodiak 
Dutch Harbor 
Sweeper Cove 
Massacre Bay 
Nushagak 

St. Michael 
Honolulu 


| Mean range’ | range! Diurnal range! 


18.73 
9.68 
10.35 
3.93 
2.93 
7.13 
7.65 
4.94, 
9.40 
5.13 
4.59 
4.60 
5.92 
6.33 
1.38 
2.96 
2.67 
4.59 
5.69 
7.48 
8.19 
4.87 
2.74 
1.80 
2.99 
2.19 
3.37 
1.30 
1.44 
1,42 
1.66 
5.96 
5.45 
5.73 
6.40 
6.97 
8.36 
8.37 
9.89 
8.20 
11.31 
7.78 
15.38 


16.54 
10.01 


12.31 
18.04 
28.90 
8.83 
3.69 
3.89 
3.41 
19.68 
3.58 
1.89 


1 Observed values for both mean and diurnal range are not available for all stations. 


65 


program, the definitions used for HHW, HW, LW, LLW, and the mean and diurnal ranges are 
identical on all stations. Each identifiable high or low water used in defining MHW and MLW 
provided the difference between adjacent high and low waters is 0.1 foot or greater. The 
difference between MHHW and MLLW is defined as the diurnal range. The definition of 
MHW and MLW and mean range agrees with NOS practice at locations with semidiurnal- or 
mixed-type tides. In 1981, NOS will phase in a classification change: MLLW will be used as 
the primary datum for all nautical charts; the diurnal range will be used as the principal 
measure of tidal range. A complete changeover will require several years. The author 
believes this change will be an improvement over past practice. The classification in the 
1979 NOS Tide Tables (NOAA, 1979a; 1979b) is used in this report. Where the type of 
tide is classified as diurnal, NOS neglects all secondary high and low waters, and the highest 
and lowest values are considered high and low water. Thus, for stations with diurnal tides, 
the MHW and MLW given by NOS correspond to the MHHW and MLLW in this report; 
the mean range given by NOS for diurnal-type tides corresponds to the diurnal range in this 
report. When determining the HHW or LLW for days with a single high or low water, NOS 
accepts the single tide as a HHW only if it is larger than the preceding or following high 
tides, and as a LLW only if it is lower than the preceding or low tides. 


Table 7 shows that the net differences are generally much less than 0.1 foot for mean 
ranges and slightly less than 0.1 foot for diurnal ranges. Differences up to 0.4 foot which 
occur at a few locations result from the necessity of basing the tide calculations on a shorter 
or earlier period of record than that currently used by NOS in defining the tidal datums on 
bench-mark sheets. The differences between the working definition of HHW and LLW used 
in this report (discribed only in this section) and the definition used by NOS account for a 
part of this difference. It is recommended that range determinations based on the latest 
bench-mark sheets be used in obtaining dimensional values from the tabulated data. 


4, Tide Probability Graphs. 
Probability density distribution tables have been developed for seven tide parameters: 

(a) The highest predicted tide for each calendar month. 
(b) The predicted HHW of each solar day. 
(c) All predicted high waters of the 19-year period. 
(d) Predicted hourly tidal heights. . 
(e) All predicted low waters of the 19-year period. 
(f) The predicted LLW of each solar day. 
(g) The lowest predicted tide level of each calendar month. 


The predicted astronomical tide is a bounded function. The maximum range cannot 
exceed double the sum of the amplitudes of all constituents as multiplied by the node 
factors. The actual range will always be less than the maximum just cited because the larger 
values of some node factors occur in the same years as the smaller value of other node 
factors. 


66 


Figures 1 and 2 show that at many locations the tide level remains near the high or low 
water values longer than it remains near MSL. Thus, the distribution of tide levels cannot be 
adequately described by the Gaussian distribution function which is unbounded and 
uninodal. Wherever the amplitude of each tide wave is a large fraction of the mean range, 
the distribution of hourly tidal heights will be distinctly binodal (Fig. 28). A Gaussian 
distribution function with the same total area is plotted in the figure for comparison. This is 
the most prominent form of the distribution function for hourly tides along the U.S. 
Atlantic coast. 

At some locations, such as Pensacola, Florida, and Mobile, Alabama, the range of spring 
tides is several times as large as the range at neap tides. This variability in the amplitude of 
the tide wave yields a distribution function that is nearly uninodal with a peak near MSL 
(Fig. 29). 

Galveston, Texas, and San Francisco, California, show another common type of tide 
where the water level remains above MSL much longer than below MSL. The lowest 
predicted tide levels for these locations are farther below MSL than the maximum tide levels 
are above MSL. In these cases, the distribution function for hourly tidal heights is definitely 
skewed as shown in Figure 30. 

The comparison of empirical distribution functions with theoretical models is often 
facilitated by plotting the cumulative form of the empirical distribution function on a graph 
where one axis has been stretched so that the theoretical distribution, appears as a straight 
line. 

Although the distribution of astronomical tides cannot be Gaussian, graph paper 
designed so that the cumulative form of Gaussian distribution will appear as a straight line 
has many advantages for displaying distribution functions for astronomical tides. This is the 
standard form for showing distribution functions in this report. A sample display of this 
type is shown in Figure 31. Each curve is of the form 


y 
Py >y) = J p(y) dy (25) 
Yo 
where p(y)dy is the probability that 


ee) 
Ve ot) PS \Y oe (26) 


as Ay > 0, and y, is the lowest value of y . 
For a Gaussian distribution, 


y -y2 
PO deb Ov 20 “ll the (=) Oy 2) 


oo 


where o is the standard deviation of y and the mean value of y is zero. . 


67 


0.4 


~ 


Gaussian 


/ 


0.3 Predicted 


Q5 -3 -2 -! 0 \ 2 3 
Tidal Heights (standard deviation units ) 


Figure 28. Probability density graph for predicted 
hourly tidal heights at Atlantic City, New 
Jersey. A graph of the Gaussian proba- 
bility density function (symmetric curve) 
is superimposed. 


0.4 ~ 
4 Gaussian 


0.3 


Predicted 


0.1 


-4 -3 =2 -I 0 | 2 3 
Tidal Heights (stondord deviation units ) 


Figure 29. Probability density graph for predicted 
hourly tidal heights at Pensacola, Florida. 
A graph of the Gaussian probability 
density function (symmetric curve) 
is superimposed. 


68 


0.5 


0.4 
Predicted 


Se / 
/ 


/ 
/ 


Tidal Heights (standard deviation units ) 


Figure 30. Probability density graph for predicted hourly 
tidal heights at San Francisco, California. A 
graph of the Gaussian probability density 
function (symmetric curve) is superimposed. 


Extreme Monthly HW 


MSL 
Equivalent Goussian 
Distribution 
-0 
MLW 
MLLW 


-20 Extreme Monthly LW 


0.0! 0.1-30 -20 10-0 50 0 90 20 3099.9 99.99 


Meon Range = 6.67 ft 


Figure 31. Cumulative frequency density curve for tide parameters, 
Bridgeport, Connecticut, 1963-81. 


69 


The seven curves shown in Figure 31 and similar graphs in Appendix B correspond to the 
seven tide parameters. The abscissa of these graphs give the probability that each parameter 
will exceed the value indicated by the ordinate. All data have been scaled so that 98 percent 
of the ordinate scale corresponds to the height difference between the maximum and 
minimum predicted tidal heights within the metonic period of 19 years. The positions of 
MSL, MHW, MHHW, MLW, and MLLW have been indicated on the ordinate scale. The 
cumulative form of a Gaussian distribution function with the same standard deviation as the 
completed hourly tides, has been superimposed as a straight line in all graphs. The graphs in 
Appendix B show that, for some locations, the Gaussian curve provides a good 
approximation to the computed values within one or two standard deviations from the’ 
mean. This is particularly true for Baltimore, Maryland, and several situations in the Gulf of 
Mexico. The Gaussian distribution function, however, is a very poor approximation to the 
real distribution function for the highest and lowest astronomical tides. 


At many locations, the astronomical tides are symmetrically distributed about the MSL. 
It is not uncommon, however, to find that the distribution function is skewed with the 
astronomical tide remaining above MSL longer than below, with greater departures below 
the mean than above the mean. At Honolulu, Hawaii, the astronomical tide is below MSL 
more than half the time, and the positive departures from the mean are larger than negative 


departures. 


Although the actual distribution function is nearly identical to the Gaussian over the 
central 90 to 95 percent of the actual distribution at a few locations, the most common 
distribution is flatter than the Gaussian, with values on the order of one standard deviation 
above or below the mean being more common, and values near the mean or more than two 
standard deviation units above or below the mean being less common than in the Gaussian 
distribution. Many stations have bimodal distribution functions. 


At a few locations, the annual range in MSL may be greater than the range of neap tides, 
and it is not uncommon for the predicted tide level to remain on one side of MSL for longer 
than a lunar day. 


The graphs of the distribution of computed tide parameters are presented to show the 
character of the distribution function. The computer-controlled plotter does not always 
place the various curves precisely. Therefore, numerical values for further work should be 
taken from the tables in Appendix B, not from graphs. 


5. Probability Tables for Astronomical Tides. 
The curves in Figure 31 are based on similar data as presented in Tables 8 and 9. The 


maximum and minimum values of each parameter were used to determine the range of 


70 


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?roe? £920° nroset 
6blee een0° 9966°) 
?soe? 2ctoe aloes, 
n0se® 40¢0° Te0get 
fole° 2gtoe g2atory 
1ene8 eHn0° Salort 
riot? 6i20° ge29°t 
nsii° 6120° OR29°t 
Sastre Serce 2czort 
Ontye e800? Sefoet 
esol ectoe 4anget 
t260° @800° 6enget 
Thao? Sito? 2nsaet 
9s90e Satoe nosey 
euro? Szto°® 9n99°t 
<o¢o* 8800° 6699°) 
a12o° moo? 1o29o°t 
Sate nnoo® gonget 
agtue @gn0° 95n9O°5 
nnoo® nnoo? 9069°4 
“Dory yu 
-winy) "bay 1aMOT 
AH Apuow suey xg 


one” OY) YO Mah] 3 S19}eM MO] pue Yysty ATYUOUT 10; sUOTOUNy UONNqLOSIG -g a[qeL 


(a 


—-NuUecwWenwz oO 


Note--Lower limit of class interval shown; all heights are normalized with respect to one-half the mean range of 2.041 feet. 


Table 9. Distribution functions for 


100998 
106795 
Leon7o 
1eo505 
Leouss 
190355 
1,e219 
Ledjou 
LeS9g 
105874 
105759 
1eSouu 
Leesed 
1eSaia 
1eS2e49 
105145 
1e507U 
1e4855 
Ledbsu 
104725 
Ledolu 
1euu9s 
1ed3no 
1Ledends 


00002 
20008 
e0ULu 
e0U16 
eOuld 
20uS0 
20uS5 
00038 
e0u4) 
0008) 
20050 
29050 
e0USY 
e9u57 
e0uSt 
e0047 
0 0U8y) 
e0ube 
e002 
20UbS 
e062 
e0usu 
20092 
eoudy 
Ae 
20UMe 
20045 
O08 
Soeur) 
e0uto 
ol ty 
edleed 
e912 
00195 
evlld 
e132 
On 
00153 
0037) 
00197 
e162 
00156 
09170 
e105 
20201 
00167 
e018e 
eo OLA 
e0192 
eUlly 
eNDlel 
e01SS 
00159 
oN18S 
00179 
eOl4t 
eO1HS 
00174 
00197 
00186 
OI 
eULSA 
10189 
003%) 
e012 
oles 
enhsy 
oOlly 
O47 
00158 
on mie 
e152 
+0107 
eN106 
e0U77 
00093 
00095 
00084 
2000A 
00080 
200089 
00077 
20US0 
e0Uos 
©0C02 
00uUS$ 
09U47 
e0ubd 
20042 
20050 
20036 
10udu 
o0u58 
2000S. 
00021 
09015 
©0005 
eOulu 
20005 
e0U06 
eud2 


limit 
1.60908 
120705 
1.0621 
1.0478 
1.03555 
1.0141 
1,0948 
1.5904 
1.5701 
1o501R 
1.5u7u 
1.653551 
105168 
LeSeuu 
104904 
1.4758 
Ledbiu 
1,uu7) 
1.4327 
1.4184 
1.4n4t 
1.3897 
1o375u 
1o3011 
1o54o7? 
1.332u 
1.3161 
Lod05? 
1.2894 
1.2751 
Leeno? 
1e24ou 
1ee3e0 
1.2177 
Leesa 
1.1890 
1.1747 
Yoioou 
1e1400 
ois? 
Lolita 
1.1030 
1.0867 
1,.u74$ 
1.0609 
1,0457 
1.0315 
Pevl7n 
1.0027 
aL! 
0974) 
09597 
09455 
09519 
oVlo? 
M24 
KKB) 
oT Sb 
08598 
oh4S0 
Pe) 
ottods 
08020 
oTAT6 
07733 
07590 


Lower 


00002 


igher high, high, hourt 


2 ,Aul) 
2 ,Asde 
©8084 
259025 
2.9506 
2,9707 
21.0044 
21,0590 
e1,o75 
1,107 
e1,14is 
1.1755 
21.20%0 
e{,2437 
e1.2778 
e1.3120 
e1,34o) 
o1,3002 
e1,4145 
eo} ,dudu 
=1.4b20 
21,5107 
21,5508 
21,5849 
21,0191 
21.6532 
21 9hb75 
e1,72l4 


©0000 
00001 
20003 
00000 
00007 
00010 
00033 
©0015 
euued 
00026 
00026 
00055 
e0u4s 
e049 
00056 
©0066 
e0uTd 
00085 
00095 
00098 
Oe Se 
e023 
e011 
e0las 
0014u9 
00353 
00158 
00160 
0017) 
0172 
00168 
e0l7o 
00172 
00159 
©0166 
eUl62 
00449 
00146 
eQ)435 
00139 
00131 
00126 
00125 
00125 
00118 
Or 
00415 
eOlle 
00114 
00110 
eOlle 
011s 
oolns 
eOlte 
00316 
Oe ee 
e0110 
0320 
eoli? 
eyse0 
00125 
00129 
00335 
00139 
eolus 
euluo 
00154 
0S? 
00156 
00156 
00164 
©0168 
00108 
00167 
00159 
00157 
001Se 
00147 
00137 
00135 
eoleY 
00115 
00099 
0009S 
e0uTT 
00069 
00057 
0005) 
eOuue 
00035 
eoueT 
coves 
e0uU16 
eou1d 
onvny 
00006 
eouns 
e0v0e 
©0001 
©0001 
e000 


72 


04753 Jol ,vnul 
e4A66 [01,0157 
e49h2 Jol ,u27u 
0509S fos ,rdie 
o520R [ol ,uS46 
09520 [elevedbe 
o54use Jol .valds 
e5550 jo) .U9S4 
05004 jes oluyn 
05779 jelol2eo 
05899 jeholto2 
eOUTT jotoleo9h 
06137 Jeloladsy 
06202 felol771 
20639) Jo1.1907 
0526 Jeleends 
06605 [=leei79 
20607 foleesi5 
00954 fol .eusi 
o710A Jo1.25o7 
7265 [elected 
o742t feboeasd 
07578 Jel o2ed9S 
07742 fososi dt 
e791u Jeles208 
08076 Jol, Suny 
0824S fol, 55u0 
ehU0U Jeleso7o 
08500 febedAite 
e8712 fot .s9u8 
06659 Joy ,unau 
08996 Jol osecd 
09129 Jel e4sso 
09259 Jol ,uuve 
0957S Jol o4o29 
09472 fol edo 
09505 Jeloueul 
29042 Jol,ou37 


oIT12 foredi73 


o97THA Jo} .5309 
e9b19 Jel ,suus 
e9bOl JeledS4l 
09690 feledT17 
99923 Jolodd53 
29947 fol .99n9 
09965 Jr) .012o 
09977 Jeleoeoed 
07966 Jal,oS9A 
29992 J=i,o5su 
209996 [21.0670 
2999K J=1 60806 
09999 Je] ,o9u? 
1eouno fol ,70786 
1,°Gu0 Jel.7el4 


a0 OOd 


3.0000 


e1,07TS0 
21,0665 
21,9995 


M1ebi2u” 


eyolesu 
e1,) 564 
eroisis 
e1,lous 
w1el77e2 
e1.1902 
e1,eus) 
Pleclol 
e1,2e94 
e1,eu2u 
=1,2550 
=1,e079 
21,2809 
e1,e%sb 
21,5008 
21.5198 
e1.5527 
e1,3457 
ei, 55A6 
e1,s7io 
=}, 36uS 
21,3975 
21,4105 
21 4e3u 
21,4364 
Huds 
=1,4023 
21.4752 
21 bee 
eL,Wie 
Plo )4) 
e109e71 
21,5400 
21,5550 
21,5659 
21,5784 
e1,9919 
ey, ,ouu5n 
e1,0176 
e1,0507 
21,0457 
©1,0500 
#1 ,004% 
21,0026 
21,0955 
e1,7. AS 
el ,tels 


low, and lower low waters at Atlantic City, New Jersey. 
LLW 


variability for that parameter. Each range was divided into 101 intervals to provide 50 inter- 
vals above and 50 below the middle interval. The lowest computed value for each parameter 
was taken as the lower limit of the lowest interval for that parameter. The highest com- 
puted value was taken as the lower limit of the highest interval. Distribution functions were 
computed for each parameter by counting the number of times a computed value fell into 
each interval, and were then converted into probability densities by dividing the number of 
values in each cell by the total number of values for that parameter. The cumulative proba- 
bility that a given parameter will exceed a particular value is obtained as the sum of the 
probability that the parameter will have that value or a higher value. The maximum value 
of the cumulative probability is unity (1.0000). 

Calculations were made for each of the primary tide reference stations in the United 
States (for which daily tide predictions are published by NOS) and for the comparative 
stations listed in Table 7. A list of these stations and the relations between the tidal datum 
planes at each station are given in Tables 4 and 7. The locations of these stations are shown 
in Figure 17. Estimates of tidal height probabilities are needed for many locations for which 
primary tide predictions are not available. It is assumed that estimates at these stations can 
be determined with enough accuracy by adjusting the probability density distribution 
function derived for the reference station by the ratio of the tidal ranges at the two 
locations. No better solution to this problem appears to be presently available. To facilitate 
this estimate, the computed tidal heights are expressed as fractions of one-half the mean 
tidal range or the diurnal range. An M_ in Tables 4 and 6 indicates that the mean range is 
used for normalization; D indicates that the diurnal range is used for normalization. Thus, 
absolute values for any location can be obtained by multiplying the value tabulated in 
Appendix B’by one-half of the appropriate. mean tidal range or diurnal tidal range. One-half 
of the appropriate range has been used to produce values near 1.0 for mean tidal ranges. 
Table 8 presents the frequency distribution functions for the extreme high and low tides of 
each month. Similar tables for all reference and comparative stations are given in Appendix 
B. The first line of each table gives the name of the station and the dates of the epoch (i.e., 
the 19-year period) used in the calculations. All height values in the tables are normalized 
by one-half of the mean tidal range or one-half of the diurnal tidal range as stated in the 
second line of each table. The third line identifies the variable that is the monthly high or 
monthly low waters. 

The column on the right in Table 8 gives the class interval number, running from the 
higher value (101) to the lowest (1). Three columns present each of the variables: the first 
gives the lower limit of each class interval (expressed in units of one-half the mean tidal 
range or one-half the diurnal range as indicated on line 2); the second gives the frequency 
with which the variable fell within the indicated class during the 19-year epoch; and the 
third gives the cumulative frequency (i.e., the frequency with which the variable was equal 
to or exceeded the lower limit of the class interval). Data from the first and third (variable) 
columns are plotted in Figure 31. 


(3 


Table 9 is similar to Table 8 and gives the distribution functions for higher high waters, 
all high waters, hourly tides, all low waters, and lower low waters. Figures 28, 29, and 30 are 
based on data of the type shown in the column for hourlies. Figure 31 and all figures in 
Appendix B are based on data from column 4 of the respective parameters. 

Zetler and Cummings (1967) have shown that the values of the harmonic constants, 
based on observations for different years, may vary by 4 to 8 percent. The following dis- 
cussion shows that differences of the same magnitude can be expected between probability 
estimates based on a primary tide location for a location and that obtained by using primary 
calculations for a reference station. 


Vill. APPLICATION OF THE TIDE PROBABILITY TABLES 

The NOS publishes tide predictions, using equation (2) for only 50 reference tide 
stations in the United States. Tide predictions for all other locations (i.e., secondary 
stations) are normally obtained by modifying the predictions for the particular reference 
stations designated in Appendix C. For all U.S. Atlantic coast tide stations, the mean tidal 
range is given in Appendix C and in NOS tide tables; for all U.S. Gulf of Mexico and Pacific 
coast tide stations, the mean diurnal range is published in the tide tables. The tidal height 
values given in the probability tables have been normalized with respect to one-half the 
mean tidal range for Atlantic coast tide stations and with respect to one-half the mean tidal 
range or the mean diurnal tidal range as indicated in Table 4 and the station tables in 
Appendix B for the Gulf of Mexico. The mean diurnal range was used for all Pacific coast 
tide stations. Thus, the astronomical tidal height probabilities for any location can be 
estimated by multiplying the values tabulated in Appendix B for the appropriate reference 
station by the appropriate tidal range parameters as obtained from Appendix C, from the 
NOS tide tables, or from the latest bench-mark sheets. It appears from Figure 17 and the 
discussion of the gulf coast low water datum, that diurnal range might be more suitable than 
the mean range for some gulf coast locations where the mean range has been indicated and 
vice versa. If this is the case, the height values can be converted by the ratios of the mean 
and mean diurnal ranges from Table 7. The computed probabilities will not be affected. 

Actual tide levels near the coast are affected by both meteorological and gravitational 
forces. The events which cause the gravitational tides, and the meteorological effects on sea 
level are, in general, uncorrelated, but the effect of wind in generating a sloping water 
surface is inversely related to the water depth. Consequently, the wind effect on sea level is 
slightly greater at low tide than at high tide. The effect is greater where there is a long 
shallow-water fetch in an upwind direction from shore, than where the water is relatively 
deep. This interaction between the tide and the wind effect on water level can be shown by 
examining the difference between the observed and predicted tides during storms (Fig. 32). 
The interaction between tide and storm surge at any location is a function of wind velocity 
and wind duration as well as the stage of the tide. 


74 


SANDY HOOK 


i 
~ IX 
aaa ee 
(dle 
= SII 
we | 
al c 
=_— 
| ae 
DiC| ie 
1 =zNGe 
or 
led 
es 
(Rea SS 


ATLANTIC CITY 


iN 
1 \ 
free 
iol 
— ae 


U 
-l 
t 


aay 
\ 
— 
\ 
= 


(A= ae 


1) 
\ 
\ 


Y 
pe! | 
t 
i 
aS. 
/ 


\ 
\ 
\ 


= 
TP, 
= 
q eS 
t OA { 
a 
= 
a1 N 
— 
= (J 
VAS 
oh 
aT Oo HE 
fe 
> 
° 


BREAKWATER HBR. 
\ 
\ 
~~ 


HAMPTON ROAOS 


(ft) 


: 
wd 
fey 

& 

Q 
gee 
& 
Siaus 
ave 
Qa w 
t | 
tt 
t | 
t 


, predicted tide, and storm surge for 


selected stations, 5 to 8 March 1962 (Harris, 1966). 


Figure 32. Observed tide 


15 


Variations in mean water depth, as a result of a storm, may alter the speed of the tide 
wave as it advances inland from the open sea. An increase in river discharge may lead to a 
decrease in tidal range at inland tide gages. An example of this effect is provided by Zeile 
(1979). These interactions are complex and poorly documented. Interactions between 
gravitational tides and meteorological effects on sea level are not considered in this report. 
Example Problems. 

Applications of tide probability tables are demonstrated by two problems centered on 
Atlantic City, New Jersey, which was selected for the following reasons: 

(a) Atlantic City is treated as a secondary station by NOS. Tide predictions for 
Atlantic City are normally based on the reference station at Sandy Hook, New Jersey. 
Thus, probability calculations may be derived from the Sandy Hook probability 
tables and verified by referring to the calculations based on the harmonic constants 
derived from Atlantic City observations. 

(b) Myers (1970) has provided frequency estimates for extreme storm surge 
magnitudes at Atlantic City, thus permitting an illustration of the calculation of the 
probabilities of the combined astronomical and meteorological effects on the water 
level. 

The two problems considered are (a) to estimate the fraction of high tides and of hourly 
tide levels above 2.0 feet MSL, and of the low tides and hourly levels 2.0 feet below MSL, 
and (b) to estimate the highest water level which has a probability of 0.01 of occurring in 
any century; i.e., a probability of 10~* in any year. Secular changes in sea level (variations 
in the annual mean sea levels) are neglected in developing these estimates. 

a. First Problem. Since the meteorological and astronomical events which control the 
water level near the shore are nearly independent, it is assumed that meteorological events 
can be neglected in estimating the frequencies of water levels between MLW and MHW. The 
mean tidal range at Atlantic City Steel Pier (station 1703 in the tables as determined from 
Appendix C or from the NOS tide tables) is 4.08 (4.1) feet. Thus, the scaling factor of one- 
half the mean tidal range is 2.04 feet. Two feet, therefore, corresponds to 2.00/2.04 = 
0.9804 units in the probability table. The part of the probability table for hourly tides 
nearest this value for Sandy Hook, the appropriate reference tide station, is shown in Table 
10. 

The probability that the water level will be above 2.0 feet (0.9804 normalization units) 


can be estimated by linear interpolation according to the equation: 
he -h 


hy - h_ 


P(h>he) = P_ + (P, - P_) (28) 


Table 10. Part of cumulative distribution table 
for Sandy Hook, New Jersey. 


Lower limit of height | Cumulative frequency 


zo (10561 an | RO Oda 
(0.9804) 
78 0.9618 0.1004 


76 


where he is the desired value, 2.0 feet (0.9804 units), h+ and h_ the tabulated values 
immediately above and below he, and P+ and P_ the cumulative probabilities corresponding 
to h+ and h_. Substitution from Table 10 into equation (28) yields: 


h, - h 
P(th > he) = P_ + ics (i (ee) 


Il 
ro 


0.9804 - 0.9618 
a = (0.0883 - 0.1004 
0.1004 + o.9961 - 0.9618 ‘ ) 


0.0186 
0.0343 


0.1004 + (-0.0121) 


0.1004 - 0.0066 


P(h > he) = 0.0938 

Thus, the probability that the tide will be above 2.0 feet at Atlantic City is 0.0938; i.e., the 
tide level will be above 2.0 feet an average of about 822 hours per year [0.0938 (365)(24)]. 
Applying the same calculation to the values for Atlantic City, tabulated in Appendix B, 
yields a probability of 0.1025 that the hourly value will exceed 2.0 feet. Thus, in this case, 
the error committed in basing the estimate for Atlantic City on tabulated probabilities for 
the reference station, Sandy Hook, would be 0.0087; i.e., about 9 percent of the value com- 
puted from the reference station tables or about 76 hours per year. 

A similar calculation of the fraction of all high waters above 2.0 yields a value of 0.5055 
when the Sandy Hook tables are used, and 0.4886 when the Atlantic City tables are used. 
Both results indicate that about one-half of all high waters are above 2.0 feet. The error 
resulting from basing the calculation on the reference station is 0.0169 or about 3 percent 
of the value computed from reference station tables. The above calculations and similar 
calculations for the remaining parts of this first problem are summarized in Table 11. 

Tidal heights are tabulated by NOS in units of tenths of feet; i.e., with somewhat less 
resolution than is provided by the probability tables in Appendix B. The interpolation 
formula (eq. 28) can be used for estimating the probability that any tide parameter will fall 
into any one-tenth of a foot increment. Interpolation should be based on the cumulative 
form of the distribution function. The probability that the actual water level will fall within 
any increment is then determined by subtracting the cumulative probability for the next 
lower interval from the cumulative probability for the interval of interest. The probability 
that the high tide at the Atlantic City Steel Pier will fall within specified one-tenth of a foot 
increments above MSL is shown in Table 12 as a further illustration of these calculations. 
Calculations based on primary tide calculations for Atlantic City as well as calculations 


7 


Table 11. Sample probability calculations, 


Sandy Hook data | Atlantic City data | Absolute difference: 
‘(esi.) 


Above 2.0 feet MSL 


Hourly values 


High water (MySyLy) 


Higher high water 


Below 2.0 feet MSL 
Hourly values 
Low water 
Lower low water 


Table 12. Comparison of probability for Atlantic City, using Sandy Hook as reference station and 
Atlantic City as primary station. 


Sandy Hook! | Atlantic City! 


Cumulative Probability Probability 
probability for interval 


for interval 


0.0005 
0.0028 
0.0049 
0.0083 
0.0103 
0.0144 
0.0151 
0.0168 
0.9237 
0.0273 
0.0317 
0.0338 
0.0426 
0.0487 
0.0512 
0.0497 
0.0499 
0.0569 
0.0601 
0.0508 
0.0552 
0.0577 
0.0524 
0.0508 
0.0468 
0.0417, 
0.0324 
0.0246 
0.0148 
0.0103 


Note-—Lower limit is shown for each class interval. 


78 


based on the reference station, Sandy Hook, are shown to provide additional insight for the 
errors involved in basing the tide probability estimates on reference stations rather than on 
analyses of local tide records. At most stations, there is no alternative to basing tide 
probability estimates on primary calculations at reference stations. At Atlantic City the 
highest predicted high tides are a little higher and the lowest predicted high tides a little 
lower when the estimates are based on observations at Atlantic City than when based on 
observations at Sandy Hook. For the table as a whole, however, the differences are not 
large. 

Probability comparisons for other locations are presented in Appendix C by showing the 
calculated distributions for reference stations as dashlines on the graphs for the comparative 
stations. The comparisons shown are likely to be more reliable than the average obtained 
from applying the ranges in Appendix C to the probability calculations in Appendix B, since 
all estimates of tidal range at these comparative stations were based on at least 29 days and 
generally a full year of record. The selection of reference station and the estimation of tidal 
range for many of the stations in Appendix C were generally based on less than | year of 
record and sometimes on records shorter than 29 days. 

(1) Combined Probabilities of Astronomical Tide and Storm Effects on Sea Level. No 
reasons are apparent for the assumption that the occurrence of storms is related to the phase 
of the tide or the phase of the Moon. Although a given wind field will produce a steeper 
slope on water surface in shallow water at low tide than at high tide, the effect varies with 
the locality and depends on the speed and direction of the wind over a large area and the 
duration of the wind. The effect of tide stage on the contribution of the wind to the total 
water level cannot generally be expressed as a function of tide stage alone. Therefore, it is 
disregarded in the following discussion, since the astronomical tide and the storm surge are 
considered independent variables. 

When the probability distribution functions are determined empirically (in Sec. VII for 
astronomical tides and by Myers (1970) for storm surges), the permissible values of the 
variables may be the integers, 1, 2, 3, ... indicating the class numbers of the distribution 
table. Computation of the probability function for the sum of two independent variables is 
simple. Let p_(k) be the probability that one variable is assigned to class k and P,(k) be 
the cumulative probability that the variable is not greater than k. Thus 


k 
Pk) = 2) p&) (29) 


Let p (m) and P (m) be defined in a similar manner for a second variable. Let p (n) 

and P (n) have similar definitions for the sum of the first and second variables. The prob- 
3 

ability a given k will combine with a given m is given by 


v9 


p,(k +m) = p(k) p, (m) (30) 


The probability of obtaining a specific value of n is the sum of the probabilities of all 


sums of k and m which yield n. Thus, 
> 1 31 
= -m+ 
p(n) = 2 p (n-m+1)p, (m) (31) 


Substitution from equation (31) into equation (29) as applied to Fe yields: 


ped a8 
nw 
IE (0a) = 21 x P.M) = wah) jo ay) (32) 


n Nye ; 
Pm) = 2, P62, 
Py(n) = 2) p,m) Py(n +1 m) (33) 


Cramer (1946; Ch. 15) derives a similar theorem for continuous distribution function in 


the form 
P3(x) = _f Pi(x- z) p,(z) dz (34) 


where P, is cumulative distribution function for one variable, y, Py the distribution 
function for a second independent variable z, and x = y +z. The integral on the right is 
often called a convolution of P, and Py: 

When P, and p, are given as analytic functions, and the integral on the right in 
equation (34) can be solved easily, this formula can greatly simplify the computations. 
When either function is available only in tabular form, and the calculations are made on a 
computer, equation (34) does not appear to offer any computational advantage over 
equations (29) and (30) which seem to provide more insight for the processes involved. 

(2) A Demonstration Calculation. The concept may be clarified by considering a 
familiar example. Consider the sum of the numbers displayed by two unbiased dice. The 
probability that any of the six faces will be uppermost is 1/6, and the sum of spots may be 


80 


any number from 2 to 12. The probability of each of these possibilities can be easily 
displayed by means of the array whose elements are the sums of the row and column of the 
array element as shown in Table 13. 


Table 13. Probability distribution for the sum of two numbers from 1 to 6. 


Anon Pwh = 
NA NN & w bh 
eo ent an 


The probability of occurrence of each element in the array is 1/36. It is seen that the 
numbers 2 and 12 can be obtained by only one combination. Numbers 3 and 11 can be 
obtained in two ways; 4 and 10 can be obtained in three ways; etc. The frequency of 
occurrence of each number from 2 to 12 can be obtained by counting the number of 
combinations yielding that number and dividing by 36. The results are shown in Table 14. 
The cumulative frequency (i.e., the frequency that the number of spots will equal or exceed 
a given number) can be obtained by forming a running sum of the frequencies (last column 
of Table 14). 


Table 14. Probability density function for z=x + y. 


Probability Frequency | Cumulative frequency 
p(n) P(n) 


1/36 1/36 
(1 + 1)/36 

(1+ 1+ 1)/36 
(1+1+1+1)/36 
(1+1+1+1+1)/36 
(1+1+1+1+1+1)/36 
(1+1+1+1+1)/36 
(1+1+1+ 1)/36 

(1+ 1+ 1)/36 

(1 + 1)/36 

1/367 


eomOnrN nA Sw 


ee 
wo — © 


In most practical cases of importance, the probabilities of the individual elements of the 


array are not uniform and the underlying principle is not easily seen. 


8 | 


If the calculation is based on equation (33), it should be noted that 


n| 


p(k) = p,m) = 
for lv <= ki< 6) and) 1s mS i6 

mls) = pays o 
fork > 6 and m> 6. 

p(k) 7 A) = 0 
for k <1 and m<l 


The corresponding calculation for P(n) is given in Table 15. 


Table 15. Computation of P(n), z= x + y, two unbiased dice. 


1/36 

(2+ 1)/36 

(3+ 2+ 1)/36 

(4+ 3+2+ 1)/36 
(5+4+3+2+ 1)/36 
(6+5+4+3+2+ 1)/36 
(6+6+5+4+3 + 2)/36 
(6+6+6+5+4+ 3)/36 
(6+6+6+6+5 + 4)/36 
(6+6+6+6+6+ 5)/36 
(6+6+6+6+ 6+ 6)/36 


2 
3 
4 
Sy) 
6 
ow 
8 
9 


a 
LS) [SS 


It is apparent that the cumulative distribution function in Table 15 is the same as that in 
Table 14. The procedure for calculating Ps (n), if needed, is obvious. 

b. Second Problem. Myers (1970) discusses techniques which may be used to estimate 
the probability density function for large storm-generated contributions to the water level 
on the open beach, and presents probability distribution functions for Atlantic City. He 
considers three classes of storms: (a) landfalling hurricanes which come inland near enough 


82 


to Atlantic City to affect the water level; (b) alongshore hurricanes which pass to the east of 
Atlantic City but do not come inland near enough for the landfall of the storm to affect the 
water level at Atlantic City; and (c) extratropical storms. Myers tabulates the estimated 
probability that a surge in each height interval will occur at Atlantic City within a year from 
each class of storm. The ‘probability that the combined storm surge and astronomical tide 
will exceed any level is obtained by combining the astronomical tide probabilities with the 
surge probabilities for that class of storm. The probability that a given level will be reached 
by any type of storm is obtained by adding the probabilities that the given level will be 
exceeded by each type of storm. This can be illustrated sufficiently by considering only one 
storm type. 

Table 16 is used to illustrate the method for combining meteorological and astronomical 
probabilities. Surge heights are given for increments of 0.2 foot. Compatible increments 
must be used for the astronomical tidal heights. Since the astronomical tidal height 
probabilities can be obtained with much greater confidence than the surge increments, an 
increment of 0.1 foot is selected to demonstrate the method of combining probabilities for 
a case in which the two functions are not known with equal precision. The two semidiurnal 
tide waves at the reference station, Sandy Hook, and at Atlantic City are very similar. 


Table 16. Frequencies of maximum winter (November to April) 
surge heights, Atlantic City, New Jersey. 


Frequency 
(per season) 


1 Data from Table 7-3 in Myers (1970). 


Therefore, it will be sufficient to consider only the semidiurnal tide since only the peak 
values of the storm surges are given. The demonstration calculation is limited to a 
combination of predicted high waters and peak surges, which provides a conservative 


83 


estimate for the extreme combination of storm surge and astronomical tide. A lower and 
more reliable estimate could be obtained by combining a probability distribution based on 
complete surge hydrographs with the distribution function for hourly tide heights. 

Before proceeding to the demonstration calculation, it is necessary to consider the 
difference between frequency expressed as a fraction of all possible cases which fall into a 
specific class, and frequency expressed as a probability density. 

The average number of extratropical storm surges per year, with heights above 2.0 feet, 
the lowest value considered by Myers (1970), can be obtained as the total of all frequencies 
in Table 16. The frequency values can be converted into probability densities by 


dividing each frequency by the total frequency. The frequency with which each water level 
is expected to occur per year, on the average, from each possible combination of extra- 
tropical storm surge and astronomical tide can be recovered by multiplying the combined 
frequencies by the number of surges expected each year (4.10). Since dividing one factor of 
the multiplication by a constant and multiplying the product by the same constant produces 
no fundamental changes, these steps may be omitted in applying equations (29) and (30) to 

‘the storm surge and tide data. The results of the calculation will be a tabulation of the fre- 
quencies per year of various water levels to be expected from a combination of astronomical 
tides and extratropical tides. 


Table 17. Computation of joint probabilities for astronomical tides and extratropical 
storm surges at Atlantic City, New Jersey.’ 
Results from Product of Total combined Cumulative 
probabilities probability probability 
5.50 x 1077 5.50 x 107 5.50 x 1077 
3163 x 10°° 3.63 x 107° | 4.18 x 10° 
9.02 x 10° 
0.650 x 107° 9.67 x 10° | 1.803 x 10> 
1.82 x 1075 


0.429 x 1075 2.25 x10 | 4.053 x 10% 
2.95 x 10° 
1.07 x10 
0.105 x 1075 13 x10 | 8.183 x 10% 
4.53 x 1075 
2.15 x 105° 
0.693 x 107% 37 x 1075 | 1.5553 =x 10+ 


1 Based on Tables 12 and 16; all heights are in feet. 
2 Referred to MSL. 


A sample calculation of the combined frequency of astronomical tides and storm surges 
is shown in Table 17. Note that a combined height of 9.9 feet can be obtained only by 


84 


adding the highest tide to the highest surge. The probability of this combination, assuming 
that the probability of each is independent of the other, is the product of the separate 
probabilities. Thus, 


p(10.1 ft) = p(6.4 + 3.7) 


p(6.4) = p(3.7) 


(surge) (tide) 
= 0.0011 = 0.0005 
= 5.50 x 1077 
p(10.0 ft) = p(6.4+3.6) = p(6.4) = p(3.6) 
(surge) (tide) 
= 0.0011 < 0.0033 
=" 3163) 0 x Ome 
p(9.9 ft) = p(6.4+3.5) + p(6.2 + 3.7) 


p(6.4) p(3.5) + p(6.2) p(3.7) 
(surge) (tide) (surge) (tide) 


0.0011 x 0.0082 + 0.0013 = 0.0005 
9.02 x 107 + 0.650 x 107° 
9.67 x 10° 


iT} 


Further hand calculations are tedious, but a few should be made to be certain that the 
principle is fully understood. 


IX. SUMMARY AND RECOMMENDATIONS 

This report has presented a compilation of material from various sources designed to 
provide the engineer with an understanding of the problems involved in the establishment of 
reference datums for the measurement of elevations and of the various phenomena that 
should be considered in estimating the extreme high or low water that might reasonably be 
expected at any given location during a period measured in decades. 

A study of the statistical properties of astronomical tides has also been presented (Secs. 
VII and VIII), which, so far as the author is aware, has not been previously reported. 
Experience in using the tables, acquired during preparation of the report, has indicated that 
some changes may be necessary in the original calculations. However, the principal purpose 
of the work has been to provide the practicing engineer with the tools needed to estimate 
the contribution of astronomical tides to hydraulic or hydrologic phenomena when the 
estimate should be considered in a probability sense. 

Recommendations for Revision of the Probability Tables. 

A more rational statistical study of daily high and low water and daily ranges apparently 
would have been obtained if the lunar day rather than the solar day had been chosen for 
summarizing diurnal characteristics of the tide. 


85 


The tide hydrographs in Appendix B show a significant variation in the range of the tide 
throughout the lunar month. Compilation of the distribution function for daily ranges, and 
perhaps for semidiurnal ranges, would have provided a significant improvement to the 
statistical description of the tide. This compilation should be based on lunar not solar days. 
At locations where the tide is strongly semidiurnal or strongly diurnal, a good 
approximation to the complete tidal curve can be proved by connecting highs and lows with 
a sine curve. This is not true for stations with a large diurnal inequality of the tides, and 
where the lower high water and the higher low water are sometimes approximately equal. 
This phenomenon is illustrated in the hydrograph for St. Petersburg, Florida (see Fig. 2). 
The compilation of a mean shape for the diurnal tide hydrograph or a distribution function 
for hourly tides, as normalized by the diurnal range, would have been a useful addition. The 
compilation of this normalized diurnal tide, together with distribution function for diurnal 
range, would permit greater precision in the calculation of the probability of combined tide 
and surge. 

The graphs of the seasonal cycle in tide parameters in Appendix B show that most of the 
variation is associated with seasonal cycle in monthly MSL. An independent examination of 
the variability in monthly MSL (see Fig. 6) indicates that the monthly MSL varies 
significantly from year to year. These factors suggest that it would have been useful to have 
omitted the terms Sg and Ssq which describe the annual cycle of the sea level from this 
calculation, and to have used the theorem for combined probabilities (see Sec. VIII) to 
combine the distribution function for astronomical tides calculated without regard to the 
annual cycle with an empirically derived distribution function for monthly mean sea levels. 
This approach appears to be especially useful in predicting the probable extreme water levels 
expected to result from hurricanes. Hurricanes are most likely to occur in those months in 
which the MSL is expected to be near the peak of its annual value, even in the absence of 
hurricanes. Along the Washington-Oregon coast, the storm surges are most likely to occur in 
winter near the peak of the annual cycle of MSL in that region. 


86 


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BARBEE, W.D., “Tide Gages in the U.S. Coast and Geodetic Survey,” Proceedings of the 
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Survey, 1965, pp. 39-49. 


BERRY, R.M., “History of Geodetic Leveling in the United States,” Surveying and 
Mapping, Vol. XXXVI, No. 2, June 1976, pp. 137-153. 


BLOOM, A.L., “Pleistocene Shorelines: A New Test of Isostasy,” Bulletin of the Geological 
Society of America, 1967. 


BOMFORD, G., Geodesy, 3d ed., Oxford University Press, London, 1971. 


BOWDITCH, N., “Oceanography,” Part Six, American Practical Navigator, U.S. Navy 
Hydrographic Office, Washington, D:C., 1958, pp. 691-792. 


BRAATEN, N.F., and McCOMBS, C.E., ““Mean Sea Level Variations as Indicated by a 1963 
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Geodetic Survey, Washington, D.C., 1963. 


CAMFIELD, F.E., “Tsunami Engineering,” SR-6, U.S. Army, Corps of Engineers, Coastal 
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CHAPPELL, J., “Late Quaternary Glacio- and Hydro-isostasy on a Layered Earth,” 
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COORDINATING COMMITTEE ON GREAT LAKES BASIC HYDRAULIC AND HYDRO- 
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1961. 


CRAMER, H., Mathematical Methods of Statistics, Princeton University Press, Princeton, 
N.J., 1946. 


DEFANT, A., Physical Oceanography, Vol. 2, Pergamon Press, Elmsford, New York, 1961. 


DONN, W.L., FARRAND, W.R., and EWING, M., ‘Pleistocene Ice Volumes and Sea-Level 
Lowering,” Journal of Geology, No. 70, 1962, pp. 206-214. 


DOODSON, A.T., and WARBURG, H.D., Admiralty Manual of Tides, Her Majesty’s 
Stationery Office, London, England, 1941. 


DRACUP, J.E., “The New Adjustment of the North American Datum,” Proceedings of the 


34th Annual Meeting of the American Congress on Surveying and Mapping, 1974, pp. 
399-429. 


87 


DRONKERS, J.J., Tidal Computations in Rivers and Coastal Waters, North Holland 
Publishing Company, Amsterdam; John Wiley & Sons, Inc., New York, 1964. 


FELDSCHER, C.B., and BERRY, R.M., “The Use of Geopotential Heights for Great Lakes 
Vertical Datum,” Miscellaneous Paper 68-6, U.S. Lake Survey, Detroit, Mich., Aug. 
1968. 


GODIN, G., The Analysis of Tides, University of Toronto Press, Toronto and Buffalo, 1972. 


GODIN, G., “The Use of the Admittance Function for the Reduction and Interpretation of 
Tidal Records,” Manuscript Report Series, Marine Sciences Directorate, Department of 
the Environment, Ottawa, Canada, 1976. 


HANDS, E.B., ““Some Data Points on Shoreline Retreat Attributable to Coastal Subsid- 
ence,” Proceedings of the Anaheim Symposium, International Association of Hydro- 
logical Sciences, 1976 (also Reprint 78-11, U.S. Army, Corps of Engineers, Coastal 
Engineering Research Center, Fort Belvoir, Va., NTIS AO51 796). 


HARRIS, D.L., “An Interim Hurricane Storm Surge Forecasting Guide,” Report No. 32, 
National Hurricane Research Project, U.S. Weather Bureau, Washington, D.C., 1959. 


HARRIS, D.L., “Characteristics of the Hurricane Storm Surge,” Technical Paper No. 48, 
U.S. Weather Bureau, Washington, D.C., 1963. 


HARRIS, D.L., “Hurricane Storm Surges,” Proceedings of the Hurricane Symposium, 
American Society of Oceanography, 1966, pp. 200-228. 


HARRIS, D.L., and LINDSAY, C.V., ‘An Index of Tide Gages and Tide Gage Records for 
the Atlantic and Gulf Coasts of the United States,” Report No. 7, National Hurricane 
Research Project, U.S. Weather Bureau, Washington, D.C., May 1957. 


HARRIS, D.L., PORE, N.A., and CUMMINGS, R.A., “Tide and Tidal Current Prediction by 
High Speed Digital Computer,” International Hydrographic Review, Vol. XLII, No. 1, 
Jan. 1965, pp. 95-103. 


HICKS, S.D., “An Average Geopotential Sea Level Series for the United States,” Journal of 
Geophysical Research, Vol. 83, Mar. 1978., pp. 1377-1379. 


HOLDAHL, S.R., “Models and Strategies for Computing Vertical Crustal Movements in the 
United States,” Proceedings of the Symposium on Recent Crustal Movements, 
International Union of Geodesy and Geophysics, 1975. 

IPPEN, A.T., Estuary and Coastline Hydrodynamics, Engineering Societies Monographs, 
McGraw-Hill, Inc., New York, 1966. 


88 


LOFGREN, B.E., “Land Subsidence Due to the Application of Water,” Reviews in 
Engineering Geology II, The Geological Society of America, Boulder, Colo., 1969, pp. 
271-303. 


MARMER, H.A., “Tidal Datum Planes,” Special Publication No. 135, U.S. Coast and 
Geodetic Survey, U.S. Government Printing Office, Washington, D.C., revised ed., 1951. 


MELCHIOR, P., The Earth Tides, Oxford: Pergamon Press, Elmsford, New York, 1966. 


MITCHELL, H.C., “Definition of Terms Used in Geodetic and Other Surveys,” Special 
Publication No. 242, U.S. Coast and Geodetic Survey (1948), U.S. Government Printing 
Office, Washington, D.C., 1969. 


MOORE, S., “Elevations of The Great Lakes,” U.S. Lake Survey, Detroit, Mich., 
unpublished, Aug. 1939a. 


MOORE, S., “Datum Planes on The Great Lakes,” U.S. Lake Survey, Detroit, Mich., 
unpublished, Oct. 1939b. 


MORNER, N., “Eustasy and Geoid Changes,” Journal of Geology, Vol. 84, No. 2, Mar. 
1976, pp. 123-151. 


MUNK, W.H., and CARTWRIGHT, D.E., “Tidal Spectroscopy and Prediction,” Philosophi- 
cal Transactions of the Royal Society of London, Series A, Vol. 259, 1966, pp. 533-581. 


MYERS, V.A., “Joint Probability Method of Tide Frequency Analysis Applied to Atlantic 
City and Long Beach Island, NJ,” Technical Memorandum WBTM HYDRO 11, 
Environmental Science Services Administration, Office of Hydrology, Silver Spring, Md., 
1970. 


NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, “Land Subsidence 
Houston-Galveston, Texas,”’ Flood Insurance Study, Type 17 (Special), National Ocean 
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NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, “Trends and Varia- 
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NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, ‘Gulf Coast Low 
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NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, “Classification, Stand- 
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89 


NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, ‘Establishment of 
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NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, “Tide Tables, 1980 
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NATIONAL OCEANIC AND ATMOSPHERIC ADMINISTRATION, “Tide Tables, 1980 
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90 


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=) 


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92 


APPENDIX A 
GLOSSARY OF SELECTED TECHNICAL TERMS 


This Appendix defines the technical terms used in this report; a few related terms are 
also included. The definitions generally agree with those given by Schureman (1975) or 
Mitchell (1969). Some new definitions have been added. 


anomalistic—Pertaining to the periodic return of the Moon to its perigee, or of the Earth to 
its perihelion. The anomalistic month is the average period of the revolution of the Moon 
around the Earth in respect to the lunar perigee, and is approximately 27.554550 days in 
length. The anomalistic year is the average period of the revolution of the Earth around 
the Sun in respect to its perihelion, and is approximately 365.2596 days in length. 


aphelion—The point in the Earth’s orbit farthest from the Sun. 


apogean tides or tidal currents—Tides of decreased range or currents of decreased speed 
occurring monthly as the result of the Moon in apogee (farthest from the Earth). The 
apogean range (An) of the tide is the average semidiurnal range occurring at the time of 
apogean tides and is most conveniently computed from the harmonic constants. It is 
smaller than the mean range, where the type of tide is either semidiurnal or mixed, and is 
of no practical significance where the type of tide is diurnal. 


apogee—The point in the Moon’s orbit farthest from the Earth. 


bench mark (BM)—A fixed physical object used as reference for a vertical datum. A tidal 
bench mark is one near a tide station to which the tide staff and tidal datums are 
referred. A primary tidal bench mark is the principal (or only) mark of a group of tidal 
bench marks to which the tide staff and tidal datums are referred. The NOS standard 
tidal bench mark is a copper or aluminum alloy disk 3.5 inches in diameter, containing 
the inscription “NATIONAL OCEAN SURVEY,” together with other individual 
identifying information. A geodetic bench mark identifies a surveyed point in the 
National Geodetic Vertical Network. Geodetic bench-mark disks contain the inscription 
“VERTICAL CONTROL MARK NATIONAL GEODETIC SURVEY” with other 
individual identifying information. Bench-mark disks of either type may, on occasion, 
serve simultaneously to reference both tidal and geodetic datums. Numerous bench 
marks, both tidal and geodetic, still bear the inscription “U.S. COAST AND GEODETIC 
SURVEY.” 


chart datum—The tidal datum to which soundings on a chart are referred. It is usually taken 
to correspond to a low water stage of the tide, and its depression below mean sea level is 
represented by the symbol Zo. See also datum. 


coastal boundary—A general term for a boundary defined as the line (or measured from the 


line or points thereon) used to depict the intersection of the ocean surface and the land 
at an elevation of a particular datum. 


93 


constituent—One of the harmonic elements in a mathematical expression for the 
tide-producing force and in co-responding formulas for the tide or tidal current. Each 
constituent represents a periodic change or variation in the relative positions of the 
Earth, Moon, and Sun. A single constituent is usually written in the form y = A cos 
(at + ~), in which y is a function of time as expressed by the symbol t and is reckoned 
from a specified origin. The coefficient A is called the amplitude of the constituent and 
is a measure of its relative importance. The angle (at + <) changes uniformly and its value 
at any time is called the phase of the constituent. The speed of the constituent is the rate 
of change in its phase and is represented by the symbol a in the formula. The 
quantity © is the phase of the constituent at the initial instant from which the time is 
reckoned. The period of the constituent is the time required for the phase to change 
through 360° and is the cycle of the astronomical condition represented by the 
constituent. Further information on the harmonic constituents of the tide or tidal 
current is provided in the Manual of Harmonic Analysis and Prediction of Tides 
(Schureman, 1941). 


control tide stations—Tide stations presently being operated by NOS and scheduled for 
continuous operation indefinitely as part of the National Tide Observation Network. 


correction—A quantity which is applied to an observation or function thereof, to diminish 
or eliminate the effects of errors and obtain an improved value of the observation or 
function. It is also applied to reduce an observation to some arbitrary standard. The 
correction corresponding to a given error is of the same magnitude but of opposite sign. 
The signs are given by the equation: improved value = observed value + correction. 


correction, adjustment (leveling)—A correction applied to an orthometric elevation to 
produce an adjusted elevation, for eliminating the effects of circuit closures. 


correction, index (leveling)—A correction which must be applied to an observed difference 
of elevation to eliminate the error introduced into the observations when the zero of the 
graduations on one or both leveling rods does not coincide exactly with the actual 
physical foot or bottom surface of the rod. 


correction, level (leveling)—A correction applied to an observed difference of elevation to 
correct for the error introduced when the line-of-sight through the leveling instrument is 
not absolutely horizontal when the bubble is centered in its vial. 


correction, orthometric—A correction applied to a preliminary elevation to correct for the 
exror introduced when level surfaces at different elevations are not exactly parallel. 


correction, rod (leveling)—A correction applied to an observed difference of elevation to 
correct for the error introduced when the leveling rods are not actually of the length 
indicated by the graduations. 


correction, temperature (leveling)—A correction applied to an observed difference of 
elevation to correct for the error introduced when the temperature at which the leveling 
rods are used in the field is different from the temperature at which they were 
standardized. 


94 


datum (vertical) or datums—For marine applications, a base elevation used as a reference to 
reckon heights or depths. It is called a tidal datum when defined by a certain phase of 
the tide. Tidal datums are local datums and should not be extended into areas which 
have differing topographic features without substantiating measurements. In order that 
they may be recovered when needed, such datums are referenced to fixed points known 
as bench marks. See chart datum. 


declination—Angular distance north or south of the celestial Equator, taken as positive (+) 
when north and negative (—) when south of the Equator. The Sun passes through its 
declinational cycle once a year, reaching its maximum north declination of 
approximately 2342 about June 21 and its maximum south declination of 
approximately —23'/2° about December 21. The Moon has an average declinational cycle 
of 273 days which is called a tropical month. Tides or tidal currents occurring near the 
times of maximum north or south declination of the Moon are called tropic tides or 
tropic currents and those occurring when the Moon is over the equator are called 
equatorial tides or equatorial currents. The maximum declination reached by the Moon 
in successive months depends upon 'the longitude of the Moon’s node, and varies from 
28/2 when the longitude of the ascending node is zero to 182° when the longitude of 
the,node is 180°. The node cycle or time required for the node to complete a circuit of 
360° of longitude is approximately 18.6 years. See epoch (2). 


diurnal—Having a period or cycle of approximately 1 tidal day. Thus, the tide is considered 
diurnal when only one high water and one low water occur during a tidal day, and the 
tidal current is considered diurnal when there is a single flood and single ebb period in 
the tidal day. A rotary current is diurnal if it changes direction through all points of the 
compass once each tidal day. A diurnal constituent is one which has a single period in the 
constituent day. The symbol for such a constituent is usually distinguished by the 
subscript 1. 


diurnal range of the tide—See great diurnal range. 


dynamic elevation or dynamic height—The difference in geopotential between fee level 
surfaces. The dynamic height difference between two points A and B is JP e dh. 
If g is measured in kilogals (one kilogal = an acceleration of 10? centimeters per square 
second) and h in meters, the dynamic elevation is given as geopotential units (GPU). 
The numerical values of the dynamic heights are about 98 percent of the geometric 
height value. 


elevation—The vertical distance of a point above or below a reference surface or datum. In 
the fundamental horizontal control survey of this country, the datum for elevations is 
the National Geodetic Vertical Datum (NGVD) of 1929, formally called the Sea Level 
Datum of 1929. 


elevation, adjusted—The elevation resulting from the application of an adjustment 
correction to an orthometric elevation. Also the elevation resulting from the application 
of both an orthometric correction and an adjustment correction to a preliminary 
elevation. 


95 


elevation, field—An elevation taken from the field computation of a line of levels. 


elevation, fixed—An elevation which has been adopted, either as a result of tide observations 
or previous adjustment of spirit leveling, and held at its accepted value in any subsequent 
adjustment. 


elevation, orthometric—A: preliminary elevation to which the orthometric correction has 
been applied. 


elevation, preliminary—An elevation arrived at after the index, level, rod, and temperature 
corrections have been applied to the observed differences of elevation and new elevations 
have been computed. 


elevation, standard—An adjusted elevation based on the NGVD or. the Sea Level Datum of 
1929. 


Ellipse, eccentricity of—See eccentricity of ellipse. 


epoch—(1) Also known as phase lag. Angular retardation of the maximum of a constituent 
of the observed tide (or tidal current) behind the corresponding maximum of the same 
constituent of the theoretical equilibrium tide. It may also be defined as the plhiase— 
difference between a tidal constituent and its equilibrium argument. When referred to 
the local equilibrium argument its symbol is the Greek letter k (kappa); when referred 
to the corresponding Greenwich equilibrium argument it is called the Greenwich epoch 
and is represented by the capital letter G. A Greenwich epoch that has been modified to 
adjust to a particular time meridian for convenience in the prediction of tides is 
represented by the small letter g or by x’. The relations between these epochs may be 
expressed by 


G =k + pL 
g=Kk =G- = 


where L is the longitude of the place, and S the longitude of the time meridian, these 
being taken as positive for west longitude and negative for east longitude; p is the 
number of constituent periods in the constituent day and is equal to 0 for all 
long-period constituents, 1 for diurnal constituents, 2 for semidiurnal constituents, 
etc.; and a is the hourly speed of the constituent, all angular measurements being 
expressed in degrees. (2) Used in tidal datum determinations is a 19-year metonic cycle 
over which tidal height observations are meaned to establish the various datums. Since 
periodic and apparent secular trends occur in sea level, a specific 19-year cycle (the 
National Tidal Datum Epoch) is selected so that all tidal datum determinations 
throughout the United States and its possessions will have a common reference. The 
National Tidal Datum Epoch officially adopted by the NOS is 1941 through 1959. The 
National Tidal Datum Epoch is scheduled for review and possible revision at 25-year 
intervals. 


96 


equatorial tides—Tides occurring semimonthly as the result of the Moon being over the 
Equator. At these times the tendency of the Moon to produce a diurnal inequality in the 
tide is at a minimum. 


equilibrium argument—The theoretical phase of a constituent of the equilibrium tide. It is 
usually represented by the expression (V+u), in which V is a uniformly changing 
angular quantity involving multiples of the hour angle of the mean Sun, the mean 
longitudes of the Moon and Sun, and the mean longitude of the lunar or solar perigee; 
the u is a slowly changing angle depending on the longitude of the Moon’s node. When 
pertaining to an initial instant of time, such as the beginning of a series of observations, it 
is expressed by (V, + u). 


equinoxes—The two points in the celestial sphere where the celestial Equator intersects the 
ecliptic; also, the times when the Sun crosses the Equator at these points. The vernal 
equinox is the point where the Sun crosses the Equator from south to north, about 
March 21. Celestial longitude is reckoned eastward from the vernal equinox. The 
autumnal equinox is the point where the Sun crosses the Equator from north to south, 
about September 23. 


equipotential surface (geodesy)—A surface having the same potential of gravity at every 
point (no work is done when a body is moved about in such a surface). When bodies of 
the same mass are moved from one equipotential surface to another, the same amount of 
energy is developed or expended, accordingly, as the bodies are lowered or raised, and 
regardless of the route followed. In lifting a unit mass from sea level to any other 
specified equipotential surface, the amount of work required is the same at the Equator 
as at the poles: at the Equator the height of any equipotential surface above sea level is 
greater and the force of gravity at the surface is less than for the same equipotential 
surface at the poles. An equipotential surface is a level surface. A particular equipotential 
surface is identified by its dynamic number. 


error of closure—See misclosure. 


error of closure, angles—The amount by which the actual sum of a series of angles fails to 
equal the theoretically exact value of that sum. See error of closure of horizon and error 
of closure of triangle. 


error of closure in azimuth—The amount by which two values of the azimuth of a line, 
derived by different surveys or along different routes, fail to be exactly equal to each 
other. Generally, one value is derived by computations carried through the survey 
(triangulation or traverse); the other is an adjusted or fixed value determined by an 
earlier or a more precise survey, or by independent astronomical observations. 


error of closure in leveling—The amount by which two values of the elevation of the same 
bench mark, derived by different surveys or through different survey routes or by 
independent observations, fail to be exactly equal to each other. The closure may be 
developed in a line of leveling which starts and ends on different bench marks whose 
elevations are held fixed; or it may start and close on the same bench mark. 


De 


error of closure of horizon—The amount by which the sum of a series of horizontal angles 
measured between adjacent lines in a complete circuit of the horizon fails to equal 
exactly 360° 


error of closure of triangle—The amount by which the sum of the three observed angles of a 
triangle fails to equal exactly 180° plus the spherical excess of the triangle. 


error of closure, traverse—The amount by which a value of the position of a traverse station 
as obtained by computation through a traverse fails to agree with another value of the 
same station as determined by a different set of observations or route of survey. The 
traverse may run between two stations whose positions are held fixed, or it may start 
from and end on the same station. In either case there are two values for the position of 
the final station: one known before the traverse was computed, the other obtained by 
computations carried through the traverse. The difference between these is the error 
of closure. It may be resolved into closure in latitude, and closure in longitude 
(or departure). The total closure is also referred to as closure in position. 


extreme high water—The highest elevation reached by the sea as recorded by a tide gage 
during a given period. NOS routinely documents monthly and yearly extreme high 
waters for its control stations. 


extreme low water—The lowest elevation reached by the sea as recorded by a tide gage 
during a given period. NOS routinely documents monthly and yearly extreme low water 
for its control stations. 


eustatic adjustment—The worldwide increase in sea level due to the increase in the volume 
of the oceans resulting from the melting of glaciers. 


first-order leveling—Precise leveling in which the elevation differences obtained in two 
runnings of a section do not differ by more than 4 millimeters per Vk where k is 
distance measured in kilometers or by more than 0.017 foot per Vk where k is 
measured in miles. 


geoid, compensated—A theoretical geoid derived from the actual geoid by the application of 
computed values of the deflection of the vertical which depend on the topography and 
isostatic compensation. The data upon which to base the effect of topography and 
isostatic compensation are obtained from readings of topographic maps; the effect is 
then computed in accordance with the assumptions made with respect to isostasy, i.e., 
the depth and distribution of isostatic compensation. A method for accomplishing this 
was developed by Hayford, who accepted the Pratt theory of isostasy. If the theory and 
assumptions with respect to isostasy were exact and there were no anomalies, the 
compensated geoid would agree with the spheroid of reference. 


98 


geoid, isostatic—An ideal geoid derived from the spheroid of reference by the application of 
computed values of the deflection of the vertical which depend upon the topography and 
isostatic compensation. The computed values of the deflection of the vertical used in 
obtaining the isostatic geoid are similar to those for the compensated geoid, but of 
opposite signs. If the theory and assumptions with regard to isostasy were exact and 
there were no anomalies, the isostatic geoid would agree with the actual geoid. 


geoid contour—A line on the surface of the geoid of constant elevation with reference to the 
surface of the spheroid of reference. Geoid contours represent differences in elevation 
between the geoid and the spheroid. Geoid contours depend on the surface of reference. 
The same geoid referred to different surfaces of reference will give different sets of geoid 
contours. 


glacioisostatic adjustment—The surface of the Earth was depressed due to the weight of the 
ice during the ice ages. A slow recovery is still in progress, leading to increasing land 
levels in the areas formally covered by ice. This slow recovery is called a glacioisostatic 
adjustment. 


great diurnal range (Gt)—The difference in height between mean higher high water and mean 
lower low water. The expression may also be used in its contracted form, diurnal range. 


gulf coast low water datum—A reference datum, defined as being equal to the low water 
datum for diurnal tides, and to the lower low water datum for mixed or semidiurnal 
tides; used only for the Gulf of Mexico and southern Florida, southwest of Key Largo. 


half-tide level—Also called mean tide level (MTL). A tidal datum midway between mean 
high water and mean low water. 


harmonic analysis—The process by which the observed tide or tidal current at any place is 
separated into basic harmonic constituents. The process is described in detail in Manual 
of Harmonic Analysis and Prediction of Tides (U.S. Coast and Geodetic Survey, 1941). 


harmonic constants—The amplitudes and epochs of the harmonic constituents of the tide or 
tidal current at any place. 


harmonic constituent—See constituent. 


high water (HW)—The maximum height reached by a rising tide. The height may be due 
solely to the periodic tidal forces or it may have superimposed upon it the effects of 
prevailing meteorological conditions. Use of the synonymous term, high tide, is 
discouraged. 


high water mark—A line or mark left on tidal flats, beach, or alongshore objects indicating 
the elevation of the intrusion of high water. The mark may be a line of oil or scum on 
alongshore objects, or a generally continuous deposit of fine shell or debris on the 
foreshore or berm. This mark is physical evidence of the general height reached by wave 
runup at recent high waters. It should not be confused with the mean high water line or 
mean higher high water line. 


99 


higher high water (HHW)—The higher of the two high waters of any tidal day. 
higher low water (HLW)—The higher of the two low waters of any tidal day. 


hydrographic datum—A datum used for referencing depths of water or the heights of 
predicted tides. See also datum. 


International Great Lakes Datum (IGLD) (1955)—Mean water level at Pointe-au-Pere, 
Quebec, on the Gulf of St. Lawrence over the period 1941-56, from which dynamic 
elevations throughout the Great Lakes region are measured. The term is often used to 
mean the entire system of dynamic elevations rather than just the referenced water level. 


isostatic adjustment—Vertical motion of the Earth’s surface in response to changing in 
loading: downward when increased weight is added; upward when weight is removed. 


Kappa (k)—Name of Greek letter used as the symbol for a constituent epoch when referred 
to the local equilibrium argument and frequently taken to mean the same as local epoch. 
See epoch (1). 


K; (lunisolar diurnal constituent)—This constituent, with O1, expresses the effect of the 
Moon’s declination. Both account for diurnal inequality and, at extremes, diurnal tides. 
With P), it expresses the effect of the Sun’s declination. 


Ky (lunisolar semidiurnal constituent)—This constituent modulates the amplitude and 
frequency of My, and Sp for the declinational effect of the Moon and Sun, 
respectively. 


long period constituent—A tidal or tidal current constituent with a period that is 
independent of the rotation of the Earth but which depends on the orbital movement of 
the Moon or of the Earth. The principal lunar long-period constituents have periods 
approximating the month and half-month, and the principal solar long-period constit- 
uents have periods approximating the year and half-year. 


low water (LW)—The minimum height reached by a falling tide. The height may be due 
solely to the periodic tidal forces or it may have superimposed upon it the effects of 
meteorological conditions. Use of the synonymous term, low tide, is discouraged. 


low water datum (LWD)—(1) the dynamic elevation for each of the Great Lakes and Lake 
St. Clair and the corresponding sloping surfaces of the St. Marys, St. Clair, Detroit, 
Niagara, and St. Lawrence Rivers to which are referred the depths shown on the 
navigation charts and the authorized depths for navigation improvement projects. 
Elevations of these planes are referred to IGLD (1955) and are Lake Superior (600.0 
feet), Lakes Michigan and Huron (576.8 feet), Lake St. Clair (571.7 feet), Lake Erie 
(568.6 feet), and Lake Ontario (242.8 feet). (2) An approximation of mean low water 
that has been adopted as a standard reference for a limited area and is retained for an 
indefinite period although it may differ slightly from a better determination of mean low 
water from a subsequent series of observations. Used primarily for river and harbor 
engineering. Boston Harbor low water datum is an example. 


100 


low water line—The intersection of the land with the water surface at an elevation of low 
water. 


lower high water (LHW)—The lower of the two high waters of any tidal day. 
lower low water (LLW)—The lower of the two low waters of any tidal day. 


lower low water datum (LLWD)—An approximation of mean lower low water that has been 
adopted as a standard reference for a limited area, and is retained for an indefinite period 
although it may differ slightly from a better determination of mean lower low water 
from a subsequent series of observations. Used primarily for river and harbor engineering. 
Columbia River lower low water datum is an example. 


lunar cycle—An ambiguous expression which has been applied to various cycles associated 
with the Moon’s rotation. See lunation, metonic cycle, node cycle, and synodical month. 


lunar day—The time of the rotation of the Earth with respect to the Moon, or the interval 
between two successive upper transits of the Moon over the meridian of a place. The 
mean lunar day is approximately 24.84 solar hours in length, or 1.035 times as great as 
the mean solar day. 


lunar month—Same as synodical month. 


lunar nodes—The points where the plane of the Moon’s orbit intersects the ecliptic. The 
point where the Moon crosses in going from south to north is called the ascending node 
and the point where the crossing is from north to south is called the descending node. 
References are usually made to the ascending node, which for brevity may be called the 
node. 


lunar tide—That part of the tide on the Earth due solely to the Moon as distinguished from 
that part due to the Sun. 


lunar time—Time based upon the rotation of the Earth relative to the Moon. See lunar day. 

lunation—Same as synodical month 

L2—Smaller lunar elliptic semidiurnal constituent. This constituent, with Nj, modulates 
the amplitude and frequency of Mg for the effect of variation in the Moon’s orbital 
speed due to its elliptical orbit. 

mean high water (MHW)-—A tidal datum. The arithmetic mean of the high water heights 
observed over a specific 19-year metonic cycle (the National Tidal Datum Epoch). See 


epoch (2). For stations with shorter series, simultaneous observational comparisons are 
made with a primary control tide station in order to derive the equivalent of a 19-year 


10] 


value. Use of the synonymous term, mean high tide, is discouraged. For a semidiurnal or 
mixed tide, the two high waters of each tidal day are included in the mean. When any 
lower high water is indistinct, it is determined by record examination. For a diurnal tide, 
the one high water of each tidal day is used in the mean. In the event a second high water 
occurs, only the diurnal high water is included (see diurnal). So determined, this mean 
high water, based on the diurnal tide, is the equivalent of mean higher nist water of a 
mixed tide. See datum and type of tide. 


mean high water line (MHWL)-—The intersection of the land with the water surface at the 
elevation of mean high water. See shoreline. 


mean higher high water (MHHW)—A tidal datum. The arithmetic mean of the higher high 
water heights of a mixed tide observed over a specific 19-year metonic cycle (the 
National Tidal Datum Epoch). See epoch (2). Only the higher high water of each pair of 
high waters of a tidal day is included in the mean. For stations with shorter series, 
simultaneous observational comparisons are made with a primary control tide station to 
derive the equivalent of a 19-year value. See datum and type of tide. 


mean higher high water line (MHHWL)—The intersection of the land with the water surface 
at the elevation of mean higher high water. 


mean low water (MLW)—A tidal datum. The arithmetic mean of the low water heights 
observed over a specific 19-year metonic cycle (the National Tidal Datum Epoch). See 
epoch (2). For stations with shorter series, simultaneous observational comparisons are 
made with a primary control tide station to derive the equivalent of a 19-year value. Use 
of the synonymous term, mean low tide, is discouraged. For a semidiurnal or mixed tide, 
the two low waters of each tidal day are included in the mean. When any higher low 
water is indistinct, it is determined by record examination. For a diurnal tide, the one 
low water of each tidal day is used in the mean. In the event a second low water occurs, 
only the diurnal low water is included (see diurnal). So determined, this mean low water, 
based on the diurnal tide, is the equivalent of mean lower low water of a mixed tide. See 
datum and type of tide. 


mean low water line (MLWL)—The intersection of the land with the water surface at the 
elevation of mean low water. 


mean low water springs (MLWS)—A tidal datum. See datum. Frequently abbreviated spring 
low water. The arithmetic mean of the low water heights occurring at the time of the 
spring tides observed over a specific 19-year metonic cycle (the National Tidal Datum 
Epoch). It is usually derived by taking an elevation depressed below the half-tide level by 
an amount equal to one-half of the spring range of tide, with necessary corrections 
applied to reduce the result to a mean value. This datum is used, to a considerable 
extent, for hydrographic work outside of the United States and is the level of reference 
for the Pacific approaches to the Panama Canal. 


102 


mean lower low water (MLLW)-—A tidal datum. The arithmetic mean of the lower low water 
heights of a mixed tide observed over a specific 19-year metonic cycle (the National 
Tidal Datum Epoch). See epoch (2). Only the lower low water of each pair of low waters 
of a tidal day is included in the mean. For stations with shorter series, simultaneous 
observational comparisons are made with a primary control tide station to derive the 
equivalent of a 19-year value. See datum and type of tide. 


mean lower low water line (MLLWL)—The intersection of the land with the water surface at 
the elevation of mean lower low water. 


mean range of tide (Mn)—The difference in height between mean high water and mean low 
water. 


mean river level—A tidal datum. See datum. The average height of the surface of a tidal river 
at any point for all stages of the tide observed over a 19-year metonic cycle (the National 
Tidal Datum Epoch), usually determined from hourly height readings. In rivers subject to 
occasional freshets, the river level may undergo wide variations, and for practical 
purposes certain months of the year may be excluded in the determination of tidal 
datums. For charting purposes, tidal datums for rivers are usually based on observations 
during selected periods when the river is at or near low water stage. 


mean sea level (MSL)—A tidal datum. The arithmetic mean of hourly water elevations 
observed over a specific 19-year metonic cycle (the National Tidal Datum Epoch). See 
epoch (2). Shorter series are specified in the name; e.g., monthly mean sea level and 
yearly mean sea level. See datum. 


mean tide level (MTL)—Same as half-tide level. 


mean water level (MWL)—The mean surface elevation as determined by averaging the heights 
of the water at equal intervals of time, usually hourly. 


mean water level line (MWLL)—The line formed by the intersection of the land with the 
water surface at an elevation of mean water level. 


meteorological tides—Tidal constituents having their origin in the daily or seasonal variations 
in weather conditions which may occur with some degree of periodicity. The principal 
meteorological constituents recognized in the tides are Sa, Ssa, and S; . See storm surge. 


metonic cycle—A period of 19 years or 235 lunations. Devised by Meton, an Athenian 
astronomer who lived in the fifth centrury (B.C.), for the purpose of obtaining a period 
in which new and full Moon would recur on the same day of year. Taking the Julian year 
of 365.25 days and the synodic month as 29.530588 days, gives the 19-year period of 
6,939.75 days as compared with the 235 lunations of 6,939.69 days, a difference of only 
0.06 day. 


103 


Mf (lunar fortnightly constituent)—This constituent expresses the effect of departure from a 
sinusoidal declinational motion. 


misclosure—The amount by which a value of a quantity obtained by surveying operations 
fails to agree with another value of the same quantity held fixed from earlier determi- 
nations or with a theoretical value of the quantity. See error of closure, traverse; error of 
closure, triangle; error of closure, levels; and error of closure, horizon. 


mixed (tide)—Type of tide with a large inequality in either the high or low water heights, 
with two high waters and two low waters usually occurring each tidal day. In strictness, 
all tides are mixed but the name is usually applied to the tides intermediate to those 
predominantly semidiurnal and those predominantly diurnal. See type of tide. 


Mm (lunar monthly constituent)—This constituent expresses the effect of irregularities in 
the Moon’s rate of change of distance and speed in orbit. 


MSf—Lunisolar synodic fortnightly constituent. 


M, (smaller lunar elliptic diurnal constituent)—This constituent, with J,, modulates the 
amplitude of the declinational K; for the effect of the Moon’s elliptical orbit. A slightly 
slower constituent, designated (M,), with Q ;, modulates the amplitude and frequency 
of the declinational O, for the same effect. 


Mg (principal lunar semidiurnal constituent)—This constituent represents the rotation of the 
Earth with respect to the Moon. 


M3 (lunar terdiurnal constituent)—A shallow-water compound constituent. See shallow- 
water constituent. 


nadir—The point of the celestrial sphere that is directly opposite the zenith and vertically 
downward from the observer. 


National Geodetic Vertical Datum (NGVD)—A fixed reference adopted as a standard 
geodetic datum for heights. The datum was derived for land surveys from a general 
adjustment of the first-order level nets of both the United States and Canada. In the 
adjustment, 21 tide stations in the United States and 5 in Canada were held as fixed. The 
geodetic datum now in use in the United States is the NGVD of 1929. The year indicates 
the time of the last general adjustment. The geodetic datum is fixed and does not take 
into account the changing stands of sea level. Because there are many variables affecting 
sea level, and because the geodetic datum represents a best fit over a broad area, the 
relationship between the geodetic datum and local mean sea level is not consistent from 
one location to another in either time or space. For this reason the NGVD should not be, 
confused with mean sea level. 


104 


National Tidal Datum Control Network—A network composed of the primary control tide 
stations of the NOS. Distributed along the coasts of the United States, this network 
provides the basic tidal datums for coastal boundaries and chart datums of the United 
States. Tidal datums obtained at secondary control tide stations and tertiary tide stations 
are referenced to the network. Terrestrial leveling between stations is not a requirement 
of the network. 


National Tidal Datum Epoch—The specific 19-year cycle adopted by the NOS as the official 
time segment over which tide observations are taken and reduced to obtain mean values 
(e.g., mean lower low water, etc.) for tidal datums. It is necessary for standardization 
because of apparent periodic and apparent secular trends in sea level. The present epoch 
is 1941 through 1959. It will be reviewed for possible revision every 25 years. 


neap rise—The height of neap high water above the elevation of reference or datum of chart. 


neap tides or tidal currents—Tides of decreased range or tidal currents of decreased speed 
occurring semimonthly as the result of the Moon being in quadrature. The neap 
range (Np) of the tide is the average semidiurnal range occurring at the time of neap 
tides and is most conveniently computed from the harmonic constants. It is smaller than 
the mean range where the type of tide is either semidiurnal or mixed and is of no 
practical significance where the type of tide is diurnal. The average height of the high 
waters of the neap tides is called neap high water or high water neaps (MHWN) and the 
average height of the corresponding low waters is called neap low water or low water 
neaps (MLWN). 


node cycle—Period of approximately 18.61 Julian years required for the regression of the 
Moon’s nodes to complete a circuit of 360° of longitude. It is accompanied by a 
corresponding cycle of changing inclination of the Moon’s orbit relative to the plane of 
the Earth’s Equator, with resulting inequalities in the rise and fall of the tide and speed 
of the tidal current. 


node factor (f)—A factor depending on the longitude of the Moon’s node which, when 
applied to the mean coefficient of a tidal constituent, will adapt the same to a particular 


year for which predictions are to be made. 


nodical month—Average period of the revolution of the Moon around the Earth in respect 
to the Moon’s ascending node. It is approximately 27.212220 days in length. 


No—Larger lunar elliptic semidiurnal constituent. See L2. 

2N—Lunar elliptic semidiurnal, second order, constituent. 

orthometric corrections—Corrections to the measured difference in elevation to account for 
the nonparallelism of level surfaces. Orthometric corrections to the measured differences 


in elevation are needed to make the measured differences in elevations independent of 
the route followed in making the geodetic survey. See Section V of this report. 


105 


overtide—A harmonic tidal (or tidal current) constituent with a speed that is an exact 
multiple of the speed of one of the fundamental constituents derived from the 
development of the tide-producing force. The presence of overtides is usually attributed 
to shallow-water conditions. The overtides usually considered in tidal work and the 
harmonics of the principal lunar and solar semidiurnal constituents My and So are 
designated by the symbols M4, Me, Mg, Sa, Se, ete. The magnitudes of these harmonics 
relative to those of the fundamental constituents are usually greater in the tidal current 
than in the tide. 


perigean tides or tidal currents—Tides of increased range or tidal currents of increased speed 
occurring monthly as the result of the Moon being in perigee or nearest the Earth. The 
perigean range (Pn) of tide is the average semidiurnal range occurring at the time of 
perigean tides and is most conveniently computed from the harmonic constants. It is 
larger than the mean range where the type of tide is either semidiurnal or mixed, and is 
of no practical significance where the type of tide is diurnal. 


perigee—The point in the orbit of the Moon at which it is nearest the Earth. When used in 
connection with the solar tides it is qualified as solar perigee and refers to the position of 
the Sun when nearest the Earth. 


perihelion—The point in the orbit of the Earth (or other planet) nearest the Sun. 


period—Interval required for the completion of a recurring event, such as the revolution of a 
celestial body, or the time between two consecutive-like phases of the tide or tidal 
current. A period may be expressed in angular measure and is then taken as 360°. The 
term is also used to express any specified duration of time. 


phase—(1) Any recurring aspect of a periodic phenomenon, as new Moon, high water, 
strength of flood, etc. (2) A particular instant of a periodic function expressed in angular 
measure and reckoned from the time of its maximum value, the entire period of the 
function being taken as 360°. The maximum and minimum of a harmonic constituent 
have phase values of 0° and 180°, respectively. 


primary control tide station—A tide station at which continuous observations have been 
made over a minimum of a 19-year metonic cycle. It provides data for computing 
accepted values of the harmonic and nonharmonic constants essential to tide predictions 
and to the determination of tidal datums for charting and coastal boundaries. The data 
series from this station serves as a primary control for the reduction of relatively short 
series from subordinate tide stations through the method of comparison of simultaneous 
observations, and for monitoring long-period sea level trends and variations. See tide 
stations, subordinate tide stations (1), secondary control tide station, and tertiary tide 
station. 


primary tidal bench mark— See bench mark. 


106 


quadrature of moon—Position of the Moon when its longitude differs by 90° from the 
longitude of the Sun. The corresponding phases are known as first quarter and last 
quarter. 


quadrature tide—Same as neap tide. 


range of tide—The difference in height between consecutive high and low waters. The mean 
range is the difference in height between mean high water and mean low water. The great 
diurnal range or diurnal range is the difference in height between mean higher high water 
and mean lower low water. Where the type of tide is diurnal the mean range is the same 
as the diurnal range. For other ranges see spring, neap, perigean, apogean, and tropic 
tides. 


reference station—A tide or current station for which independent daily predictions are 
given in the NOS tide tables, and from which corresponding predictions are obtained for 
subordinate stations by means of differences and ratios. 


Sa (solar annual constituent)—This constituent, with Ssa, accounts for the nonuniform 
changes in the Sun’s declination and distance. In actuality, the changes mostly reflect 
yearly meteorological variations influencing sea level. See Ssa. 


saros—A period of 223 synodic months corresponding approximately to 19 eclipse years or 
18.03 Julian years, and is a cycle in which solar and lunar eclipses repeat themselves 
under approximately the same conditions. 


sea level datum (SLD)—Use of this term is discouraged. See National Geodetic Vertical 
Datum. 


secondary control tide station—A tide station at which continuous observations have been 
made over a minimum period of 1 year but less than a 19-year metonic cycle. The series 
is reduced by comparison with simultaneous observations from a primary control tide 
station. This station provides for a 365-day harmonic analysis including the seasonal 
fluctuation of sea level. See tide station, primary control tide station, subordinate tide 
station (1), and tertiary tide station. 


semidiurnal—Having a period or cycle of approximately one-half of a tidal day. The 
predominating type of tide throughout the world is semidiummal, with two high waters 
and two low waters each tidal day. The tidal current is said to be semidiurnal when there 
are two flood and two ebb periods each day. A semidiurnal constituent has two 
maximums and.two minimums each constituent day, and its symbol is usually 
distinguished by the subscript 2. See type of tide. 


shallow-water constituent—A short-period harmonic term introduced into the formula of 
tidal (or tidal current) constituents to take account of the change in the form of a tide 
wave resulting from shallow-water conditions. Shallow-water constituents include the 
overtides and compound tides. 


107 


shoreline—The intersection of the land with the water surface. The shoreline shown on 
charts represents the line of contact between the land and a selected water elevation. In 
areas affected by tidal fluctuations, this line of contact is usually the mean high water 
line. In confined coastal waters of diminished tidal influence, the mean water level line 
may be used. 


sidereal day—The time of the rotation of the Earth with respect to the vernal equinox. It 
equals approximately 0.99727 of a mean solar day. Because of the precession of the 
equinoxes, the sidereal day thus defined is slightly less than the period of rotation with 
respect to the fixed stars, but the difference is less than the hundredth part of a second. 


sidereal month—Average period of the revolution of the Moon around the Earth with 
respect to a fixed star, equal to 27.321661 mean solar days. 


sidereal time—This is usually defined by astronomers as the hour angle of the vernal 
equinox. The sidereal day is the interval between two successive upper transits of the 
vernal equinox. Note that when applied to the month and year, the term “sidereal”’ has 
reference to motion with respect to the fixed stars; the term “tropical” is used for 
motion with respect to the vernal equinox. Because of the precession of the equinox 
there is a slight difference. 


sidereal year—Average period of the revolution of the Earth around the Sun with respect to 
a fixed star. Its length is approximately 365.2564 mean solar days. 


slack water—The state of a tidal current when its speed is near zero, especially the moment 
when a reversing current changes direction and its speed is zero. The term is also applied 
to the entire period of low speed near the time of turning of the current when it is too 
weak to be of any practical importance in navigation. The relation of the time of slack 
water to the tidal phases varies in different localities. For standing tide waves, slack water 
occurs near the times of high and low water; for progressive tide waves, slack water 
occurs midway between high and low water. 


solar day—The period of the rotation of the Earth with respect to the Sun. The mean solar 
day is the time of the rotation with respect to the mean Sun. The solar day commencing 
at midnight is called a civil or calendar day, but if the day is reckoned from noon it is 
known as an astronomical day because of its former use in astronomical calculations. 


solar tide—(1) The part of the tide that is due to the tide-producing force of the Sun. 
(2) The observed tide in areas where the solar tide is dominant. This condition provides 
for phase repetition at about the same time each solar day. 


solar time—Time measured by the hour angle of the Sun. It is called apparent time when 
referred to the actual Sun and mean time when referred to the mean Sun. It is also 
classified as local, standard, or Greenwich according to whether it is reckoned from the 
local, standard, or Greenwich meridian. 


108 


solstices—The two points in the ecliptic where the Sun reaches its maximum and minimum 
declinations; also the times when the Sun reaches these points. The maximum north 
declination occurs on or near June 21, marking the beginning of summer in the Northern 
Hemisphere and the beginning of winter in the Southern Hemisphere. The maximum 
south declination occurs on or near December 22, marking the beginning of winter in the 
Northern Hemisphere and the beginning of summer in the Southern Hemisphere. 


solstitial tides—Tides occurring near the times of the solstices. The tropic range may be 
expected to be especially large at these times. 


species of constituent—A classification depending on the period of a constituent. The 
principal species are semidiurnal, diurnal, and long period. 


speed (of constituent)—The rate of change in the phase of a constituent, usually expressed 
in degrees per hour. The speed is equal to 360° divided by the constituent period 
expressed in hours. 


spring high water—Same as mean high water springs (MHWS). See spring tides or tidal 
currents. 


spring low water—Same as mean low water springs (MLWS). See spring tides or tidal 
currents. 


spring range (Sg)—See spring tides. 


spring tides or tidal currents—Tides of increased range or tidal currents of increased speed 
occurring semimonthly as the result of the Moon being new or full. The spring range (Sg) 
of tide is the average semidiurnal range occurring at the time of spring tides and is most 
conveniently computed from the harmonic constants. It is larger than the mean range 
where the type of tide is either semidiurnal or mixed, and is of no practical significance 
where the type of tide is diurnal. The average height of the high waters of the spring tides 
is called spring high water or mean high water springs (MHWS); the average height of the 
corresponding low waters is called spring low water or mean low water springs (MLWS). 


Ssa—Solar semiannual constituent. See Sa. 


stand of tide—Sometimes called a platform tide. An interval at high or low water when there 
is no sensible change in the height of the tide. The water level is stationary at high and 
low water for only an instant, but the change in level near these times is so slow that it is 
not usually perceptible. In general, the duration of the apparent stand will depend on the 
range of tide, being longer for a small range than for a large range, but where there is a 
tendency for a double tide the stand may last for several hours even with a large range of 
tide. 


109 


standard station—Same as reference station. Use of this term is discouraged. 


standard time—A kind of time based on the transit of the Sun over a certain specified 
meridian, called the time meridian, and adopted for use over a considerable area. With a 
few exceptions, standard time is based on some meridian which differs by a multiple of 
15° from the meridian of Greenwich. The United States first adopted standard time in 
1883 on the initiative of the American Railway Association, and at noon on November 
18 of that year the telegraphic time signals from the Naval Observatory at Washington 
were changed to this system. 


storm surge—A departure from a normal elevation of the sea due to the piling up of water 
against (or withdrawal from) a coast by strong winds such as those accompanying a 
hurricane or other intense storm. Reduced atmospheric pressure often contributes to the 
departure in height during hurricanes. It is potentially catastrophic, especially in deltaic 
regions with onshore winds at the time of high water and extreme wind wave heights. 


subordinate current station—(1) A current station from which a relatively short series of 
observations is reduced by comparison with simultaneous observations from a control 
current station. (2) A station listed in tidal current tables for which predictions are 
obtained by means of differences and ratios applied to the full predictions at a reference 
station. 


subordinate tide station—(1) A tide station from which a relatively short series of 
observations is reduced by comparison with simultaneous observations from a tide 
station with a relatively long series of observations. (2) A station listed in tide tables for 
which predictions are obtained by means of differences and ratios applied to the full. 


predictions at a reference station. See primary control tide station, secondary control 
tide station, tertiary tide station, and reference station. 


summer time—British term for daylight saving time. 


synodical month—The average period of the revolution of the Moon around the Earth with 
respect to the Sun, or the average interval between corresponding phases of the Moon. 
The synodical month is approximately 29.530588 days in length. 


syzygy—Position of the Moon when it is new or full. 
S;—Solar diurnal constituent. 


S2—Principal solar semidiurnal constituent. This constituent represents the rotation of the 
Earth with respect to the Sun. 


S4, S6—Shallow-water overtides of the principal solar constituent. 


110 


tertiary tide station—A tide station at which continuous observations have been made over a 
minimum period of 30 days but less than 1 year. The series is reduced by comparison 
with simultaneous observations from a secondary control tide station. This station 
provides for a 29-day harmonic analysis. See tide station, primary control tide station, 
subordinate tide station (1), and secondary control tide station. 


tidal bench mark—See bench mark. 


tidal bench-mark description—A published, concise description of the location, stamped 
number or designation, date established, and elevation (referred to a tidal datum) of a 
specific bench mark. 


tidal bench-mark State index map—A State map which indicates the locations for which 
tidal datums and tidal bench-mark descriptions are available. 


tidal bore—A tidal wave that propagates up a relatively shallow and sloping estuary or river 
in a solitary waveform. The leading edge presents an abrupt rise in level, frequently with 
continuous breaking and often immediately followed by several large undulations. An 
uncommon phenomenon, the tidal bore is usually associated with very large ranges in 
tide as well as wedge-shaped and rapidly shoaling entrances. Also called eagre, eager (for 
Tsientang, China, bore), mascaret (French), pororoca (Brazilian), and bore. 


tidal constants—Tidal relations that remain practically constant for any particular locality. 
Tidal constants are classified as harmonic and nonharmonic. The harmonic constants 
consist of the amplitudes and epochs of the harmonic constituents; the nonharmonic 
constants include the ranges and intervals derived directly from the high and low water 
observations. 


tidal datum—See datum. 
tidal day—Same as lunar day. 


tidal difference—Difference in time or height of a high or low water as a subordinate station 
and at a reference station for which predictions are given in tide tables. The difference, 
positive or negative when applied to the prediction at the reference station, gives the 
corresponding time or height for the subordinate station. 


tide—The periodic rise and fall of the water resulting from gravitational interactions between 
the Sun, Moon, and Earth. The vertical component of the particulate motion of a tide 
wave. Although the accompanying horizontal movement of the water is part of the same 
phenomenon, it is preferable to designate this motion as tidal current. 


tide curve—A graphic representation of the rise and fall of the tide in which time is usually 


represented by the abscissa and height by the ordinate of the graph. For a normal tide 
the graphic representation approximates a cosine curve. 


111 


tide datum—See datum. 
tide gage—An instrument for measuring the rise and fall of the tide. 


tide-producing force—That part of the gravitational attraction of the Moon and Sun which is 
effective in producing the tides on the Earth. The force varies approximately as the mass 
of the attracting body and inversely as the cube of its distance. The tide-producing force 
exerted by the Sun is a little less than one-half as great as that of the Moon. A 
mathematical development of the vertical and horizontal components of the 
tide-producing forces of the Moon and Sun is given in Schureman (1941). 


tide staff—A tide gage consisting of a vertical graduated staff from which the height of the 
tide can be read directly. It is called a fixed staff when secured in place so that it cannot 
be easily removed. A portable staff is one that is designed for removal from the water 
when not in use. For such a staff a fixed support is provided, and the staff itself has a 
metal stop secured to the back to maintain the same elevation when installed for use. 


tide station—The geographic location at which tide observations are conducted. Also, the 
facilities used to make tide observations. These may include a tide house, tide gage, tide 
staff, and tidal bench marks. See primary control tide station, subordinate tide station, 
secondary control tide station, and tertiary tide station. 


tide tables—Tables which give daily predictions of the times and heights of high and low 
waters. These predictions are usually supplemented by tide differences and constants 
through which additional predictions can be obtained for numerous other places. 


tropic tides—Tides occurring semimonthly when the effect of the Moon’s maximum 
declination is greatest. At these times there is a tendency for an increase in the diurnal 
range. The tidal datums pertaining to the tropic tides are designated as tropic higher high 
water (TcHHW), tropic lower high water (TcLHW), tropic higher low water (TcHLW), 
and tropic lower low water (TcLLW). 


tropical month—The average period of the revolution of the Moon around the Earth with 
respect to the vernal equinox. Its length is approximately 27.321582 days. 


tropical year—The average period of the revolution of the Earth around the Sun with respect 
to the vernal equinox. Its length is approximately 365.2422 days. The tropical year 
determines the cycle of changes in the seasons, and is the unit to which the calendar year 
is adjusted through the occasional introduction of the extra day of leap years. 


tsunami—A shallow-water progressive wave, potentially catastrophic, caused by an under- 
water earthquake or volcano. Also called seismic sea wave. 


112 


Tsushima Current—A North Pacific Ocean current setting northeastward in the East China 
Sea (in summer) and the Sea of Japan. 


type of tide—A classification based on characteristic forms of a tide curve. Qualitatively, 
when the two high waters and two low waters of each tidal day are approximately equal 
in height, the tide is considered semidiurnal; when there is a relatively large diurnal 
inequality in the high or low waters or both, it is considered mixed; and when there is 
only one high water and one low water in each tidal day, it is considered diurnal. 
Quantitatively (after Marmer, 1951) where the ratio of Ky + O, to Mg + So is less than 
0.25, the tide is classified as semidiurnal; where the ratio is from 0.25 to 1.5, the tide is 
mixed; and where greater than 1.5, diurnal. The NOS classifies tides quantitatively. 


U.S. Coast and Geodetic Survey (USC&GS)—A former name of the National Ocean Survey 
(NOS). The organization was known as: The Survey of the Coast from its founding in 
1807 to 1836; Coast Survey from 1836 to 1878; and U.S. Coast and Geodetic Survey 
from 1878 to 1970 (from 1965 to 1970, the USC&GS was a component of the 
Environmental Science Services Administration (ESSA)). In 1970, the USC&GS became 
NOS, a component of the National Oceanic and Atmospheric Administration (NOAA). 
NOAA became the successor to ESSA in 1970. 


V,. + u—See equilibrium argument. 


113 


APPENDIX B 


CHARACTERISTICS OF ASTRONOMICAL TIDES 
AT REFERENCE TIDE STATIONS 


This appendix contains three figures and two tables for each tide station considered in 
the statistical study. The data are arranged in sequence as the tide stations appear 
(proceeding in a clockwise direction) along the U.S. coastline from Maine to Alaska. The 
tide stations also appear in the same order as listed in Appendix C by number assigned in the 
NOS tide tables. All figures and tables for the same tide station are presented together to 
facilitate comparison of data of that station and of nearby stations. 

In general, the characteristics of the astronomical tides change smoothly along the coast. 
The most notable exception is that the annual cycle of mean water levels in estuaries may 
follow the annual cycle in riverflow more closely than the annual cycle in MSL. Practical 
problems will generally involve areas at considerable distances from reference tide stations 
and will have characteristics intermediate to two reference tide stations. For plotting — 
purposes, all data have been normalized as follows: 

(a) Hydrographs. Full scale corresponds to extreme range of the predicted tide from 
the 19-year metonic cycle. The mean range and mean diurnal range are indicated by plotting 
the positions of MHHW, MHW, MSL, MLW, and MLLW. Curves for reference tide stations 
have been added to a few hydrographs to show the agreement or disagreement between 
primary and secondary calculations. 

(b) Cyclical Distribution of Tide Parameters. High water parameters are normalized 
with respect to MHHW, and low water parameters with respect to MLLW. Range parameters 
are normalized with respect to the diurnal range. The MSL curves are plotted in units of 
feet. 

In each of the probability curve figures, the low end of the HHW curve and the higher 
end of the LLW: curve have been contaminated by some lower low waters because the solar 


day rather than the lunar day was used to define these parameters. 


114 


Index to tide station figures and tables, 


|__ Distribution functions | functions 
sas Hydrographs | Probability Tide Monthly |HHW, HW, ee 
curves Tira HW ie a LW LW and LLW 


AE A EE eeurenosty ip 1a Nome 
pe coast 


Eastport, Maine 
Portland, Maine 
Boston, Mass. 
Newport, R.I. 

New London, Conn. 
Bridgeport, Conn. 
Willets Point, N.Y. 


New York, N.Y. 
(The Battery) 


Albany, N.Y. 

Sandy Hook, NJ. 
Atlantic City, NJ.* 
Breakwater Harbor, Del. 
Reedy Point, Del. 
Philadelphia, Pa. 
Baltimore, Md. 
Washington, D.C. 


Hampton Roads, Va. 
(Sewells Point) 


Wilmington, N.C. 
Charleston, S.C. 


Savannah River Entrance, Ga. 
(Ft. Palaski) 


21 Savannah, Ga. 
22 Mayport, Fla. 
23 Miami Harbor Entrance, Fla. 


Son an fF wh = 


Lodi lll aol alll alll od oo od 
Noa b&b wn fF © 06 


oOOeY Ee 
ow @& 


24 Key West, Fla. 0.632 M 
25 Naples, Fla.* 1.495 D 
26 St. Petersburg, Fla. 1.093 D 
27 St. Marks River Entrance, Fla. 1.683 D 
28 Pensacola, Fla. 0.651 D 
29 Mobile, Ala. 0.719 D 
30 Galveston, Tex. 0.716 D 
31 San Juan, P.R. 0.575 M 


115 


32 San Diego, Calif. 


33 Los Angeles, Calif. 
(Outer Harbor) 


34 San Francisco, Calif. 
(Golden Gate) 


35 Humboldt Bay, Calif. 

36 Crescent City, Calif.* 

37 Southbeach, Oreg.* 

38 Astoria, Oreg. 
(Tongue Point) 

39 Aberdeen, Wash. 

40 Port Townsend, Wash. 


41 Seattle, Wash. 
42 Friday Harbor, Wash.” 
43 Ketchikan, Alaska 


44 Juneau, Alaska 

45 Sitka, Alaska 

46 Cordova, Alaska 

47 Seldovia, Alaska 

48 Anchorage, Alaska 
49 Kodiak, Alaska 

50 Dutch Harbor, Alaska 


51 Sweeper Cove, Alaska 
(Adak Island) 


52 Massacre Bay, Alaska 
(Attu Island) 


53 Nushagak Bay, Alaska 
(Clarks Point) 


54 St. Michael, Alaska 
55 Honolulu, Hawaii 


Index to tide station figures and tables.—Continued 


[permite 
Normalizing Hydrographs | Probability HHW, HW, hourly, 


factor? curves | parameters || HW and LW | LW, and LLW 


es oo 


1 Sequence number as the tide stations appear along the U.S. coastline in a clockwise direction from Maine to Alaska. 


2Number assigned to tide station in the NOS tide tables (see App. C). 
3Used for normalization, M = mean ranges; D = diurnal range. 
“Reference station; tide predictions for: (a) Atlantic City are normally based on Sandy Hook, New Jersey. 


(b) Naples are normally based on St. Marks, Florida. 
(c) Crescent City and Southbeach are normally based on Humboldt Bay, California. 
(d) Friday Harbor are normally based on Port Townsend, Washington. 


116 


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anor? SLt0° deex?t= #S192° SLto® Tade°sb aS 8 annooe 0000° oTetl te xGofo® 2utoe e9in®t #S6 
CYUARO @900° 9Se5*t= 2005L° ae00° foge’sb we#9n * annvo? 0000? BOLT *t= wE920° 8900° OoMM®s #96 
nege® nno0® Seer’te s2zinc® zato° scee*s sin e annvge 0000° 4L90%te wSatvu® 00008 2am? alo 
Ongc? esto® moetc°t= «lees? Geto® 49ge°t~ san * ennuoe v0u0? 9ngtete aeSitu® #8@90° nonn?} #e@6 
o0se® Sato? G9tee*t= weSole® 0000° 6oa2°t wen a anh0oe 0ou0® ST9I°T® apygo0® o0on0® 9oMn?t 866 
grec? esto® egig*t= sGotz® ae0u? Tgoe°b #05 2 annogd® ooua? nasglh*te say00? nog? g2eSn°s #00t 
202¢° Sito® TOrm* t= 29102° 4ufo° T9oe°sb els * spnude mnoo® ESgl*le ennotue nn00° 09Sn°h wht 
SSKHTK KATH eee as eeae aH ese eset eekeeaetestHeH sat eee re HER aeKMHsHeeeteneeteeaeeeBtaegHeeatarsenaee AE THERHAAHBHK KARA KR ER 
» °odad ttwl] « “oda LIwId 6 °ON 2 2 "0344 atwI] 8 °Hang AtwI7  # °On 
e °wnd "o3u4 44m07 a *wnd *odad 43M01 eSSVije a WN) °o3ad dam07 ae °Hnd "ogad y3M07 agsSv19 

s 2 s a e ® 


® 9ilv¥m 404 
"1334 4n6°s 


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JONVY NVGW JHL 


bRef96) 


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41VH OL 1£39GS9H HLT™ GAZI WHYON Fav Sang 


2 


6 494 


INIVW 


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NOTLINAY NOTiANGlalsta 


119 


Table B-l1b 


LOWER LIMIT OF CASS UST ERVAL SHOwn, ALL HEIGHTS ARE NORMALIZED WITH RESPECT TO WALF THE MEAN RANGE 6,947 FEET, 


. HIGHER HIGH warER HIGH WATER s HOURLY VALUES 8 LOW WATER 8 LOWER LOW WATER 
e 6 8 a 
Classe LOWER FREQ, CUM,® LOWER FREQ, CUMe® LOWER PREO, CuM,® LOWER FREQ, CUM,® LOWER FREQ, Cum, 
NO, 8 LIMyT FREQ,® LIMIT FREG,® LIMIT FRE LIMIT PREG o® UTMIT FREO, 


Co ececeececgtesessccensscoeeecesceenseaggetsnceneeses FoeeesegeeSeageesses SPCC TORS OK SEO eRe OEE 
tole 1,4560 00002 8 ,0002% 1,u5e0 20001 000018 14,4560 00000 400008 265995 .0002 400028 ©,6956 ,0002 0002 
100 1,.48u 20003 200088 1.4474 20008 000U3Se 14,4268 20001 000018 @,6081 20004 00005 e,7033 000028 00005 

990 1.4407 20006 e00118 = feusBy 20005 20N08® 41,3976 00003 000048 2.6168 20002 00007% 57110 20003 20006 
9Be 1,433) eoula 20024 3.4295 000% 000148 1,308u 20006 .0010% @,6254 0002  ,0009* 0,718 ,0003 0009 
97e 1.4254 00014 200368 1.4206 00014 ©0029 34,3392 0001) 00022% e,o3ut 00006 00015% e,7263 0002) 00030 
Goes 1,44;78 00029 200668 1.4118 00017 0004S5e 41,3099 00015 20037 2,628 00011 00026% e,75u0 20012 200042 
95% 164102 29029 2009S* 14,4029 .0na3 000086 11,2807 0020 .0057% ©,651u 00015 o0041% e,7417 ,0017 40059 
9de 1,4025 00038 eOL32e 1 e3s9uy 00017 00085e 43,2515 ©0027 200848 a,6601 00044 00054 ©,749u 20026 00084 
93e T3949 — 60U27 = 0159 14,3852 0ne26 oO1t1e 41,2223 09029 .0113% ©,6687 40019 .00738 en 7571 20036 = 0120 
92e 11,3873 20039 00196 1.3704 20020 eO1sie® 1,193) ©0038 00151% e,6774 00044 20087% ©,764u8 2004) 2016) 
9ie 1.3796 ofU33 o023ee 165676 00040 eO17i® 1,1639 00040 00196% ©,6860 00018 00105% 24,7725 00042 20203 
90*® 1.3720 00048 = =602RU® 1.3587 60039 c02108 14,4347 £0050 = 0246% =,60947 ,0N34 .0139% e,74n2 ,0050 20252 
B92 1.3643 2.0060 003408 143499 20035 00245@ 141055 0061 c0O307® e,7033 60035 40173% ©,7879 40081 00533 
B8e 1.3567 20048 =20SABS 143410 00091 00296 1.0763 0072 .0380% e,7120 00033 = 40206% 047956 .0089  ,0u22 
B78 1.3491 0005u e04der 143322 00041 o0337# 1,0u74 00084 004638 257206 00046 +90252% 2,8035 00}04 00526 
Boe 1,3ulu 20069 05118 163253 ©00u9 003660 34,0179 00104 005678 ©,7293 00047 00300 2,8119 20083 006008 
OSes 1,3338 20060 00571 41,3145 0005) 00US8e 09087 0122 006898 0.7379 00057 00357® 9,81 Ab 00069 00077 
ue {,3262 20060 00328 3.3057 e.onuu 004826 09594 20135 =60825% e,7466 40072 .U42b% ©,8263 ,0099 40777 
83s 1,43;"5 20063 00095@ 41,2968 00097 005598 09302 eolu? 009728 @,7553 00007 00495 e,A3u9 20110 20086 
A2e 1,3199 00056 eO75u® 14,2480 00058 005978 e90h0 001358 01129% 20,7639 00066 005618 ©8417 20099 0094S 
Ale 11,3032 00063 e014 1,279) 00051 00649 06718 00165 01293 267726 20093 00674 2,8494 Old 01097 
808 1.2956 e0uU7S eMbAGS 462703 00073 007226 28426 ©0167 o1460% ,7A12 20098 007728 ©,8573 00114 elely 
79e@ {,a@n8u 00077 209658 j{e.20)4 00002 007838 08154 00175 016358 ©,7A99 eOlel 008938 «8648 00102 ol313 
788 1.2493 200065 e1030% 102526 e007! 00854e 07642 00178 016138 ©,7985 00435 01028 «,8725 20123 1436 
779 «1.2727 00065 01095 1.2437 20006 009e08 07550 00168 019F1® ©8072 00123 elise 00110 01540 
76% 1.2651 00083 o1177® 142349 60075 009958 27258 «00170 02150% e6158 40155 o12boe 20102 41648 
75@ 168574 60075 =o L253" 1 eee) 00062 8 =oinste 06966 = =060160 o2310% 268245 .01ee o14118 00122 = 1770 
Tue 1,2u98 29072 o13258 43,2172 ee 011388 26674 20152 e2462% 0/6331 001St o15ose 00125 01894 
730 1,2u22 00063 013888 14,2064 00088 el22oe oh 582 0014S 020079 0,638 00149 elles 00153 02047 
yee 1.2345 00084 e14h9e 1.1995 00090 el3i7e 26089 ©0135 e2740% ©6504 001648 o1AB0e 20123 e2i7 
T1e® 11,2269 00080 o1S49@ 141907 00085 o1402¢ 05797 00134 028748 ©8591 00152 oensee 00170 02340 
709 1.2192 20077 olo20e 1,,A1A 000B8AR 014908 205505 00125 029988 eto? 00180 022128 o0lee 024o2 
6% 1,.a;16 200K6 o1711® 161730 00090 015600 05213 001A7 031258 ©,b764 0018A 0c4Q0e o01S7 02599 
Ae 1.2040 e010 =o 81S5% 461642? o0102 of hb3e 04924 00116 = 3241% 0,685) 20100 225008 00144 = 2743 
o7e 1.1963 20101 o1910% 151553 009%6 017788 04629 = 0118 =o 33598 254957 40158 27188 00167 42910 
668 1,147 00078 o199G8 14,4465 00093 olATIe o4537 00110 0 3469% ©9024 00179 228978 =, 96ub 0017) 05084 
eSe® 1,1KI1 00071 02065 1.4376 oONlt 019820 0404s e0116 o3S5HO% ©9110 001a9 050808 00150 o3237 
o4e 1.1734 20104 e21648 1,1268 60107 c2ens9e 03753) = 0 0109 = 3095% 29,9197 40199 032708 0107 = 4 340u 
o3*® 1561656 e016 eeeRus 1,4199 0011S 222020 o34b4 eOlte 038060% =,9283 00195 oSuT1e 00210 03044 
28 1.1581 00076 =p 2362% 1614911 20158 e2340e 03169 =001NS = 39098 90, 9370 20162 236530 00218 = 3632 
618 1.1505 eN1ne 024658 1461023 evied o2lo3e 2877 oOllt 040219 259456 00192 0 38458 00218 04050 
60% J,luey 001305 0235708 1.u93u eoiid 025778 0258y 00105 o4jeue 09543 00195 o4040% ©1,0410 202350 04280 
59 1.1352 00419 e20A9e 1.0846 00129 e270oe 02292 00104 042288 09629 00202 e4PU2® 01,0187 0023S 04513 
S8e 1.1270 eOlla 0280S 41,0757 00150 o2ASoe 02000 e0107 043358 2.9716 00206 04448% 01,0264 20010 o4725 
575 141200 eOlle 029198 1.0609 00105 osn208 01798 00102 o4U37* ©,9A02 00192 046408 ©} ,05u0 0025) o497G 
Soe 1.1123 0120 030398 1.058n 20106 860 3 878 01416 200102 94539% ©,9889 40210 048508 ef,0417 0230 25204 
55*  1etud7 00123 edio2e 1.0442 00176 o33o3e olla «0104 e4OU38 04,9976 00237 05087% ef 0494 00228 09432 
sue 1,097) 00146 =o S398% J.0404 60192 035558 20832 = =e0104 o47U7% 01,0002 20206 52939 91,0571 20224 25056 
Ste 1,0A94 00108 34178 1,0319 00191 oSTuoe 00540 20102 04649% 01,0149 00212 05505% 01,0048 00186 096U2 
See 1,0618 00144 o3556e 140227 002u0 059456 00248 00101 04950% 0f,0735 00218 e5724% 04,0725 0039) 060335 
Sie 1.9741 00164 o57226 1.0158 00212 041578 @,004u 00100 05051*% 01,0322 00230 059548 &1 0802 200140 06215 
S08 1.0565 00180 e39028 31,0050 00019 04376% @,N530 00099 05150% ef ,ud08 00245 00109% ©) ,0879 20167 26580 
ude 1,0549 A176 e4UTKe 09908 00212 045698 @,0028 eOlne 052528 01,0495 00204 06573% ©1,0950 001355 00515 
ube 41,0512 00159 442540 e9ATZ =o 0204 0 4 IY38 040921 00103 .5355% ©1,0581 00200 465748 &1,1033 0155 6070 
u?e 1,0u30 0212 044508 097BU eo2un 050528 o,f213 010s 054588 21,0668 00160 06753® ef ,1110 Oe 00614 
woe 1,0300 00205 =p 4oSue 09096 60216 052498 02,1505 00102 45560% #1,075u 00177 = =46950% ©3,1187 20120 20934 
uSe 1,02A3 29203 248578 29608 00215 054048 041797 00103 05665$% of ,0FUI 20439 07070% m1 ,1eou 00101 07035 
ue 11,0207 20242 050998 09519 00210 oSn7ue 22089 00100 057039 o1,0927 20150 o7219% mye suy 20126 eTlo2 
aye 1,050 20229 e532be 04S] 00218 o5A93e o2shy 00103 05866% of ,1014 00142 o7TS01% of ,1417 00107 07269 
vee §,91)54 oN 20K 255390 09tu2 00198 eON918 ©,2073 00104 059708 01,1100 o0fu7 07508 ef ,1uvu 0012s 07592 
uie 9978 00289 057740 04294 00Pee 003358 0.2965 0010S 06073% 461167 e0ten o7027% ©4,157) 00106 07500 
4oe 29904 00197 59718 09165 oid 065078 4257 00107 061F0% of o} P74 00115 o774S® 21,1048 20110 o7olo 
398 eIhed 00217 ool bbe 09077 ©0205 069120 3549 20108 0O2H7% 151360 00120 o78oe® e1,4725 00098 o7TfhG 
Jae 09749 Ne?) phulue A989 =. 0180 e0A928 ©, 384) 00106 965938 ef ,)uu7 00103 07905% ef ,1802 .0u89 47b02 
378 o%o72 00194 ebONKe 04900 00176 079088 13s 00109 065028 ©) 1533 00100 080658 91,1679 20080 07648 
She 29596 00194 2679Ke oHAl? 20018u 72518 Wu2o e011) 060138 24,1620 e01le eS17A® ©1,1956 "0084 07977 
35¢ 29520 oN1A9 eOVAKS 26728 0177 o7ucbe ure 00109 067218 916170h 00091 0bP69% =1,2038 200487 08064 
gue ae) 00174 e7loee 28055 20162 76108 2.5010 e0lid 068569 a161793 00107 eS37TO% @1,2110 00101 oAlou 
336 o93o? 09120 e72ASe ehSub o0100 077708 0,5502 oO117 069528 ef ,JA79 00090 044668 1,2, 47 0009 e820 
yee F290 29186 o74nae ACULy,| e01H6A 079588 00,5594 00119 07072% 9151966 20089 285559 @{ ,2ehu 2009S 28555 
316 29214 of140 070096 26370 00104 081228 2.5886 00126 07198® ©1,2052 200076 obOS1% m1 ,2Suy 20078 0455 
30% 29138 00140 077498 08281 00176 829A = 0,6178 09127 073258 01621359 00108 eBV3AR% of, 248 2007S 26508 
29e e901 20140 2 76A98 08193 0019] 08450 |,6470 00130 07455% ©16¢225 007A oF816S =1,2u94 20087 208595 
2Ae A985 20120 080098 o81ou 200153 086038 2,6762 e014) 07596% a1,2312 00081 ehB9O® @1 257) 00074 25069 
270 28909 “e0110 e811 9e ehO1L6 00158 o87419 ©,705u 0146 077448 21,2399 e007! ob9O7% ©f,20uK 00081 08750 
268 27832 =A 140 oh259e 07927 00122 eBRO3® 047340 00154 478988 &1,2485 40076 49045® =1,2725 0072 8822 
25° 25750 Olt oh SK9S 0 7A39 00157 090008 o,7038 20166 08063% e1.2572 00007 09110% =1,2802 00005 08667 
2ue 04679 0122 065118 07755 001ed o9123e 0,793) ©0169 0823359 ©1,2658 00075 091869 91,2679 0007) 28957 
23e Fos 00125 eFosoe 07602 00108 092428 ©,A225 o0170 0803S ©1,2745 ©0060 092468 91,2956 20086 090U5 
228 24527 20110 oATUos 07574 200%6 e9$2Re 2, A515 00168 06570% =1,283) 20059 09304 my, 5058 20062 29105 
2ie oAuSy 20116 068620 07485 20066 09414 ©, A807 00169 067398 01,2918 00062 e95S07® o1,35110 00077 09184 
20e oAg7?u 00087 ob¥u9e 07397 20066 095008 ©,9099 00157 oABI6® ef ,5004 00056 09423 of, SLAT 00u7u 09255 
196 24298 00117 090608 27308 20078 095788 0,959) 00153 090498 ef ,5n91 e002 094bO® ef ,3264, 0057 eISle 
14e oA22) oOlia o91A08 07220 00071 096498 02,9085 20140 091898 of 5177 00053 095598 my, S5uy 20003 e9S75 
17 eA ©0098 092780 07132 00051 097008 7.9975 00137 093268 =1 43264 00049 eV5UH® oy, 3u18 20062 9437 
168 0A bd 20089 oF5n7e 07044 0o0uu 097458 01,0267 00121 o94U7® o1,5350 00046 296550 @1,35495 2005) 09488 
158 27992 =, 0UA1 29dube 20955 60047 =o 97918 04,0559 00103 09550" 15457 00045 496798 91,5574 20074 09561 
146 7910 20095 o95u18 ob4ob 00032 o9A2UG of ,nb5) e00R5 09635% 01,5523 00047 09725% #1, 56u8 00045 29000 
13° 27639 00092 o9osse 06778 00027 o9AS1@ of ,1143 ©0069 097048 of ,5610 00037 097028 91,3725 00057 0906u 
126 07763 20081 e9Tiue 20689 20023 e9ATS® w1,{U36 00058 097628 9145697 000U) 96048 91,5602 00057 09724 
lie 07087 20051 0976S¢ 2660) 20026 099008 e1,1728 0005) 09813® 01,5783 00038 o9BUl® ©1,5879 00045 097166 
10° e710 20062 »9b278 26512 = =0Ned 099248 21,2020 00044 49857% =1,5A70 00929 497708 ©1,3956 40036 49802 
96 07534 o0u35 295606 eb4eu 000d 09945 wf 2312 00037 0 9B93% 01,5956 200026 09895% e1,4035 20055 09636 
Be 07458 20039 098998 06336 00013 0995HK® 01,2604 ©0028 09921% 21,4043 00023 099198 ef 4110 00038 09674 
Te 073A) 20027 099200 0b2u7 20011 099098 01,2696 60026 099UBS 21,4129 00020 099586 ©1,4187 e0use2 09905 
be 07305 20029 299558 26159 20010 099798 01,3148 00019 09966 e1.4216 00920 099SH8 @} ,Uebu 20020 0995 
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te 27076 00005 0999¢e eSAGS 20nu4 099968 ef ,u0o4 ©0005 099978 ef ,uu7s 00005 2999S ©), 4u95 20008 0 94b8 
?e 20999 20002 299946 25F08 20008 099998 01,4556 00005 1,00008 ef ,uSoe 20004 099978 ©) US7e! 20006 09990 
le 20925 290% 1eHnnus 25717 ©0001 120NV08 21,4048 ©0000 1400008 ©1,4H4A e0AAF BeONCO® ef p4oun 20000 1,0000 


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Figure B-2b 


PORTLAND, MAINE 


ZtLxe 


12345678910 12 64 69 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER  o @ waxinun @ «© NEAN HIGHER X © MERN 


123U5678910 12 6 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oewern © = WEAN Lonen X= NININUN 
2.3 


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MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE @ = NEA TIOE X= STO DEVIATION 
0.5 
. XK KX KKK KKK HEX KKK KKK KKK KKK KKK KX 
-0.5 
12345676910 12 64 69 7M 719 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-2c 


122 


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549° tog0° einn®te eiisa® nn0o0° Se2cct a e11490° nnoo? Zoc2e°te s0fol? ecto? Z2oon’t 
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2429° ete2o° Tinn*t* seaze° Suto® corges rY 22040° nmnoo® n2ce°te eafiise 6120° 0906°t 
£S509° 0000° 4iin’t= entity? 620° dorect a 295908 ge@00° Ve92°te atont® Satoe nooset 
£s09° 400° fnen*t= eG6eL° 2gto° Teneet 296 2 20450° 9800° 4992°te sotste 6420° e2tget 
9nus® S.toe Otgn?t= efoLL° nn00° songet wtf ry #29n08 nn00® {292°le eo601° 0000° 29otset 
O4ss* Sito® 9Len°t= sete e@g0u° bonc°l eet s 26En0° nnoo® oase’te wo60t? 0000° 9otaet 
secs? 9900° 2nen*te e294" 0000° qasc’t eof s 9S6£0° 0000° 9SS2°le wa60t° egtoe oreset 
40¢s° otzo° goen*t= s2oL° mn00° 49S95°t) 20n 6 256f0° 2qroe 2252°te 26960° satoe ng2ecg*t 
@80S° @900° SLin*t= s99SL° 2ato° To9oget stn ® #£920° nn0o® @an2*te seas0® noo0® 962593 
000S° nnoo® Inin?t= 29Gn° 2cto® Seog*l aah 2 26t20° noo? nGn2*te wong? 0000° Tesset 
9Sen° 2900° Lotn*te esecc° 9900° a99c°h afn * aSLtoe moo ben2%*te #onz08 ot2o° s9iset 
a9gn° £920° nLon*te sigec® gv00° 20ca*t ann * 22et0* nn0d® 4ere°te 29250° Satoe 66£S°t 
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bocné ot20¢ 900n*T= eSotc® Sscto* OLea*t 89h * ann0o® 0000° otgerte eet20® 9en0e conget 
engn® 2ctoe Zlos* t= #9¢49° ecto® moee’t etn 2 2nn00? 0000° 9922°le e2gto® nnno® Toss*t 
ttane @900° esor*t= 09619° ecto°® 9g9aF°b san 2 enno0o® 0n00° eSee*le 299008 mnoo0e S¢S6°h 
fL2tn* 9900° S0et*tl= 214999° ecto® 2495°s aon e enhooe v0u0® ate2’te annnoe 0000° 69SS°4 
ston° eA00° That? te #S¢S59° 9n00° 9068°s 20S * qnn00e 0000° nete?te snn00® 0000° €096°t 
ines? Scto® “cac?t= sarno® ot2o° Oneg?t fs * ann00® mnco® bSt2°te anno0o® nnoo® 4096°3 
Oe eaeso ease eater ste eee eearesseeersaeetetasaatasenaPeaesstaneaesegeye SSHHKOHH Se HHeSSee eeseaessaseeteseatses 
* °O3u4 é Ltwlt e *Miud AIwId ¢ °ON 2 os °O3n4 Ani) @ *AaNg tw) 
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29S 
245 
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NOTLINAY NOTINGTeisra 


123 


Table B-2b 


LOMER LIMIT OF CLASS INIERVAL SHOWN, ALL HEIGHTS ARE NORMALIZ&O WITH RESPECT TO HALP THE MEAN RANGE G,453 FEET, 


8 HIGHER MIGH WATER 9 HIGH WATER ® HOURLY VALUES LOW waTER ® LOweR LOw mater 
s 8 Ld 6 
Classe LumER FREQ, Cus, LOweR FREQ, Cum,® LOWER REQ. LOwgR PHEO, CuM,® LOWER REO, 
NO, © LIMIT FREQ,® LIMIT FREG LIMyT LIegT . FRE LIMIT 


SOSEHHSHSFOSSSHTSSSSSOSSSH SOTHO HHO SEH ESSE OHOSSOTSOHS SHE HSOS HE SSESH ROOTS O USE 
1018 1eSo037 00002 20008 1.5637 00008 00001 34,5037 06000 
1008 165550 0002 .0003® 445529 ,0002  o0002% 34,5325 00008 

998 {eSuos 00006 000098 4.5420 200006 00008 43,5014 00003 


Bovegevosvensosvocs Socceecece 
209205 00001 000018 0903 200002 
205308 00002 71049 20002 
eooui2 00001 Misa 00008 


96¢ 1eS37e e0vasy eVUSR® 1.5312 000128 00020 34,4702 00000 #29515 e00u2 71220 00081 
97e 109290 s0ULF e0udbe 41,5204 00010 00050% 14,4390 00004 203018 20009 00020 
Gee 1eS20$ 2001S o006V8 435095 90019 000499 41,4079 c0vie e572) 20005 200018 
9Se 1eSiteo eAvd2 eV0VE® 41,4987 60019 c0068® 4,3767 0016 eedb2u 0017 00039 
Que 163029 eovuel? eON19@ 4 ,4879 00036 00064 14,3456 0002) 2.5927 00033 2005) 
Oss 104942 o0u32 0V1SU® 41,4770 00026 eOL108 14,5944 00022 2.6031 00023 0007S 
92% 124650 eoudsy 001616 4,4b02 00031 001419 43,2632 00030 eeolsu 00020 200628 
Q1e 124709 e004u eVe248 4,4u55u 00030 eO17T1® 1,252) 04039 ©00237 00025 20089 
90e 108042 OUT o0271% 1oudue 00039 00210 34,2209 e00u0 2.0340 00050 00077 
be 124595 e0uSu e0S25% 1 euss7 00056 o0auo® 34,1698 0004u7 @,0Uu3 00082 00078 
ORO $e450K 2600S 00SH8% 154229 00056 20282 141546 00058 ee0S47 40058 00096 
B7e 1e4u22 00066 e04S4e joule} e003! eo3i3% 41,1274 0068 © 06650 200056 00087 
Boe 104535 00046 00808 3.4012 00039 00353% 14,0963 C08} @,0753 20048 20086 
BSe 104248 eUUSe 005588 453904 00044 00597 4,065) 06095 2vnud 20087 
Bue 10416) 00054 e0012® 1563746 9004S c0442® 34,0340 oG413 20008 2030) 
B39 1edy74 00054 oVoo7Te® 43,3087 00065 00507® 4,028 00330 00009 20102 
B2e 103966 00063 e073Sue 31,3579 00048 005554 o97lo e03e 00072 00090 
Bie 16590) 20009 «=p C148 «4 3u74 20030 90606% 9405 eOluu 20098 00110 
BUF 103814 20063 o08Oe® fe3303 00056 206029 ,9093 00154 20089 20108 
799 «foS727 200083 009050 443250 e000) 0072s? 06784 00162 00067 00069 
788 jeSo4u 00077 elvec® Lo3lHo 00002 007658 oAu7g 00167 o0ted 201329 
778 103554 60005 e147 165038 00003 c0847% ,A158 00174 00127 00304 
Toe tosuo? 20060 el$u7e 1.2929 00u6S 00953° 07847 00177 00354 00102 
75e 165360 c0072 ofe1¥® e221 00088 = 09918 847555 00380 00109 00110 
74e 103295 00U71 elevue yo27is 00009 0j060% o72e3s 00375 00157 00119 
738 103206 00095 01544 162604 00009 01129 6912 of ioe 00163 e01se 
720 Lodt19 c0u7) 014558 4.2496 60069 of2384% 46600 00158 0109 00145 
718 teSu35 00080 01935 152388 o0087 01305 46289 ofiSu 00168 20146 
70% Lead¥uo 00098 olot$® 3.2280 00089 oj Svue 0977 00346 00176 200350 
698 104659 008} ol 714s Jo2i71 00099 o1493e 05005 e0laa 00178 00359 
088 102772 00078 01798 $e2063 000%6 019898 45354 00135 00178 00347 
078 102085 00095 ofbA7® 4461955 c0N2! 017098 45042 00120 00180 00198 
068 1e2599 0077 619048 4o484H 00108 of818% 447351 00120 00109 00304 


00215 oS177% ©1,0045 00215 
00195 oS309% 01,013) 0021S 
00164 03555% C1 ,0210 20259 
00184 037578 ©1,0502 20244 
00199 039509 91,0587 20235 
00192 041268 ©] 0475 20209 
00162 45108 91,0559 e0ee7 
00205 045158 ef ,0044 o0eeh 
00199 o4719% © ,0750 00255 
20160 048959 91,0816 0214 


5% 162512 060099 o2003 40173A 00118 014508 e44t9 e011? 
04% 102425 60098 o2)61% 461630 00119 2055° o4107 00317 
ose 1023386 00105 e2@2o0% 3,152) 00153 021 bbe 037% 00110 
e2s 10225) 0008S e23U9e 1oyuty eyi2o 023u7% 23484 colle 
ele 102105 cO117 e@4e7® 451305 00138 c24254 43173 0107 
60% 102075 60099 c@boee 14,1197 00109 e259ue 2280) 00107 
S90 10199) 00120 e20608 41,1068 00165 027590 02549 00305 
S89 101904 o0120 of813® 1440980 00176 «=o 29 50% 02238 «00107 
S7oe 101617 00128 e2443e 1 ,0R72 00165 031190 01920 02102 
Soe 101751 e0l2o0 o3007T® 10703 00186 055058 olola 00300 
558 1elovd 001 Su 032018 41,0059 00203 035u84 01503 00098 00199 05095 91,090) 20215 
Sue 101557 00140 e354) 1.0547 e023! 037598 2099 00102 00215 053099 91,0987 o017e 
538 l1elu7y 00155 o34%8 43,0438 00218 05956° 20080 00099 447869 0150158 0229 955378 =4,4072 0197 
$20 101383 00129 30258 34,0330 20209 41008 20508 00303 204890% @1,0261 00229 65700% ©1,1158 0107 
519 1el2% 00128 037538 14,0222 0227 43934 00056 00096 449K6® 0140365 00218 65965% 1,1e4u4 40104 
508 tol210 00188 =o 3941 140113 6019 04585 050255 00103 65089% 1.0408 V2$9 eoe24 o1,15$29 0129 
uve telies 00382 o4123% 34,0005 e02el 04805 @,0507 001301 00S71 0023) 064558 of ,1415 00140 
ube 151030 c0e0e2 o4s2se 9497 §=6 0208 =o 083% ©,0878 00100 100674 60198 »6653% =1,1500 0129 
u7s 100949 40194 o4S1oe 09789 = O91 05204 01190 00099 953888 e1,0777 00199 .6853% 9141566 0099 
Wee 100462 0199S o4TN4e 209660 =o OL OF =o 53.91% 91502 00300 45488% 01,0881 00166 «= 20398 O4,1072 40337 
uS® 100770 00187 o4b958 09972 00147 05960 o,18615 0102 055908 91,0984 eVloo 07205% “101757 00310 
U4e 190669 60214 o54U4® 49404 00200 05768% @,2125 00300 01087 90105 «678708 141643 0122 
43s 1006002 o02as2 oSsule 09355 00179 05968% e,2436 0102 057978 2151190 0015) o7521% 91,1928 00095 
u2e 100519 e003 05004¢ 09207 e019? 06105% o,2748 00302 eSB9BF 9101293 20159 276608 ©) ,20hu 00105 
wie 100428 eve2u 056260 09139 00213 00578 3000 00309 .6007% =1e1396 o0142 o78U2% @$,2100 20099 
gue 100342 20245 eouTue 09030 00209 0650R® 0,357) 00300 eOSS3% 9101900 evied 07925% &1,2)85 00092 
399 100255 00256 eostue eh922 e022) 20808 o,308$ eOtsu e6223® 2151603 00095 080209 91,227} 00099 
she 100168 00202 ooSS10 ohAia eotrd 009829 20,3995 oolsa 03706 e011? oB137% ef ,2557 0009S 
578 190081 00173 oo7uue 08706 00186 071088 2.4306 OU Cd eO45UF 93,1009 e0l22 1,2ehue 00110 
Jos 09994 e0203 oo9uTe 08597 00192 07$00% o,4018 00116 005608 #151912 00094 063530 24,2508 00330 
358 09908 00190 070978 06469 20160 07540% 2,4929 o0h19 00686% ef o2c016 00099 ob6452e “1 ,co13 09080 
jue o9R21 00157 o7esue oh 361 00173 eo77TL4® @,24) 00124 06809% ef ,2119 00091 eBSUSe @1 42099 00060 
33e 09754 0017o o7usve ob272 00182 078490® 02,5953 00335 0694U% Of e2222 20n92 08655% 142785 0077 
320 09047 e0110 o7S4u0 b1ou 00360 08076% 2@,586u 00130 07060% =1e2325 ov0od 087298 94,2670 o0u7e 
Sie 29560 09100 76948 28056 200182 04258 «,6176 00148 07228% 91,2428 20090 28H20% 91,2950 20074 
sue 09474 0012S o7b2Que 07947 00179 08450 e,0U87 00152 o73A0% Pl oeds2 00067 289078 =1,504) 2008) 
246 4347 = =—601385 = PHS HO 27hS9 =o 019G =o BHYI% = gH799 = 0 0150 =o 755O% PhadoSS 0007 oh974% @1,5127 0008) 
ane 09500 oOhN obU71e e731 e0lol ob752% o7I1t 00109 07700% 91,2758 20062 09030 23,5213 20087 
eve 09215 0019S 81708 07623 «00122 «=p BBTU® o,7U22 0N1TH «=» PBBUF @ 1, ebu! 00007 9108% 91,3298 ,0U0b 
269 e%120 00355 of Side o75i4a 00133 09000 o,7734 00182 080668 ef .2944 20005 o9107% 91,3584 e007? 
2se e939 = U2 op HU HO e7T406 =o 0188 «=o PL.25® AVES =o OLAS =«_-g BABS 1 430KB =o VHF =n FA SO% HM 1,509 = 0099 
eus 08955 00125 obSo5e 07296 00095 09220 02,8357 00181 084298 ef o3151 00058 092948 94,5555, 0008S 
ese 04600 ovlde 040050 07189 00086 095059 =,8669 00169 045988 of ,325u 00074 eVS088 ©}, 504) 00078 
eee 04779 oOllh 047778 07084 00081 09360% 2, A980 00165 087059 91,5357 ovou? es?eo 00095 
2ie eHo¥2 = 0102 =p» HT V8 06973 = 0V03 =o PUU9® = 9292 =o 0156 = BY21% O1e5U60 40055 9 94H9% M1,5b12 40060 
208 28605 00105 ob¥Aue eOROU «= 000% =n PHLO% =o 9H0S =o 0154 =o FOTW 155563 = V0SU = VHNS® 91,5897 20000 
19° 04519 00090 o9UT4e 00756 00053 09509% 06,9915 0014) 092159 of, 56607 00049 09572% —1,39863 00063 
186 68432 60099 oV174® 4664R 00098 090279 a1,0227 0133 0934608 9453770 0043 59615% 144069 0068 
178 08345 20UK9 oF2o5e 206939 00053 096819 00538 00117 094O$% 91,5873 ©0040 09659 =1,4154 0004) 
168 08258 00104 sFSo0e 0043) 00092 09753% 01,0850 e010) 0950Ue 145976 20042 09697% ©1 44240 20062 
156 04171 o0Ubs o94uBe oos2y vod, 09773 of,1162 00062 09646% 01,4079 00041 09738% $1, 4520 00060 
14e 0885 00089 oIS3o08 00215 00044 098179 1,475 00064 o9710% 93,4163 00032 09770% ef ,duth 00048 
13e 07998 = 60074 090078 56106 00052 09A49® 01,1765 060056 49760% 91.4286 0040 098108 =1,4497 40055 
1as 07914 0065 o907ae 25998 000287 096769 01,2046 00050 o9B1O% 91,4589 00050 09840% ©1 4582 00050 
iis 07824 = 0089 =o PT 8 05490 00026 «=o PYU2# wf ,24UB8 c00U2 49658% 14,4492 20028 98088 =1,4668 4002) 
106 07737 = 0059p PHI Y8 05761 00024 09426% 01,2720 60032 o9A90% ©154595 0022 49890% =1,4754 40090 
99 eTo51 20U59 oVb7b0 5078 00015 099419 01,305) 00026 099188 ©154699 00017 099079 m1, 4bS9 00044 

be oT56u 00U38 099100 05505 eoulG 099509 wf, 3543 20023 o99K9 Of guho2 00033 099419 &1,4925 coved 

7 07477 20055 99508 25456 20017 09972 93,5094 ©0020 09901% 91,4905 00017 o9957T# @1,5010 20025 

oe 07590 e0u2t 99719 05548 0 0081 099839 m1,$906 00014 09975% ©1,5008 e001 25096 =, 0017 
Seo 675uS Out e94KCG = S240 =o DOVE =o WIHT wp gue7B =o 001 099b0% aLooI11 0V0}0 999609 91,5162 0014 

ue 27217 20008 eI9Kde 05152 20006 099959 01,4589 ©0u08 099948 #355215 00009 299898 91,5267 0011 

So oF su s0V00 099958 05025 000U2 09995 wf u9U) e0u04 099988 0165558 00004 o994S@ =4 45555 20008 

26 e7uus 20003 2999K8 04915 00004 09999 01,5212 °0U02 099998 ef ,ou2) 00005 099409 ©1,5458 00006 

1s 00956 00002 4990008 04807 00004 feVuVo* o),4524 2000$ $,0000% 94,9524 20002 3400008 =1_5924 00005 


124 


PUANAMAAMANATACALWIAAMAMANAANAL 
AUN 


“Fatutaataltabil LAMA 


“a il 


BOSTON. MASS = JANUARY 1963 


BOSTON, MASSACHUSETTS 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER 0 « waxinun © = HEAN HIGHER X » MERN 


12345678910 12 6&4 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER e@e wean © MEAN Lenen Xe MINEMUN 


2.3 


o9°90R 80 
® oad @ oO 


on oo ong nomooooaogag 
09 ©o ® Oo 4 5 . 5 eoe00090000 


12345678910 12 64 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © -j} owrnac roe @ = NEAN TIOE Xe STD DEVIATION 


Oy35 
0. 0 xxxXxxXKXKXKX xX KKK KK KM KK KK KK KKK KK 


Was 


12345676910 12 6W 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-3c 


126 


0000°t nrnoo® 4ogS°t= 20000° nn00® doar el et ® e 
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416° Be00° areS*t® #9666" 0000° o202°t «Ss ® «092° e900? O1GS*°Te #6009° @g00° 999G°) 26S 
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OF n6® 0n00° ONIS*t® e2too° pnd0° Oote*t 26 * *6952° nnvo® lagg°te antace egtoe oodf°t 86S 
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Table B-3b 


LOWER LIMIT OF CLABS INTERVAL DROWN, aL HEITUNTb ARE NORMALIZED WITM REBPECT TO HALB THE ~EaN RANGE 4.792 PRET, 
° 


° HIGHER AIGH waTeR ° MIGH BATEN MUURLY VALUES ° LOw water ® LUstk Lu# water 
. ° ° . ° 
CLasSe LuKek PREQ, CUM,® Lowen PRE, CUM,® Lower FREQ. Cuh,@ LOWER PREQ, CUM,® LoOweR PREU, Cur, 
NO, @© Limit FREQ,® LIMIT PREUQ® ULyMIT FREQ,® LIMIT Feu LIMIT bRtu, 


Soetoredoarecsesegoress 


SeSloeereseessosagsesese Seereconsreosong S8OReeeeteeeesereesesenee SOK oTeSOKesoreessonese 
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1008 feSu9u 20008 20005% 4,597u 20004 ©0005* 4,u87y e0unt 00001 2.5633 00003 000048 71162 20000 00002 
99e 125013 20008 eCOle® 41,4972 40006 ©0011" 4,450u 20003 2000u8 05732 20000 00004 e,7245 40005 20005 
98s 1.4931 20020 00032 4 ,uA71 20011 e0N21% 14,4259 e0U06 200108 =,5A50 20003 200078 ©7529 20009 00014 
978 164809 40015 .004?® 1.4769 .On1U 00035® 153953 20009 .0018® ©,5929 0005 400128 T4U12 001? 0030 
96% 104768 20025 000698 1 uhb7 00015 20050% 41,3047 00033 00032% | ,6027 00006 000188 2,7495 0001) 00044 
95% 124486 e0ued 200958 11,4566 00015 ©0005% 41,3342 20015 00047* =,6426 40018 20056 ©,7576 20023 20063 
Que 164605 20027 e01208 4,udou 00921 20066 41,5036 00020 e0067# e,622U 00012 000488 2,764 20038 00101 
93e 124523 09036 00150" 1,u%o2 20026 eOlle® 4,275) 20026 00093 256523 00017 00005 #,7744 00042 00145 
92% Jesaue 00029 eOFAS® 1 .ur6n 00028 00140" 14,2425 00030 00123e 00019 00084 =, 7827 00057 00200 
918 104300 20udy 2C2e4e 41,4159 20032 001728 14,2119 20036 001598 00019 e002 ©,7910 00084 00284 
908 1.4279 20044 202698 41,4057 20nd 20216" 4,5h14 2000S = 02028 20036 00139 ©,7993 20072 00357 
B98 124497 20060 003308 4.3958 00055 00251" 141508 00052 2025u8 00N3SA e0177% @,B0T6 00075 0452 
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e7e 1.4030 29065 e045$@ 143752 20028 003198 14,0897 00072 o03ASE 20036 0025S @,B82u2 00108 0629 
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ale 105545 20053 007998 1 ,3142 20046 o0b2eu4 29065 e01g4 01100 ©.7505 00077 006US® =,874} 2009S ol2e2 
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ase 0A978 00122 oAUI7e 274UA ented 09059 =,A052 00167 eAS1U@ ef ,5N22 200065 092048 @1 45598 20062 06960 
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as 07265 20008 699958 05312 ©0004 ©) ,4u70 00007 099938 ©1,5091 200007 099848 ©1,51358 e00le 09977 
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128 


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MONTH OF THE YEAR YEAR (1969-1981) 


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MONTH OF THE YEAR YEAR (1963-1981) 
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131 


HIGHER HIGH WATER e 
8 
LUmER FREQ, CUM,e 
LIsiT FREQ,® 
SSSesessssessesssese 
128832 2000) 2000 
108099 20003 200048 
1208566 20009 000138 
1o6usu 00013 e0ueT7s 
128501 20019 e0QUee 
128368 20025 2007k8 
1e4056 00024 200908 
107903 20040 e0l toe 
107770 20040 oul77e 
107658 20049 002208 
107505 0005) eueT7e 
107372 20045 203228 
107239 00048 005708 
107107 00058 004298 
100974 e0uds 004748 
10664} 20055 009298 
106709 0QU6u 005940 
100570 20079 000738 
106443 00064 007378 
106310 20Ubu 006028 
100176 00069 0878 
100045 20u8u 009558 
125912 200087 el0ues 
105780 00087 oll2ge 
1eS04u7 00066 011958 
105514 20100 elsois 
109582 00078 ol S798 
109249 eo009§ ol47ee 
1eSilo 20U9u oldbo8 
104965 e0u75 eloule 
10485} ©0U99 ol74uue 
1e4718 00094 016556 
104565 00109 ol due 
Ledud5 00105 020d9e 
1eds2u 00120 eclove 
104187 Oe wm oeebue 
104054 00130 o241oe 
1e592e2 00129 e25$9e 
105769 00147 o2bboe 
13650 001327 0261 $0 
1o35eu e01dy o295ue 
103391 00165 oS1188 
103258 00177 adedue 
103125 eOlTy 034058 
102995 00150 oso1oe 
102660 00208 030258 
162727 e021 o402u8 
102595 00195 0421 Be 
leeuo2 e0172 043908 
102529 00172 o45e2ae 
102197 o01Tt o473Se 
Leenod 00205 o495Ne 
10193) 00184 o512ue 
101796 0014) 052618 
1eloo6 00172 054550 
101553 0018) 050158 
Leluodu 00168 057628 
101268 00180 059628 
1oti35 00190 061558 
101002 00167 eosuye 
1008609 00165 269036 
100757 00165 boobs 
10004 00106 208508 
100471 00165 e70018 
100339 00160 eTlolse 
100206 00175 075370 
100073 00352 074698 
0994 e0leo 075940 
09806 20150 o774ue 
09675 00333 o767be 
095u2 00130 oF00K0 
29410 00127 08134" 
09277 00106 o82use 
09444 00130 ohSTUS 
«9012 00156 eb51¢e 
08879 001035 08o15% 
08746 20108 287250 
2Bols 20090 oHO13e 
ohuby 200099 89128 
oh 548 2082 2899u0 
08215 00084 090788 
oh0bS o0UBY oFloee 
074950 00079 o92uee 
07617 00069 o95i18 
o7obu 00072 0958e8 
07552 200609 294518 
e749 20060 095148 
27246 c0Vo] e957 $0 
07154 0064 090378 
e7021 00052 oFo9U8 
20868 00045 097338 
06756 20052 oI7Tboe8 
obo2e3 00942 oIb2be 
06490 00042 098708 
26357 ©0042 o991ae 
06225 0003u o9%4o8 
00092 00024 099700 
09959 0012 299bds 
09627 20010 2999$6 
05094 200U04 099976 
2S5o1 00003 LedG0us 


Table B-4b 


LOWER LIMIT OF CLASS INTERVAL SHOMN, ALL HEIGHTS ARE NORMALIZED WITH RESPECT TO HALF THE MEAN RANGE 
® 


000008 
200008 
000028 
000058 
000118 
000179 
00020% 
0003578 
000518 
0006608 
000848 
001078 
003298 
001598 
0019ue 
002359 
002809 
003558 
003908 
004659 
005388 
200219 
007088 
o080S8 
009108 
oloese 
elt Sue 
ol25ue 
ol 3879 
o152e5% 
olooue 
o1801e 
ol Wboe 
e209ue 
oe24ee 
023858 
025328 
22o78% 
o2b198 
029568 
030928 
032238 
033518 
oSUT0® 
030008 
o3722¢ 
0 3845% 
039658 
040808 
41970 
o4318e 
443578 
045588 
040808 
048008 
049208 
0S 0468 
051738 
053018 
054358 
255078 
05702% 
oS BU7e 
059958 
061408 
063068 
oOUTUS 
eb04Ue 
068208 
270098 
072058 
074008 
075908 
077608 
0796ue 
281808 
063658 
0 A5558 
087298 
288988 
290538 
29188 
093162 
094258 
095208 
0960358 
09673 
097359 
097918 
096378 
098758 
099068 
099308 
299578 
099788 
2998u8 
099918 
209996 
099998 
1,00008 


WIGH RATER ® HOURLY VALUES 
6 
LOPER FRE, Cum.® “LOWER PREG. 
LIMIT PREWo® LIMIT 
SSSOTH SHS HS SSOSSHSSSSHSS Se eeeesageesosessssase 
1,6432 20001 00001 14,8032 00000 
1.867? 00002 00003 14,8483 ©0000 
1.8512 20006 00009 41,8433 ©0002 
1.8353 0011 ©0020" 4,778 00003 
1.4193 00014 00033" 14,7430 20006 
1.6033 00014 00047 14,7079 ©0007 
1.7874 000284 eOO7T1® 456729 00009 
Lo7714 000485 00096 31,6378 e004! 
1.7554 00033 00129" 14,6027 00013 
10739u 000d4 00155* 34,5677 20016 
1.7255 00029 eO181* 14,5326 00018 
1.7075 000s2 002148 41,4976 00023 
1.6915 00029 00242 3.4625 00025 
106756 00040 e0282% 14,4275 00030 
1206596 0048 00351% 34,3924 00035 
106436 00043 oo374e® 34,3574 00039 
Le6276 =o 0045 =o 0H19F =, 3223 00047 
1o6117 00090 00408 14,2873 00053 
1.5957 00047 00515% 34,2522 00063 
105797 00008 00563® 43,2171 00069 
1.5638 00051 00054 43,4821 00073 
105478 00066 007008 4.4470 00063 
105518 00058 00758 4,1120 0087 
105158 00066 cv824® 14,0709 .0u97 
1204999 60059 c0865* 43,0419 00105 
1.4859 00072 00955 41,0008 e0i1s 
104679 00075 efvere 09718 =o ONS 
104519 0081 olthse 09$07 00120 
104360 00094 ef2u5* e9Vlo =e O04 333 
1.4200 00093 of29ee 28660 00158 
104040 00106 eldoue 0AS1S 00139 
105864 00105 eotSlue 07965 = 00437 
103721 e0lev elosue eTolu eulaa 
103561 00116 ol Vue 07204 00148 
10340) 00152 01 8784 26913 = 0148 
103242 00149 o2027% 96503 e0tus 
1.5082 00129 02156% eb2i2 00107 
102922 00100 02316? 25662 euluo 
1.2703 001586 e2475e e551 0014) 
10263 00185 026008 05160 00137 
102443 00196 28168 24810 °0130 
1.22683 e01S6 02972° 04459 0013) 
Leeleu 00181 o 515350 04409 00128 
1,190u 00108 oS3a1e 03758 0124 
101904 00159 055004 03408 = 0425 
1010495 00172 oSo725 03057 0012) 
401465 60172 03844% 42707 00123 
4o1325 00191 edu sue 02556 =o 0821 
101105 00198 042528 02005 011d 
101006 00206 04458e 01055 00117 
120640 00178 046109 01 504 00121 
1.0646 00192 048 be 00954 0120 
100526 00194 050018 e00uUS 0012) 
1.0367 00204 058058 00255 00122 
10v207 = c0215 05418% 6,009A 60120 
100047 .00176 05595 o,0448 cdlav 
2986A 00372 o57%06% 040799 00120 
09728 00197 05964 02,4150 00127 
09508 60218 = «—o01b1% @,1500 0128 
09408 60210 =o 591% 0,165) 00134 
09249 00208 06599% 2,220} 01382 
29089 00221 00620% 00,2552 ©0439 
26929 0103 0700S a,2902 o0luo 
08770 «=o 0184 = on T187# w,3253 0 01 U8 
28610 o01bt 073508: 063603 00151 
28450 00109 067537% «,3954 00160 
28290 001609 o7707® e,us0u e0167 
08131 00178 =o 76658 ©4655 =o 01 70 
e797 00103 06048 20,5000 00177 
07811 00140 08158 00,5356 00189 
07652 60145 68353% ©,5707 00196 
7492 o01S1 06484 «6057 00195 
o7332 00137 08621% 0,6408 10190 
07172 00151 08752 o,6758 00197 
27013 «00156 ob46K® @,7109 00196 
00853 09130 09018 «,7459 00196 
06693 e0lle 09130" 0,7810 0065 
005353 00009 09229 02,8161 00166 
00374 00108 p9S51% ©, 8511 00170 
06214 00095 094208 ©, AB62 ©0169 
06054 60075 0694999 2,9212 00155 
05895 = 0070 =o 9509 9565 00130 
05735 00065 0963539 0©,9913 00130 
05575 0000S 090%6® e1,026u 20105 
05415 00047 09743 of 0014 ©0097 
05256 00042 0976S% 01,0965 0006S 
05096 60030 o9815% 41,1315 00070 
0493S6 = 0026 «=o PHUZ® 441666 = 002 
o4777 000352 09874% 0f,2017 00056 
o4617 60024 69898% 01,2307 000u7 
04457 20020 099169 02718 0036 
4297 200020 099S7# 01,3008 00031 
o41 3A 200280 099589 01,3419 00030 
03978 §=60008 699669 #143709 c002i 
03618 00012 09978 of,4120 ©0016 
05659 0v0us 099639 a1 ,4U470 00013 
05499 20004 o9VK7d o4b2t ©0008 
03359 200008 0999S® 01,5172 00005 
23179 «20003 69998 01,5522 00003 
rd) 20002 = 99998 01,5467$ c0v0l 
22800 20001 $60000% s{,6223 0000 


132 


1.90008 


LOw WATER e 
e 
LOweR FREQ, CUN,® 
LIMIT FRE 
Seesselooosesssosns 
©2819 00001 000038 
2.2953 00003 000048 
©,3087 0¥002 200068 
e322) 00002 000088 
23355 ©0004 200128 
©,3u89 0009 0002s 
eoso2s 00015 eVosus 
eo3757 00012 000400 
oe, 3A9 o0014 e000U8 
204025 00015 evuTSe 
@o4159 00024 200998 
2.4293 00023 o0sels 
eo4ue7 00038 00100e 
2.4561 00055 001958 
254695 0037 e0esue 
@o4A2Y ovou? e02778 
2 e493 00040 003178 
299097 20049 403608 
00057 oubees 
00072 euugue 
© 99500 2007) 00505e 
©0654 00075 000408 
2.5708 20098 007368 
2.592 20093 =, 08518 
2.600 S6 00042 ouvese 
2 0170 00097 olOeue 
@,oS04 00099 oll16e 
250038 00110 eleave 
2.0572 o0ie9 ol S570 
©260706 o01$5 eluver 
© ,0840 ols? ol6298 
©,0974 00129 017908 
207108 00127 o1605¢ 
e,72ue 00107 22052ee 
©o7376 00100 eeetis 
207510 0165 o2Su7e 
@,7644 00176 e257a8 
2.7778 00473 ee745e 
©o7012 eO17A =a a9ade 
©8046 00205 osi2oe 
2.8180 00216 es3uee 
2.8315 0194 255308 
@ 8449 00210 037518 
e,5563 00196 oS 9470 
eoOTI7 oVees 041708 
© ,b8S} 00206 o4370% 
©8985 00234 046108 
209119 060255  ,uboue 
229253 eV2e2 oS0RT8 
©9387 00219 = 535% 
2095e1 Oe | oS4OTe 
©,9655 00210 oS7078 
©9789 00219 059208 
2.9923 o02tt ool37e 
©1,0057 00185 eo322e 
eo} .019%1 00210 065320 
e10032S 00105 007198 
©1,0459 00175 e6b900 
01.0593 00159 070u98 
eol,vre? 00166 72159 
21,0861 o01oS o7 S008 
21,0995 00146 075208 
e1o112e9 00150 o760708 
el ei2o4u 00134 078118 
21.1398 0012s 079300 
e1,1532 e122 oH05be 
®1,)1666 o0I15 o6171% 
©1.1800 eviel ohevee 
e1osesu ov0¥l ob suSe 
2102068 00102 o84BSe 
@),a202 00100 245658 
elLeesdo 00114 28699 
©1,2470 Ove 068108 
®@heeo04 20093 ob9USe 
102738 40090 489978 
e3.ed72 00072 090098 
2453006 0084 0915ue 
ebesi40 00073 092278 
103274 = e00K1 93088 
©1,5408 00073 oF SH18 
03542 e0No6 eOUKTe 
1.3676 20072 295188 
o15A10 20000 295788 
e1 esau 00050 o%O2be 
21.4076 00054 o90b2e 
#104213 00045 097278 
el dsu7 000u5 o9772e 
@),4u61 000348 o98119 
©1,4015 00028 098598 
154749 ev0$S2 498708 
04883 00020 098908 
21.5017 00926 099108 
eLoS5151 00025 099398 
2105265 000195 099540 
1595419 00009 099039 
21.5553 00012 099758 
03687 00012 099078 
21.5821 60005 99928 
#15955 00003 099958 
21,0009 20002 499988 
21.6223 00002 $,00008 


1,630 FEET, 
LOmER LOW aAaTER 


LOatR 
LIMIT 


e1,0114 
©} ,0242 
21,0309 
©1049 
e1,0023 
©1,075) 
e1,0878 
@1,1005 
e1,1133 
P1obeou 
ey ,1587 
PL ,isid 
PL ,loug 
101709 
21.18% 
ey ,2u2es 
P1.ehs) 
e1,2¢78 
0240S 
©1,2532 
®1,2060 
©1,2e787 
#1 ,2e914 
©1,3042 
21.5109 
©1.3290 
155423 
1,555! 
1.3078 
21,3805 
o1,393e8 
®1,4N600 
@1,4187 
e1,43i4 
e1,4444 
© 1.4569 
©} 4690 
©) ,4823 
495) 
©1,5076 
21.5205 
e1,5532 
@1,5460 
©) ,6587 
e1,5714 
e1,90u4 
©1,5969 
©1009 
@1,0225 


pREw, Cus, 
pRea, 
SOedooreesooseocens 
20008 00008 
00008 00003 
200028 20005 
00006 o0UN) 
00005 e00lu 
0001) 00U2au 
e0Uled 20030 
e0ule 000486 
00015 0000S 
2002eu 00065 
00015 00096 
20ueo 0012s 
vue) e0hGu 
00055 00179 
00039 eO2le 
00055 0025) 
20059 00515 
e0ua? 005586 
00086 00445 
20059 00502 
20075 00577 
00u8” 00057 
00089 e0TKe 
0001 00846 
00407 20955 
oO$k) 0064 
00305 oS370 
Oe es olebe 
e0keu ol4uy 
On e124 
00107 olo8d 
00S 49 ol 637 
e010" 0200) 
AC errs 0 
0016) 22502 
e01o8 e2470 
00189 02059 
00197 e20Se 
00389 eduuo 
20203 3249 
20560 3429 
0022) 03050 
20189 43830 
20213 24053 
e02e9 o4eby 
o0eds o45Su 
20206 04740 
09197 04937 
o0e3S 05370 
00244 05413 
00ee7 25040 
o0ely 0285) 
00196 o6049 
e02u" 06254 
20379 e043) 
00383 ebo16 
00453 06769 
20173 =, 0942 
00198 07135 
00154 07268 
20108 27437 
00137 o757u 
00146 o7T19 
Ose0 07640 
0012s 07903 
o03NS o50T6 
Odd) ob 67 
00087 06274 
00307 ob Sby 
0102 26483 
00443 oSo26 
Old 08739 
00093 06632 
20005 ,8697 
OUT) 08967 
20096 «= 9005 
00077 a) 
20072 -9el2 
0077 09289 
00069 09550 
20009 09427 
20u48 09475 
20005 49538 
20062 49000 
2005$ 99653 
20056 9708 
20042 49750 
vouse 09782 
00026 096086 
0024 49632 
90ued 09660 
00032 09092 
20024 09916 
20085 9934 
200035 09946 
200015 0990) 
eOO17 o9977 
00038 09986 
20003 09994 
00005 09995 
00005 $0000 


“TAMMAN nh lal i la haal MANN A 
peer wi rye 


“Talal hahaha atatusttid 
E “ola Duh 


JANUARY 1963 


Figure B-5b 


NEW LONDON, CONNECTICUT 


Oa 20Xq oa FO o O 
Qo 2 ) 7 5 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (19653-1961) 


HIGH WATER o @uexinun © @ KEAN HIGHER X © MERN 


) 
12345678910 le 9 7u 
MONTH OF THE YEAR YEAR (1965-1961) 
LOW WATER o= ween © = WEAN LoNER = Xe WENENUN 
08) 
ane Fogg Oo 8 SFOHpoogeoooofHeooteoe 
©7e2OCO8LOC® Congagos02209°%%°%D 


.6 
123456786910 12 6Y 69 74 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE o -]} owrnar tie @ = NEAM 1208 Xe STO DEVIATION 
fap 
° a KXXXXKy KKK KKK MK KM KKK KKK KX 
x x * x 
12345676869 Rey a 6u 69 7 719 
MONTH OF THE Y YEAR (1963-1981) 
MEAN SEA LEVEL 
Figure B-5c 


134 


0000°S hoo? Tote®t= 20000°! nndo® a 

9566° 0000° 6608°T= £9566° fn0o0® % gqud? \POG°T© setng? ge@n0? antg*t «2S 
9S566° pno0* ar0g*t= w2tbo° 0000° * 2croe 69on°t= so2eg4° Satoe el2g°s 2fS 
2to6° 0000° Llod®t= w2t6o° n00° a nod? Bon’ te sonte® 40¢0° moes?t «ans 
2t66° 0000° Stoed*te «A9996° 0000° 2 et2o° 4nan°?te eangg® Satoe OL£S*) 66S 
2166° 0000° noel°t= «A9a6° nnoo® a sitoe Sean?t= 2#1999° 65209 Qnnget #95 
266° 0000° foLd*te 2S5286° 0000° a ot20° nedn°te wanna? eeoue 22Ss°b #45 
2t66° 700° Tedd°te #S2A96° 0000° * @920° Z299n*te 209998 sitoe R6SS°t 8aS 
9996° nnoo? OL9L T= 252096° 0000° 2 2e1oe boon*te «aengtge egtoe G29S°s = =86S 
Ss2ne® 0000° g09L°t= S206° 0000° * 620° Onsn?te= »¢S09° 2ctoe todset #09 
S2a6° 0000° Lngi®te «5206° mnoo® a 2egto® adnn°te at2es? £920° 42aseh 819 
S2e96° SL10° 9and®te wlele® 0000° 2 SLT0° atnn*te 29S05° Satoe €06G°s 229 
6ng6® noo? hand*t>= «talo® 0000° * ectoe 9sin°te e2ens? 2qtoe 640S°) 999 
S096° 6t20° Corl? te alele® pn00® a mnoo® noen®*te wISs¢s?® eto? Gsooet and 
98f6° @900° 2ogd*te aiglo® 9900° * 8en0? {fen°te estes? Satoe TEloet = 2S9 
@626° nnoo® Oned*te s6n96° nndo® 2 ot20° tLintte annnge 2ctoe Rg7029°, 299 
ns26° fhroo® 6LTL° t= 25096° 0000° a 00008 OTin®te s2ten® ego? ne2o°4, 949 
tt26° 0000° Ltte*t= 25096° 0000° * 2gtoe onon®te wtein® 2g 10° O9ro*, 299 
Th26° e2gtoe 950L°t= 2S5096° 0000° e #900° beot°te sonon® egtoe 9Grg*, 269 
6406° nro0® S669°T2 25096" 0000° a @900° 92of°l= waisn® S4toe Z21S9°s #04 
Sf£06° 620° £569° T= 25096" 9900° 2 sitoe S9Rf°T* a2nen® e@00° eysoet ath 
9tee° 0000° Z21e9° te #atso’ nndoo® ry SLt0° LORT°TS angen? noo? ng99*t owed 
9tee° 9900° Trag’t= sncno® hnoo® a phoo® enacete atlan® 7920° Indoet efd 
9240° SLto® onda? t= 20En6® nno0o® * 9900? Og9g°le wines? 2ctoe 4t9ee) end 
£Sse° Sito? 99g99°t= *£9986° zcto° a Sz5o° otoget= watace ot20° fouget #54 
4i¢e° 9a00° 9299°T* «nG26° erto® * ge00° esst°te s96S¢° Sito 6969°S #94 
6e920° £920° g9S99°Te= wf2to® nn00° s 9g00? 9ond°te elenge e808 Gn0get wad 
9200° 9900° moSa* t= #6106° 9e00° * nnoo® SEniete eegee obeve Tatges wed 
ofod* otz0° 2nno°te stose® nno0o® a nnoo? MLit®te anite? ev0? GolLeb 26d 
otad® S{t0° Tef9° te wlnoa® 2ctoe * 0000° ergr?t= so20¢g° 2qtoe ne2eetb 208 
png? 8900° o2go°t= a9see° Sito° a 900° IWoen°te asene® 2gtue Otel #18 
9Snd° ego? ag29°t= s0n99° nn00® * 2¢10° o@lf te sf9L2° 6120° 92nk°t 228 
Ssegl° ecto® Loto*t= 29658° nnvo® e g@00° w2le°le ennsge® 27gtoe 20Sl°t ef8 
ford? noo? seto°t= 25958" 9@00° * @a00° 490f°t® e2ine® So£0? @4SL°t ene 
ents.® 8900° nlLo9*t= ss9ne° pndu® * 29nL0° nnod® S00g* te sgine® nnoo® mG9z?t «#99 
teou° 0000° £109°T2 wlane® 9a00° c2ec°h w9¢ 2 #2040° gen0® mnoe°?be ances? ano? tedaes 2990 
t904° #800° TooS°te afeee® 9e00° oooc°! elf s ant90® 0000° feee’t= souAl? £920° LoAlehb 248 
469° Togo? OseS*t= a9nze° 0000° SL40n°t see 2 e790? 210° t2e2°te s¢2a1° 0u00° feece°tl 299 
£299° @a00° 62eS° t= 29n2e° e900° 2stn*t eee * w2an0® 0000° V09L2°be #€29t° mnao® 6564°S 469 
s£s9° S4to° L9OLS*t= este’ 8H00° @22n°tl 0h * ecan0?® 900° 8692°T* s6LGt° 40¢0° SeoAet 2806 
09¢9° 2cto® 90LS* T= 20109° 0000° noin®tl aln s #56208 9@00° 4£92°T® s2zet? ot20° Ttite*t eto 
g229° 6t20° mngs*t= «0209° zato? Ogin®t een * 240¢0° prone 94S2°te egsol? 2gtoe Lalyet 26 
6009° Sitoe T9SS°t= s6f6L° nn0o® 9gnn?t efh 8 «£9209 0000° nigerte at2e0° 0000° ngeg°t fo 
ites° Sito® 225S°T= 2S6AL° 900° 2cSn°hb ann * #£920° 00008 WSne°te wt2o0° 620° Onge*t e2no 
@S9S° 8A00° OonS*t= #L08L° 0000° e09n*t eSn e #£920° 9e00° 2oc2°t= e2040° egtoe Qtne?t 266 
Oiss* 9900° o6rS*t= #109L° n00® Saon?t 29h s wSLt0® nnvo® Oggert= «490° 8900? Zone*t #96 
28ns° 6teo° eses*t= sf9LL° 2cto® Toun®t git * e2Et0° 0000° 6922°teo w2and° 2qtoe 99SH°sb 946 
£929° 9a00° 9L2S*t= «259° 0000° dcenet wen s e2Et0° noo? 4022°te #tcgoe 2gtoe nnog*s #g6 
Sits? 6120° Gt2S*t=> «25692° nn00° Tton°t eon 2 «9900° 0000° 9ni2°te a6t20° pnnoe O2du°t #66 
9S6n° Sito® FStS*t= s9gsl* nn00° egen?t #205 e #99nne nnoo? Ge02°T= aguto?® 9e@00° Loceet w200T 
Taine 2cto? 260S°t= ennsd? zcto° S90S°t «IS * enn00® mnod® q2o2*te vagno® 9¢00° Cege°h wot 
TEST USOCTISOT ECOSOC OCAOSE UTC OPEC TOES UOSCESCSCCSOSCCCOCCOOOCTCOSOCOCOLOCS CO COOCCOCSUCET OPEL EUS EER EES ESP PEPE EES EET UES ESE RT EE 
o °o3us |” AtWIT 9 °o344 LIwl) °ON 6 « °O3u4 atwid 9 °mana LIwI7?) 8 °ON 
e Wh *aqdd 4aM07 @ HD *odud 4asot eSSV 138 a °WND aad 4amo7 @ °HNd °odud 43°01 #§Sv1) 

bd * e 2 2 2 


® 4aLlVM 404 
°1334 eL2e°s 


Ow JW9dLXF # HFILY™ HOTH 
JONVYE NVGA FHL 47VH OL 139dS9N HLTH GAZTIWWHON Jaw 


Teefc9ot 


°OwW IWddlLXF « 


NNOJ 


@ MALV™ 407 9m JW9mLXd @ YILV4 HOTH POW AWINLKT 8 


NOQNO1 


eGg-d 2919eL 


SLHOTIH V1V 


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8NWOHS TWAMFLNT SS¥19 40 LIWwI7 44mM07 


NOLLINNd NOTANGLYLsIa 


135 


Table B-5b 


LOWER LIMIT OF CLa®S INTERVAL SHOWNs ALL MEIGNTS ARE NORMALIZED WITH RESPECT TO HALF THE NEAN RANGE 40870 FEET, 


a MIGHER MIGM WATER ® HIGH HATER s HOURLY VALUES ° LOW WATER a LOWER LOW WATER 
e ® r) s r 
LuUwER REQ, CUM,® LUneR PReu, CuM,® Lower FREQ, CuUN,& LOWER PREG, CUR,® LOweR PREG, Cum, 
banat PR LIMIT PREU.® LIMIT PREQ,® LIMIT PREGo® LIMIT FREQ, 


SSSSeeseessseseess PPPS ATIT ISIS ii itiiiiiiti yy 
tole 108673 20003 e0L03® 1,6873 00008 00002 14,8873 00000 000008 epS371 00001 000018 0,5950 00002 00002 
100e {18746 00008 e0011S 41,8695 00004 00005 14,8502 e000! 000018 o,3518 00002 000028 e,6072 00009 00000 
998 104599 00009 e0V2U8 4.8513 00008 e003 31,8352 000d 000038 e,s606 00008 000048 «,6)94 00032 00018 
98e 1ebuo2 00012 e0U32® 14,8333 00035 e00d6* 14,7702 ©0003 20005 ©,3844 00002 00000% e,6316 200008 00020 
9%e je8325 0002} 00053 34,8153 20008 e0USU® 1, 7394 00005 000108 3002 20003 00009 ©6438 00009 00055 
9oe 1281,48 e00lu 0V0608 14,7974 00017 00050 4,702) 00006 000168 ,4150 00005 00034% 27,6560 0024 00056 
958 168051 00024 =e C09U® 1.7744 4001H8 00069* 1,665} 00008 = =,0024% ©,4258 40007 .0021% 2.66082 0036 0092 
gue 107914 002) eOlLll® Je7oiu 00049 00087 1,6280 00009 000348 e406 o00N8 000322 @,6804 20024 20lle 
9se 1e7777 0033 0144s 41,7434 00a4 eO111% 14,5910 00012 60046% @,4554 40007 60058 ©,6926 05H 0153 
92e LeTouu 00023 e0L07® 45,7254 20032 00243 445540 0012 000588 a.4%02 00017 00055 ©7049 00032 00185 
9ie 1207503 00048 0021S® 1.67075 000as e0104® 1,5)09 00010 000759 e,4A50 00034 00009 e,7I71 00039 0224 
90 1e7306 e044 008558 14,0895 200285 00169% 4 ,4799 20020 000959 e,4997 00019 e0087% 0,7293 20044 00267 
69e 1e7?e2e4 0004S 00300 1.0715 eo0s0 e029 14,4425 00023 00138 65145 20026 o0113se 00060 00327 
86 1e7u%2 e00S0 00330% 1,0535 00050 002499 34,4058 00020 003448 065293 00022 001358 00050 00577 
678 {00956 000383 o0S7TUG 440355 00055 e02h4 4,3688 00030 o0L74® a@,S4ui 00026 e0lol® 00095 200429 
Boe 100819 20039 o04098 41,6175 20058 c0322% 14,3316 00030 ,0210% ©,5589 0038 401998 00077 = 0500 
859 106082 .0U4U 204528 1545996 60007 ec) 308% 152947 c00UH 90254 ©5737 60030 02299 00084 40590 
B4s 106545 0005} 005038 155416 000288 00596 41,2577 00048 003028 ©,5885 00038 002078 00104 00093 
B38 106408 60046 009518 145036 c0U4F o0443 142207 00057 03599 266033 40047 03148 00099 40792 
622 100271 000Su 000058 14,5456 20090 00493 1 ,1830 00067 004278 e,0fh} 20001 205758 00089 00884 
Ble Leoise 20000 00005 14,5276 00050 0054U% 34,4460 0072 004999 2.6329 00060 0045$5e 00120 0100) 
B0¢ 165997 00077 =o 0T4EF 1.50496 90000 00604 1,109% 0081 005798 ©,047@ 0073 05098 0010) 01101 
798 105860 60058 oV780% 34,4917 060055 00659% 14,9725 00089 406099 200080 §.0588e 00107 3208 
78e 103723 e0u6o3s e0bUS® 1 ,U737 20048 co707® 34,0355 00096 007048 e,6772 00079 006078 00355 01543 
778 109580 00077 009198 41,4557 00008 007098 09985 00410 008748 ©,6920 00090 007568 00128 01470 
700 105449 = 90075 =p VVVHS 144377 00002 008519 ,FO1U o0117 09918 00079 08576 00140 = g 1040 
75@ LeS$12 20002 o1050% 454197 0070 o09uLe 09244 =o 124g Aue 00108 »e094use 00108 = 1778 
74s 105175 00098 o1154e@ 14,4018 00078 00973° 8874 00133 012469 00113 010588 00165 0194s 
738 1eS058 00095 o124be 43,3458 0007 01050¢ 08503 ooyus of 5918 00815 oll72 o0177 02120 
726 104904 20084 01329 1,5058 c0UHY o1157% 48133 00148 415398 00134 443068 0017) o2e%t 
T1e@) 1od7o4 00075 0140S 43,3478 20090 012289 07763 00155 016948 00139 0} 4uoe o0ely 02501 
70® 104627 00085 of487% 453298 00110 os dsae 073% =o 0163 = 18978 00157 = olo0se 00368 = 2088 
oe 104494 00093 015808 163118 o01lo ejusue o7022 ©0167 e202eue 00175 017786 20200 02688 
68% 104354 20092 010728 452959 00106 0f500% 06652 0174 421988 00157 §=9 19399 2001 03089 
67s 104217 00102 oS774% 362759 avlld ofo7ue 06284 00179 «=, a3778 00194 = =g2he29 01,0101 00246 =o $$35 
obe 19408u e0l0u 018788 31.2579 00157 ol 841% 05911 00179 025578 0¥189 02318 01,0225 00396 035355 
oS Losous 20099 el977% 41,2399 00191 019019 0554) 00380 0275Soe Oe 025098 10546 e0ele 03744 
o4e 193806 oUhlt 02086 1,2219 00133 0209S% S170 00373 029098 00216 02725% 01,0408 00395 039359 
63s 105009 e0hed e2210% 162059 00180 02255% 04800 O77 030878 ©, 8991 o01he 029079 01,0590 o02l0 04149 
028 105532 00146 o2@3619% 1.41860 00153 o240be o443y 00176 o3202% 0,9159 00258 031458 ef ,0712 0022) 04570 
618 105395 0134 24928 1.1660 00154 e2502¢ 04089 = 0368 = g 34318 e997? = V2U3 = g 33BHS ©1,0K34 p01 14586 
608 103256 00155 e2027% 151500 00199 e27e1e 03089 e016) 03592 0,935 e024! 036299 01,0956 00224 04600 
598 105121 00173 028008 141320 00103 o2bbue 03519 00165 037568 0022 038818 1,1070 00398 209005 
588 102484 0149 22949 441140 00179 03003¢ 02948 =90154 = 39118 00212 44094 ef,h200 00180 95185 
S78 1eebu7 e0)40 05006 1,0%01 00159 os2ee? 02578 00156 04066 ©,9878 00257 043519 01,3522 00192 09577 
50s 1.2710 e017a o3263° 14,0761 0017! 055959 02208 60151 042179 01,0026 90225 ,4570% e1,1445 O17] 05948 
55% 102573 00182 eSuuue j4,06y1 eO176 =o 909% = BST =—« oo 0449 = g UOOF OLL017TH 60238 948148 ©4,1567 0104 5714 
Sus fe2uto 00201 eSo4o® 3,042) 00215 oS THUS 01407 o01S7 045258 af Y322 00235 od049® 0f,1689 o01To 05687 
She 102299 0018 oS83d 2 1eueds 00210 039940 01097 eolas 046079 04,0470 00254 092650 of, 181) 00150 06045 
S2e 102162 00188 e4U2u8 1ouNe1 00197 o4191® 00720 00145 048122 01,0618 200220 095029 04,1935 200160 20223 
519 teev2o 00162 o420ae 09A82 00215 o44uue 00556 e044 049560% ef 00766 00223 057259 ef,2055 00177 06400 
50% 101869 60189 43918 o97U2 00196 o4600® @,0014 014! 05098F ©1,0914 U249 459748 ©4,2177 00370 96569 
49s 101752 00165 045746 09522 00207 046079 ©0385 00136 052349 01,1061 oV2e1 061999 04,2299 0014) 06710 
u8e 1elold 00192 47608 EY) 00212 05u20* ©,0755 00141 053759 ©164209 00202 o6397% ©1,2422 00177 06087 
u7s 101478 e0dul 049088 oMlo2 e017 052379 o61125 00130 055119 101557 00207 06604 eo) 2544 00195 o7042 
Goo 19154) 00198 oSlo0e 0893 00250 eS4U7% 0.14% o0ss9 096518 91.1505 00193 007979 ©} 42066 00108 07210 
458 leleuw 001862 05 5Ube 26803 00198 05645 «,1806 00136 09786% 2341053 0177 009748 ©1,2788 0015S oTS03 
G48 Lel0OT 60164 =o SS11% 98623 =o 0200 © SHUS® =p 223H ©=— 0 0335 =) SURV 44180) e0foo = =o7140% 91,2910 90155 o7517 
use 100950 00182 050958 oHUuy 00224 060698 e0lue 060048 ef ,J 049 00187 073279 03,5032 00349 7066 
“ae 100793 00177 odb71e A203 00191 002598 00139 06202" ©) 2097 0018) 075089 e1,3154 00304 07769 


aie 0017S oO 4se oH ORY 002u7 0O4O7e 00140 063S42% el ,e2u5 eOluu e7652% e},35276 00119 207686 
408 20209 06252e0 27904 20209 00076% o0h4e2 004899 of 2395 00102 07614 01,3396 00155 08042 
398 00235 .0485e 07724 =o 0210 000% 019M «= 623% $o2540 40159 6797381 04,352) 00123 = 8165 
388 00209 edovue 27544 00188 o7074e 00140 067658 2192688 00446 081208 e1,50U$ 20090 08255 
37s 001% 2668u0 o73ou 00216 729% 00146 06910% 21.2646 00136 °1,5765 00109 26560 
soe 00182 070608 o7ibu 00185 0o747%6o 00150 o7066% al ,e9bu 90155 o1, 3067 00108 06468 
350 00180 =e 7eN78 27004 00215 =o 70948 00152 =47218% 91e5152 10108 21.4009 .009%2 6560 
jue 00174 o742ie 00825 00175 078068 003Se o7370% o1,5280 00117 P1415) 20092 0805) 
358 00185 e70008 06645 OR a ebue04 001635 075359 of, Sued 00129 ©1,4253 00069 04740 
see 00108 8 e777L8 46465 0105 ob2e54 e0lo2 67695% 1.3576 40092 21.4575 ,00%9 8836 
sis 00149 e7%2e28 00285 00161 064068 00165 078598 ef,57%2u 00095 24,447 00090 08926 
308 00152 =o buTue 06105 00180 065808 00465 = .80e2% 91,5872 00085 21,4620 2008S 49008 
290 00107 ob2uie 25926 =o 0124 «=o B7404 00168 = 81908 @he4019 40073 e1.47u2 =, 006) 09089 
26s 20128 ebsooe 574m =o VISES = op BHU RE 00165 483559 efe41o7 v0AI 21,4864 20089 49178 
ave 00153 oAS190 05506 o01ad ob%07% 00162 08510% 104315 00078 21,4986 20050 09235 
208 00122 oboule 05586 00140 090008 00164 046608 |1,4463 00070 093509 01,5108 200050 09289 
2se 00157 ef877T@ 05206 00098 o917Be 00155 088309 ef 4611 00000 093908 01,5230 20002 09550 
aus 06101 086780 05926 e100 092788 00148 o89B83% 01,4759 00001 094578 01,5552 00057 09407 
2ie 00105 089858 0487 00090 093699 03,0015 0014) 091249 01,4907 00056 095158 ©) ,5U74 00090 09457 
228 00092 090798 04667 00072 09440% 01,0504 ©0126 092508 ©1,5055 00046 095019 01,5596 00000 09547 
aie o0Ubu 091599 o4uBy 0009S 09495 01,0754 00413 093038 2155203 00046 o9OU7® 04,5719 2007e 09589 
209 00089 e92uTe o4d07 20056 095519 of 1124 e010) 094048 of ,5551 00044 09651% 01,584} 00044 09032 
198 20096 09 5S4u8 04127 00055 090049 w1,1495 00087 095519 01,5099 00059 096908 91,5965 200050 09062 
188 00069 0945 be 03947 00048 09652° 01.1805 00077 096208 of p5646 oVO4uT o9737% ©1,0085 00058 09700 
178 e007] 094898 03768 00040 09092 01,2235 00068 096969 0f,579u 00035 09772% ©1,6207 20038 08737 
los 0057 095408 23568 00057 09729% 01,2600 00063 097598 04,5942 00032 09605% ©1,6529 00050 097735 
199% 00003 090098 03408 00059 09708% 01,2976 00051 098108 ©1,6090 00950 096548 014,645) 00055 09606 
14s 20068 090778 05228 000288 09790% ef ,3340 ©0040 098508 ©} ,0256 00027 o9Bol® ef ,0575 00045 09b54 
138 00004 697378 03048 90023 096199 01,8717 00034 00027 —9HH8® 146695 0024 49875 
les 00054 oIT91Le 22569 20057 09856% 01,487 00026 000287 099158 ef ,0618 20023 09098 
iis 00039 oIbSue 02689 000¢6 09862% 01 ,uu57 00u2) 00N7? 6993S2% #1, 6940 00018 9916 
108 00042 p98720 02509 060020 6993 01,4628 0020 00014 29947 01,7062 .0V26 69944 

Ye 00053 099258 2529 00022 09925% 01,5198 00015 eV0le 09%02% 1,71 64 0003) 09952 

be 00029 099558 02149 ©0020 09940% 01,5508 0008) 00010 099728 ©1,7300 0001) 09962 

Ye 00012 099658 01969 00017 09962% 04,5959 ©0009 00007 099798 ef, 7428 00019 e997 

os oOUlt 099708 01790 00012 099748 a1 6509 00000 00010 099898 01,7550 200009 09986 

Se 00014 099898 21610 00008 099624 of ,6079 00004 00006 099958 e1,7072 00000 09992 

de 00V08 099978 01430 20005 099674 01, 705y e000e 20002 099968 ©1,7794 20002 09994 

Se e0une oI99he 01250 oun? 09994 w1,7420 ©0001 1600008 e1,7A0S 000028 099988 OL, 7917 0002 09995 

ee 20000 eI99Be e170 00005 09998% of ,77%) ©000U 1,0000% =1,8n15 eun0d e9V9H® @1,8uS9 20ude o9997 

ile 00002 16000uUe 00K 00002 1e0000% 04,810) 00000 $,0000% @1,410) 00902 $,0000% ©1,%)6) 2000S 14,0000 


136 


ENANAAMAATAMAAMIMINANAVARAARAL 
SV 


“Haha aheha AAA AAMAUMA AMAL 
TTT 


JANUARY 1963 


Figure B-6b 


BRIOGEPORT. CONNECTICUT 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 -~ waxinun @ © NEAN HIGHER X = MERN 


ee S8ssF8g, peeesS Seek eg ggaegs 


x x x 
x x 
= xX x X x 


=a 
12345678910 12 6H 69 74 79 
MONTH OF THE YEAR YEAR (1965-1981) 
LOW WATER © = MEAN = MEAN LOWER X= MININUN 


268 
pooosjecedoo 


agnoaOOaaggada ooo 
TOD OOOGEOBG SO00g © 


12345676910 12 6u 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE @ DIURNAL TIDE @ = NEAW TIDE Xe STO OEVIATI ON 
5) 
° ex KXKXKXXXXKK x XMM KKK KKK KKK KKK KKK 
AN) 5 5) 
12345676910 12 6U 69 74 79 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-6c 


138 


Q000°% 
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Table B-6b 


MOURLY VALUES 


LOWER 
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1eA379 
1.6046 
1.5799 
105574 
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124369 
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1.3008 
1,7693 
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21,6459 


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00166 e2t1Ae 
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20166 erusne 
oC16a oP 6132 
00164 oP 7778 
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00157 2 30908 
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= .9Nu2 00180 0 55108 
eo9161 00191 057008 
20928) 00165 0 SROS?e 
2,940) 200189 240558 
2.9520 0018S 042390 
= ,9Au0 e019u4 o4d sue 
2.9759 oNfAr odo ne 
2.9R79 00162 euryee 
2.9999 oO1AB 049668 
m1o01iA 00199 051658 
21,0238 0017 053508 
@1,935A 001S2 eSunhe 
21,0477 00176 056648 
-1,0597 29109 oSASSS 
21.0716 00192 06M25% 
2160836 00170 061958 
71.0956 oN 1A? oh tT7e 
2101975 00170 o65u7e 
2101195 00174 267228 
21.1315 00150 ohB73e 
elolusa 00194 070679 
°1.1550 tu? 072138 
e1lole74 06190 o7T3oue 
=101793 00155 75168 
e1e.1913 00147 o766ue 
210203? oO AR o7A518 
#1.2152 00145 079968 
2102772 00138 oAh155e 
“1.2391 00126 oboe 
e1.2511 00120 eASHOP 
=1.2b631 e0leu 0 AS0Ue 
21.2759 000A eho1e? 
21,2R79 eOte) oAT5S0 
e1.c9R9 00100 BAS $e 
#105109 eO}ia 089678 
=1.5229 000935 09MO1e 
e1.53uA 2 00RR 09 uve 
=1.546A 00NGU 09Pu Se 
-1.35ARA 00079 e93eece 
=1.3707 200A6 29unre 
21,3827 20070 o9u7ARe 
1.5946 2 0NbA 2 95uUbe 
=1,4064 206) 096078 
104186 20057 2966048 
r1e4305 00Nu6 9708 
2) ,4u25 20038 297UA8 
21.4545 20NUS 297918 
21.4664 00033 29Roue 
=1,4784 20029 VAS SO 
-1.4903 00023 eIRT68 
=1.5923 20025 099018 
21.5143 20020 099218 
=1.52h2 29019 099348 
=1,53A2 00011 099518 
-1,5502 00010 099608 
=1eSbe1 00040 299708 
o1,5741 00008 099788 
=1,5R60 00007 0 99B68 
#125980 .0N06 99928 
#1.,6100 00003 099958 
=100P19 00001 099968 
-1,6339 00002 099998 
1.6059 20001 1.00008 


3.33% FEET, 
LOrER LOm waTeR 


LOFER FREQ, 
cimir 
e Secvegeoaccs 
o4b97 00001 
2.5012 09000 
#25128 20000 
e,5euu 200) 
2.5359 29006 
2 .5u7h 20006 
=.5590 0009 
2.57% 20009 
=,5822 00et 
2.5937 20021 
2.6053 2022 
226169 e00e7 
e.67hu = 0034 
2,640" 00025 
2.5515 20037 
2.663) 200036 
e,hTa? 20057 
= .6Rb62 0066 
2 .697K 2005u 
2.7093 2061 
o.22n9 PU 
2.7525 40088 
2,74uu0 21086 
=.7556 20097 
2,7072 29106 
°,77a7 oMl2e 
2, 7T9Nh 09128 
2 .f018 00136 
= Alta eO1es 
2.7250 =, 0140 
| .A3saS 09146 
=, AUAY ide 
2.4597 = 401A 
-.8712 0149 
© AKOk 20179 
e.hous 20188 
= ,9089 oOlou 
2.9175 29186 
= 29290 20174 
©. 9UNb 20204 
2.957} oA 
2.9657 20203 
2.9753 20194 
©. 9R6A e167 
-.99Ru 20204 
“1.9100 00198 
"1.9215 Pau ea | 
oy,o3sy oO1us 
=1,04u6 0174 
=1,05h2 Aus ea | 
-1,06078 00197 
1.9798 = on tSu 
-1,0909 00157 
e1,102u 00164 
e1,t140 09189 
e1eleSa 00165 
1,157) oO17a 
1 I4A7 09198 
—1.16n3 09182 
1.1716 00108 
-1,1Asu 0165 
=1,1949 00164 
=1,7065 001968 
e1,erAt oM140 
"1.7296 oN1Su 
=1,Pble2 00130 
"1.2578 00146 
=1,76U3 2125 
24,7759 niet 
e1,c87u 00140 
23,2990 Ole? 
1.31% 00137 
-1,52A1 eN10S 
1.3357 00119 
1.3452 09107 
=1.3568 00097 
et, SeAu 00101 
=1,$799 20082 
“1.3915 09088 
71.4031 20092 
"11,4346 29085 
"1.4Phe 00067 
-1,4577 00055 
-1,4494 29055 
"1.4609 09051 
*1.472u 09046 
=1,4AUN 20028 
-1,4955 09040 
=1,5071 09036 
-1,5187 onned 
=1,53502 00027 
-1,5414 20915 
-1,553u 20015 
-1,5009 20015 
*1.5765 20012 
=1.58A0 00016 
=1,59% 20009 
“1.6112 20000 
"1,6e27 200001 
-1,03403 20000 
°1,64S9 29003 


“He UALAANAALANANN AANA 
iver 
=F matstat NQitittUUAAAINA 
enn 


HOURLY TIOE HEIGHTS 
JANUARY 1963 


Figure B-7a 


Figure B-7b 


é WILLETS POINT, NEW YORK 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER = MAXIMUM @ = WEAN HIGHER X = MERN 


Bee e SR SOR RR ER RRR BS 


123N5678910 12 6H 69 7M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oenem © = MEAN LOWER <= MINIMUM 
2.3 
une u U m © oO 
BESCSSERRSS ELSeseeagssseeRE RSs 
LS 
0.6 
1234567686910 12 6H 69 7N 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE o -] owrnat tive O = MEAN TIDE Xe STD DEVIATION 
O45 
0. KK XKKXKXXXX XY XKKXXKXX KKK KKK KKK KKK 
=8} 
123456786910 12 6N 69 7N 719 
MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 
Figure B-7c 


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Table B-7b 


LOWER LIMIT OF CLASS INTERVAL SHON» ALL HEIGRTS ARE NORMALIZED WITH RESPECT TO HALF THE MEAN RANGE 3.586 FEET, 


. HIGHER NIGH WATER s MIGH WATER * HOURLY VALUES . LOW WATER s LOWER LOW WATER 
° e s 9 
CLASSe LUNER FREQ, | CUM,® LOmER FREQ, CUM.*® LOWER FREQ, CUM,® LOWER FREU, Lower FREQ, CUM, 
NO, © LIMIT FREG.® LIMIT FREQ,® UIMIT FREQ,® LIMIT LIMIT FREQ, 
FORTE TSO TE SHSSESSSERTETORF ESE HTH THO SHE SOFT HATHRER SEES RS EEE TOE RESORTS ORSEEE SEOTFO ROSH OKS Eo RES SeeosesFegageseoesscesy 


foie 124752 20002 200028 13,4752 00001 e00U1% 4,u7S2 ©0000 2000 @o4S77 e001 
1008 1.4675 20003 e0V0S* 43,4655 29004 00005 1,445) 00001 e0001% e,4684 20000 
998 1.4599 20006 e0011® 34,4557 20003 00008 4,4150 00002 c00US® e,u4792 20001 
98s 124523 20008 00018 1.4460 20005 e0013% 14,3649 00003 2000068 ©,4900 00001 
978 124uue 20012 eV0S0F 41,4303 20008 00018% 41,3548 20008 00014 ©,5007 00004 
9oe 124370 00006 e0GS0% 1.4205 00031 20029* 41,3247 00012 00026% 065135 00002 
959 104293 20017 200538 1.4108 20008 00038" 14,2946 00017 00043% e,5223 20006 
Ques 14217 e0Us2 eU005* 4,407] 0012 20050 14,2005 00023 20067% 0.5330 00007 
93s Leuyuo 00014 e007KS 43,3973 20008 00058" 4,2344 00034 00100% @,5u38 00007 
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898 125835 20029 0172s 43,3564 20027 eO157® 4.1340 ©0077 003328 2,569 00017 
688 123756 20057 e022ve 14,3467 200055 0©0192% 1,9839 ©0099 004318 265976 00020 
B7e Letodse 00030 00259%@ 443390 00034 20P2o* 14,0538 00119 00550 2,684 0023 
Boe 1203605 20045 e03048 41,3292 20035 eue2oi* 41,0257 ©013e 00681% 06192 00029 
aSe 155529 20044 e0O3UbR 443195 20045 003068 29936 00150 208318 20300 20035 
B4e 1e$u53 200059 004008 14,3098 00045 003518 09056 00167 009988 2,647 00044 
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718 102459 00102 ol4Nue 4 ,3835 2012! 2) 560% 05723 ©0127 7a07 00122 
70® 102383 00119 eles 101736 00118 oj4hus 5422 e0125 7915 00145 
098 102306 oO! olo3ss 4,41659 00130 0160) 3% 0512) 00145 8022 00133 
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o4e 1061924 00095 e2l4be 41,1152 00169 023078 os6lo ©0097 03973% @,4S61 00175 
ose 101648 00149 022978 =141055 00174 025018 03315 ©0089 o4062% %,6608 oUlb7 


©, 5081 20002 = =,0002 
20005 00005 
20002 00000 
20006 00012 
20005 00017 
e0Ule 10029 
20020 00046 
20ued 2007) 
20009 00060 
00018 00098 
20030 00154 
00032 00165 
20048 00215 
20029 00242 
20053 00294 
00054 0050 

00045 0039 

20063 00456 
20056 00512 
20075 00567 
200087 00074 
20065 00738 
0009S 008S5 
00085 00915 
2008u 00999 
00060 01079 
0008) 01100 
00095 0125s 
e0)04 01557 
20105 01462 
0115 o1S7u 
20leo 01700 
00126 01626 
20120 21940 
00122 02008 
00146 eects 
00152 02305 
oOlTS 02536 
20149 02086 


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598 1601542 e0lbo 024068 1.40666 o02le 055550 eelle o00A8 e4416% 06,9099 00215 ° 2049S 03418 
568 1ol4os 00176 oS0R4e® = 1,0568 00242 055978 e161) 00ue8 o45060% e,9207 00224 $0298 00207 o3o25 
578 101389 e073 032568 4.0474 00206 0 38y 35% e1510 0008) 045878 o,9414 00201 2036500 20259 o3bou 
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147 


Table B-8b 


LOFER LIMIT OF CLAB® INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED wITM RESPECT TO HALF TNE MEAN RANGE 2.236 FEET, 


e HIGHER RIUM WATER ° MIGH PATBHR e HOURLY VALUES 9 LOn wATER 6 LOrwtR LUn WATER 

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148 


aT il) ANNAN 
a LU rey 
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si | AU 


HOURLY TIDE HEIGHTS 
JANUARY 1963 


Figure B-9a 


ALBANY, NEW YORK 


CHOBDHHAHHHOAFZOHO0HO0CODO 


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12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1965-1981) 


HIGH WATER © MAXIMUM ® « HEAN HIGHER X © MERN 


123N5678910 12 6Y 69 7M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER ee wean © « MEAN LeNeR Xe MINZMUN 


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MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE © = MEAN TIDE Xe STD DEVIATION 
OS 5) 
0.0 3 see earn ee XKXKXKXKXKKKX KKK KKK KKK 
=9.9 
12345676910 12 6Y 69 7 79 
MONTH OF THE YEAR . YEAR (1963-1981) 
MEAN SEA LEVEL 
Figure B-9c 


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Table B-9b 


LOWER LIMIT OF CLASS INTERVAL SHORN, ALL HEIGHTS ARE NORMALIZED WITH RESPECT TO HALP THE MEAN RANGE 2o41¥ FEFT, 


8 
CLasss LUnER 
° 


HIGHER HIGH HATER . HIGH WATER 
7 
FREQ, CUM,® LOWER FREQ, 
LIMIT #REQ,® LIMIT 
SSSSCHSSSTTOS SSS AESESS HOH OTE ETT SESEESEESEE 
105802 20001 200018 41,5802 00001 
1e5716 20000 00018 1.65679 40001 
1eSo31 20004 200008 13,5556 2000U 
105546 20006 000128 1,5433 20008 
{e561 20010 090228 1.45310 20008 
105375 00012 000348 14,5187 20006 
105290 20012 00046 4.506u 00007 
125205 2006 000528 4 ,uGuy 20020 
1eS,19 e013 00066 4,4A19 e012 
105034 200055 00081 1.46% 00015 
124949 20028 eOLO¥e 1 ,uST74 20014 
1e4ROu 29015 e0lAue 14,4450 20020 
1ed77B 00001 eNiuse 13,4327 00015 
104693 00019 eOlL64e 4,ue0u 20028 
1.4608 20018 eO1A2® jy,u0K) 20033 
104523 20030 02128 1,395R 20n40 
1e4u37 ©0022 eU234e 14,3835 00043 
104352 0002) 092558 163713 00049 
1e42o07 20033 e02AKe 14,3590 00001 
1e4, Ay 20042 eOS3C8 143407 20081 
12409 20049 e037V08 1.3 duu 20077 
Yeo 20049 0. 1268 163224 0008) 
103926 20052 eO4Bu® {.309R 00087 
1o3AU0 20966 005468 14,2975 20100 
165755 20067 e0OtSe 14,2852 00133 
1e3670 00072 e00A5® 3442729 e0leu 
1o354a 200AR7 e97718 1.2607 00118 
105499 oO113 e06ASe® 1 ,2u8u 00119 
fesuig 20093 099778 1.23) 00127 
125329 09109 =o 10 AO® 81,2238 00147 
103243 oNl2} ef2o7® 4.2115 00140 
103158 200968 el3noe 1.1992 00158 
1o3u73 00124 014298 34,1869 200170 
102987 00136 01505 1.1746 e0170 
1e2gn2 2173 e1736e 1,1625 00179 
102817 00170 el9nbe 161500 00164 
102732 20169 020778 444378 00153 
1oPodo 00194 22318 1.1255 00185 
102561 20167 023968 141152 00157 
Le2u7o o0lds 025418 1,1009 00152 
102391 20170 ee7178 1.0886 e017 
102305 00164 e2BRJe 14,0763 00173 
1e222u 0021 05085 1.0640 00104 
1e2)35 e01AS 32068 3.0517 o01ot 
102049 00184 e3451% 4.0394 00187 
101964 00213 050659 1.0272 00175 
161679 00210 o347S@ 14,0149 00155 
101794 20200 e488 1.0026 00160 
Lo 708 00224 043058 09903 00168 
$0623 00239 45450 09780 20180 
101538 20192 247309 209657 00178 
101452 29225 049618 0953u 00185 
1ol3o7 09182 oSuse e944 o016u 
101282 00233 053708 09288 0O19t 
101197 20209 255ASe 291b6 eoilt 
Yottitt 00175 057598 09043 =o 0144 
1oln26 2020 059598 28920 e010u 
109941 00179 o613ho oh797 00149 
120ASS 20206 eoSuds 2667u 00143 
109770 0018) 265258 28551 00105 
120685 00167 200928 eA4PR e0lo7 
160600 00198 266908 oh 505 00125 
100514 eOln7 270778 208182 00195 
1e0ue9 20216 012938 26059 00153 
10934u 00155 oT 4u%e 07937 00195 
109259 20189 076380 o7ALu 00151 
1o9573 0915) oTTAGS 0769 00152 
100088 00157 oT9u5e 2750A 00129 
169093 00134 080778 207445 00146 
e997 e014 o825he 27322 00144 
09632 00175 eBuiee 07199 e011? 
09747 00152 245658 «7076 00143 
9662 200134 066998 06953 00155 
09576 00139 oAB3ho eo OAM e01es 
09494 00119 oA9579 26708 00135 
29406 00119 090708 206585 00119 
0932u 00139 09218 26402 e01l2 
29235 20082 292978 06339 00113 
09350 200607 09 50u8 26216 20099 
09065 00072 sI4soe 26093 00114 
08979 20057 294950 05970 20097 
ohB94 20063 095558 09847 ©0086 
2A809 200057 96128 09125 00nb4 
oA72u 20073 090858 25602 00073 
24638 eN04y 397 Poe 05479 00079 
oAS5S 00050 oI7Tb4ue 05356 2©0N64 
2AuoB 20045 oFFo4e 25233 20049 
28382 00034 oIhuse 05110 20049 
ob297 00u21 oIboue 49K7 20043 
sH2le 00050 296948 o4Hou 00057 
eAy27 20030 099 2U8 e444 00S 
obo41 09018 09942" Pr al 00n2R 
27956 00022 299hue 2496 00025 
07871 20009 099738 043573 20019 
07785 e0Ul2 eI9ASS 24250 20007 
07700 20003 oI9RBe 4127 00015 
27015 00090 eo IIABS 2404 20009 
07530 00096 099948 o SABI 20004 
o7uuy 20004 eI4979 oe S75A 00008 
07359 000M 299999 05655 00004 
s7274 09004 1.nnnce 25512 00003 


s 

8 
Cum,® 
FRE 
eeege 
000018 
000018 
e000608 
ooolue 
200228 
000268 
00035¢ 
000558 
00Ne7e 
000828 
000968 
oOll7e 
0013ee 
20160° 
o0193% 
002358 
0020778 
0032e5% 
©0366e 
004668 
2y5use 
0062e4e 
007119 
00811% 
e094ue 
019684 
01166e 
01305 
014328 


015798 


017188 
018778 
e2047% 
022168 
02596% 
025998 
027134 
o289be 
030558 
e526" 
033798 
035529 
37208 
0 3881% 
040688 
042459 
043988 
045588 
04726% 
049078 
050648 
0526098 
05435e 
050259 
057348 
o587A8 
eO04S% 
061928 
e635u8 
064998 
066607°% 
067920 
06946% 
eT100% 
072558 
074068 
075588 
076678 
078324 
oT97TTS 
ob094% 
062578 
083724 
084958 
066298 
067488 
08Bo0e 
ob9T5% 
09072% 
091 60% 
092858 
093698 
094538 
095258 
096058 
oIO6AE 
97178 
097058 
098098 
0F846% 
o9A798 
099074 
0o99S1% 
099508 
099578 
69972% 
o99b1F 
eo IFDKSS 
099948 
099978 
1.00008 


HOURLY VALUES e LOm wATER ® LOWER LOM WATER 
s e 
Lower FREQ. CUM,® LOWER enrer CUM,® LOWER FREQ, cum, 
LIMIT FREQ,® LIMIT FRE LIMIT FREQ, 


SHOSSSHOS TSE RO aeH RE SasEses Beeesevovosese 
1.5802 20000 000008 ©,592u 20001 000018 6324 20004 00004 
1.9494 ©0000 201008 6015 2000! 00001 e,641} 20003 00004 
105186 on00! 000028 ©,6105 20001 000038 2,6U97 20003 20007 
1,4878 00003 000048 256196 00007 000108 =,6584 20008 20009 
1.4570 00004 20008% ©,6287 20009 20019% 2,667} 2000) 20010 
1,4262 0006 000138 wm .6377 20010 20030 ©,6757 20006 §8=4 0016 
1.3954 20008 00022% @,6U68 20035 20045% e,68uy4 29004 20018 
1.3646 00012 00034 2.6559 00018 00063 ©6934 200010 00028 
153338 00019 2090538 ©,6649 40014 20077 7017 20012 20040 
13031 00027 o90R0% e,6740 00020 000478 ©, 7104 20021 29061 
1.2723 ©0036 ,0115% o,6A31 20020 eON17#® ©7194 20013 2007S 
1.2415 eooud 001598 2,691 20030 e01478 = ©,7277 20016 00094 
1.2197 09053 002128 e,7H12 oongu o01AS% e,7$6u 20016 §=40108 
101799 20064 00270 2.7103 00935 002108 oe, 745] 002) 00128 
1,149) 20064 ,0345® o,7193 o0Nut 00757 ay 7537 0002) 00149 
151183 e00A4 004298 2,72K4 20057 00295% w,7024u 2024 20173 
1.9875 200A 09510 047375 00U1 20336% a, 7714 20036 20209 
1.9907 00100 2006108 ©,7465 00NL6 003619 02,7797 0003) 002u4 
1.9259 00100 eO71)% ©,7556 00065 e0O4Ube 29,7664 20030 200270 

29951 colle 008228 ©, 7Hu7 0005K 205040 ©,7974 00037 20308 

09643 ©0115 009378 ©,7737 e00b4 0056048 o,8057 20049 00357 

09536 ©0120 010578 @,7A28 000638 e0031% @,6144 20046 20403 

29028 eO1e2 =o (179% ©,7919 40072 —407038% e230 20042 004U5 

04720 nia? 013068 ©6009 ,0041 07649 @,8317 00049 = ,04u95 

oAul2 00132. ,143R® o,bI10N 20092 206768 Bunny 20095 00550 

A104 00137 01575 ©8191 20093 209698 ©,Au90 20039 20589 

077% =o 0145 017208 e,82A1 200KA 210578 ©,8577 20058 20647 

07488 0014s of AOS e,8372 o012eu oll619 ©,666u 200862 00729 

27180 00148 20118 2,6462 20nbu 212659 ©4750 20060 00789 

ehb72 00146 021578 ©,8553 oUll4 o13769 ©, AK37 20084 20873 

0 h504 00156 023138 oe, bhud 200126 015958 ©8924 20U93 200965 

26256 00151 oP4b6uUe e,A734 00138 o1643% 99,9010 00302 e106? 

05949 00148 22612% ©,8R25 00119 01762 0,9097 O80) ollT7 

05641 00152 2276049 o,8916 20146 019088 29184 00105 01282 

05543 eo1ad e290R® = ©,9006 20953 e2nole 29058 ol 370 

05025 00146 039578 29097 00171 o22see oO11d 01484 

4717 e017 031948 ©,9168 20137 023098 e031 elote 

04409 00135 033308 00,9278 00136 025058 09106 017138 

24101 00129 234599 2,9369 00173 226778 20150 21848 

03793 00130 03589 ©,9460 oulsu o2k32ee oO1Ol 02010 

0 3465 00124 e313" ©9550 00177 2 30098 0131 e2tay 

o3i77 00119 03832 Yul 00171 oSIH08 09160 02501 

02609 00119 039518 2,49732 00191, ,3371¢ 00126 =, 2u29 

02561 00116 040678 ©,9A22 00183 oB5Sue 00103 =42592 

27294 oli? 043 AGF 2©,9913 00187 oS 7UIe 20175 02767 

01946 00116 o4302% ef ,0004 001k2 039238 21,0224 0142 22909 

21636 00109 044118 21,0094 00206 041299 &1,0510 09205 oSitG 

01330 00114 045258 ©} ,u1 45 oO1K 043108 ©4,9397 00196 03309 

21022 e013 24638% 01,0276 20?27 e4S37® e1,0uRu 20214 03523 

00714 00145 047539 01,0366 00204 e7U1% ©1,9S70 0093 3716 

0946 00113 046668 ©] ,0US7 00239 049798 01,0057 09208 05924 

29096 001)! 049778 01,0548 00225 052058 @1,0743 20215 94139 

20210 00115 050928 ©1,0438 00215 o54198 ©1,0K30 0211 243u9 

205918 00120 oF212F 140729 00206 056298. 81,0017 eOdel 24570 

09826 =o 0116 =p S3PRF O1,0R20 40204 4SA29® =1,1003 40267 y4b3B 

01133 o0111 054398 01,0910 00215 060448 ©} ,1090 0247 0508u 

01444 eniie 05551% ef ,100l 00235 002799 e1,1177 09266 25350 

01749 ©0116 05666% ©1194 00227 205058 21,1263 eoeua 05594 

22057 00119 057A85% ©1,1182 0226 o6731% 01,1350 20247, 45640 

P5605 00120 059058 21,3273 00209 069408 ©f 1457 00258 26099 

22073 00117 26022% o1,1363 2012 07152% 01,1523 2025u 26355 

2798) ©0123) 96145 @1,1454 00?ed 073708 ef ,!610 20162 06535 

23289 ©0120 262658 01,1545 200179 = 75548 01,1097 20230 26765 

03597 = 0118 065808 elotns5 00108 077238 C1,17AS 20260 07025 

23905 00123 065029 21,1726 eVIk9 079128 eL,1H7K 00162 07208 

4213 00123 066258 a1 ,1AI7 09192 oh104% of 1957 e212 = FU2O 

0452) e013 o674A% 21,1907 00138 oAPU2® e1,2uus 00172 07592 

24826 00129 ,6A7K% 01,1998 0152 oh394R ef ,2130 20209 ,7A0L 

25136 eniad 070928 e1420K9 016A 8561% 01,2217 20185 279R6 

05444 00129 071318 102179 00129 066908 e1,2303 00143 06129 

05752 00127 0725H8 21,2270 00114 e4AOU® #1 ,2390 0015) oA2A0 

26060 00135 o7$9S$® of ,23o) 00110 ehO14® of ,2u77 00487 bu? 

26368 00136 075248 ©} ,2u5} e012 09035 ©} ,256$ 00153 25600 

06676 =o 0135 07663® e142542 40107 o9S42% &1,26050 00145 08745 

206984 00147 078098 @{,2h53 20098 eF92408 P1,2737 00120 24870 

07292 00143) = 79529 of ,2725 09049 093298 01,2823 eO1l2 ,A9AS 

07600 eo1us eAU96® ef ,cAL4 20nNn o94I9F ef ,P910 00154 eMlt? 

07908 e015! o8246% ©1,2905 0007h 094959 #1 ,2997 00121 09238 

= Aelo 00156 eAUN2® 21,2995 04065 295KN8 of, 3088 20075 29513 

2.AS25 00154 06556% 01,3086 oV0UA 096288 01,5)70 09100 0941S 

ABS) 00148 oA 704% 1 S177 oV%el 290H98 1.3256 20085 09498 

09139 00151 206855% ©1,3267 0 0NUA 97378 1 ,33U3 200069 09507 

29447 °01u5 090908 21,3358 20Nud 097798 |}, 34350 20055 09622 

209755 01d) 09141% wl oSuuA 09050 098098 21,3516 00043 29665 

240900$ 601335 o9A77% 153539 QN2AR o9HS$7@ o1,$60$ ,0U4S 49709 

210057) 00128 o94N4F ©1,3650 0 N2A 2¥4O5% 01,5690 20055 09704 

21.9679 e012) 095258 01,5720 0oNes 298908 01,3776 20048 29812 

21,987 °0105 096309 ef ,SAL1 00N29 099198 ef, 5863 20043 09655 

21.4295 00094 097218 0163902 20017 299508 &1, $950 sone 0 9KRS 

21,1605 00077 097979 ©1,3992 40050 09940% &1,UUS6 20dee 49907 

#101910 ©0061 eFASB® &1,UnRD oUNia 099600% e1,41e$ 20022 29930 

21.2218 00047 099058 ef 4174 20008 099698 01,4210 20013 299U3 

°1.252h ©0033 0993K8 ©] UP ou 20009 099788 ©1,U29 002) 29904 

21,2854 00024 2099638 ef ,4355 0009 49VHT® ©}, USA 0009 9975 

e1,3142 00016 09979% ef dub 20001 e99ATE ef UuT0 20004 09976 

155450 00010 eF9A9® 01,4536 00003 099908 ©1,4556 20008 9 9984 

°1,3/56 00006 099958 |) ube? eunnt 699919 ef pWouy 2U04 09982 

71,4066 00003 ,999R% 01,4718 20002 099938 oF 4750 20007 29990 

o1,437u ©0001 099998 =] ,4UA0R 2UN02 099908 ©) ,4b16 20005 099935 

21 ,Uok2 00000 1.00008 ©f ,4Agd 20003 9499998 a1 490s 20008 =, 9997 

01,4990 oNuNO 1,9000% #1 ,4990 29001 1,00008 &1,4990 2000S 1.0060 


152 


SCeovessdocoeresssegsens 


TLAMANNAARAANAALWAALAMAAAANANAL 
ST 


Tannin i 
a Tn 


HOURLY TIDE HEIGHTS 
JANUARY 1963 


Figure B-10a 


SANDY HOOK, NEW JERSEY 


209000009 
XKXXxXXKXxX XX 


12345678910 i2 64 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER a = maximum @ « NEAN HIGHER X = MEAN 


BESBCBURRR eR gaeRaB 


12345678910 il2 64 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER meneaw @ = MEAN LOWEN Xe MINIMUM 


noounoonaooaeg 
©e200029°9 O86 


LBS SEV OtG te ah 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © -& DIURNAL TIDE © @ MEAN TIDE Xe STD DEVIATION 
5S 


ISBELL POE BOON KKK KxXKKKKKKXKKXKKXKXXX 


12345676910 12 6H 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-10c 


154 


Q000°S roo? 9Fe9°T= s0000°S prnco® CTn02°t of e ® 

9Sa6° 0000° O9L9° Te 29G60° 000° ved2*l. 2 s atasn® 40£0° feaf°te angeo® 40go° 9gen°t e225 
9506° 0000° m2e9°%te 29G66° ao0a0® este*t ef * ensene arco? 62af?te «1999° egtoe tee@nes ofS 
9S66° 0000* 9999°T= 29566" 0000° 4oz2°t) ap e elotne r920° Tept°t= esggoe Satoe Snmon?t ens 
9S66° moo? 2199" t= 29566° 00008 2922°t 8G 2 ennes® estoe SIGE*Te enggoe egtue 0006*} #$S 
2tee? 0000° 9559° l= 29G66° 0000° <tgeet 29 * a2Lct® 40%0° oSet* te ape29° Satoe SS96°} 69S 
eto6° onoo? 00S9°T* *9566° 0000° Tas2°v of e eSonee Sztoe LOLE°Le eF509° egtae OTTS*s 24S 
@te6° nnoo® nond?t= s9566° 9000° 9eane°l ef s eoRet? 900° 4nof°te a126S5° aan0° notset eyS 
#996° mno00® Bat9* T= £9666" 0000° Tan2°t 26 * 2202f°¢ egioe Teacs*te aFoHs? £929° oteset 24S 
S2e6° 0000° 2gE9°T= 29G65° nnoo® 9¢Se°r 20% * e0L0f° siio° SESk°te souss? ot20° mees°t 209 
S2e6° esto? 9129°T* e2166° nn0o°® Ves2*t att ® 2#5602° eg1oe bang*te eisese mnoo® oefs*t 819 
£696° g900° 0229°t= #9996° 9@00° sno2°st e2t a ef942° egroe feniete eL0EG° elave fetses 229 
$096° nn00° MAt9*t= stglo® 0000° Ood2*t eft a 22592° Sitoe 499f%te sqgnsg? mn oe AErsel 269 
b9s6° mre? B99 Te stglo® nnud® Ssze*s ant e e9Sn2* waud® 1IgE° te enrus® Satoe Corset end 
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@tse° @900° L660S°T* #£696° 9v00° mone*t et * eonie® Sitoe bolt? le aanan® vosoe 2096°t 299 
Ofne® 900° Thes*t= 25096° 000° otee*t o2t 2 enlet? nnud® OMie?te eendn® elec? 4S99°b 0949 
enge® 9900° Seus*t= «S096° nnoo® mio2e*t set * 20tet? #q00® wH0t®* te eNinn® 2gtoe 202s°t 2@9 
nS2o° 0000° 629S°te #f9S6° 0000° o20c*t wot a e2rgt? q920° efor? te saeen® 2gtce L9LG°S) 8609 
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f2t6° e900° S09S*°T= s91S6° ee00° an2zc°l ef2 * ag2ete 9900° Bdg2°te etong? 6t2o° 9gos°s af2 
Sf06° 6t20° onss*t= s0gne® nnoo* 2orc*s ene * aOntte agone 2Sa2°b= w0nag? £920° Tr09°S) and 
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6@29° 900° qtestte sfzte° 9800° Teoget § e0f * 297409 egtoe 9tne?t= «6292° 2gtoe 69f0°, 808 
2029° 8900° LStS*t© «506° 9900° 999g°t elf a antoo® geud® 09g¢2*te= annse® 61202 range, x#t@ 
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398 


376 
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350 
jus 


308 
298 


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26s 
256 
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220 
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Lumek LIMIT 


HIGHER HIGH waTER ° HIGH MATER 
s 
LURER REQ, CUR,S LOWER PRED, 
Lasyt LIMIT 
SSCS eseesssesecas SCeesseceesesecgs 
1e7519 20001 000018 4o7519 00001 
1oVuo4 0000) 20005 1.7376 0002 
107283 20006 000098 1.7253 00005 
107165 20009 000168 1.7090 00004 
107047 200007 20025 1 ,6947 20009 
100929 20019 2000488 14,6804 ours 
1Leod)) e0ued e00U64® 4.6602 200017 
100692 ~,0u28 e0097T® 450519 20020 
100574 euusu o0138® 166376 00026 
106456 00038 001686 14,6233 00022 
106338 e0ud2 e0@1ue® 4.6090 00019 
1e®220 e0US4 e024ue 4 ,59u7 20040 
106102 00055 e0277@ 4.5804 e0usd 
1eS9Ku 00063 003408 1,5061 000358 
1eS460 §=o O01 00402 165518 00037 
105746 20udS e0447® 43,5375 00032 
105650 e0uSt 004988 1.5252 200058 
105511 e0uod 20562% 145049 200M 
105595 00053 e0O1SS 41,4946 00044 
105275 00045 04058e 41,4803 209928 
105157 2007S 00735 1.4600 20094 
105059 20070 006048 1 ,u517 00008 
10492) 20006 eOB7U8 43,4374 00062 
104803 00078 e0GGB 4 u2sy 00000 
104585 00084 ol024e 4 ,4u8A 00009 
104507 20088 elS17@ 463946 20055 
1eauuy e0097 ol2tee 4.3808 00072 
104330 00U8t ol2%Se 1,3660 00075 
1edate 00096 e15S918 453517 00085 
104094 00095 olehue 14,3374 00087 
105970 20u79 elSege 41,3251 e104 
1.3658 00U9S =e 1} O5T# 193068 00069 
1e3740 00094 o1751% 4.29U5 000%0 
leso2e e012$ e1674e 3.2802 00117 
1e3504 0NV99 o1973® 1.2659 00128 
105386 00117 02096 362516 00127 
1o5205 00152 e2eee® Loe237¥ 00146 
1o5149 e0leu e2S$40e 3.2230 00150 
1e303) e0leu 24716 152067 20199 
1.2913 20120 e2591 341944 00148 
102795 00147 0275Be 4414801 0014S 
1e2077 20175 oF 9138 341658 0014S 
102559 e0lby oS07S® 151515 00109 
Leeudy oOlty eS2uue 161372 00106 
1e23?5 001A] 03420% 1.5250 00102 
162205 00216 ed0d2e 1.1047 00107 
102087 20166 e3B0Ke 1.0944 00108 
101968 20196 e4yude 14,0804 00100 
felsSu 09169 e41748 1 ,U0SA 00192 
101732 00184 043566 14,0515 00364 
Lolotd e074 045296 1.0372 00194 
1elu9o 00108 o4097% 34,0229 00167 
101376 00eu7 049046 15,0086 00195 
1ol2e0 o0h93 050978 0994S =o O21 
Lels4e 00175 0S527$e 09800 00206 
felued 20199 eUsae 29657 00195 
100906 00172 050048 09514 00212 
100787 ©0160 o576Se 093571 00201 
100569 00193 o595Ke 09228 e025 
100551 00157 eb11se 29085 00719 
100434 00166 065018 06942 00198 
100515 0020) 005Ue8 00799 00186 
100197 00189 ebodls 08657 00162 
120079 00159 .sobSue 08534 e074 
20996) e0edu 70548 06371 00197 
09Bus 00192 o72uee 26228 00187 
09725 00180 o742oe 280BS e01?2 
29006 00351 079778 07942 20170 
094bd =o 1560 P7350 07799 00167 
09370 o9160 o7b9ue 27656 00179 
09252 00150 eh0US6 07535 00156 
09134 eON71 Bele 07570 00105 
29016 00166 083818 o?2e7 00157 
04898 00135 eASloe 07084 00126 
28760 eO1ta otosue 2b9U4 00158 
oHobe 00120 067508 20798 00138 
oASUu 00195 oboS3e 26655 e01eo 
08425 00084 oAG$7e 06512 001e4 
oASU7 00108 oFU4Se 205609 oOlld 
04189 20097 eIl4ee 20226 = 0090 
08071 eQubu o92078 26063 20099 
07953 20U88 092958 05941 00084 
078355 0007S 93708 05 79H 00086 
e777 evuTo o9uule 05655 00007 
07599 ©0066 95079 05512 20056 
oTUAL 20070 o95778 25309 =. 0047 
oT Sos 00u51 290280 obeeh 20000 
07244 20056 oVoHKTe eSOKE 00052 
7120 00u4K9 097300 04940 00056 
07008 0004S o97b16 o4797 00052 
00090 20U48 oVbP4e e465u 00928 
06772 000357 o9BoTe e451 00025 
20054 0037 0 990U8 e430R 0014 
26530 o0UAl 09250 04225 00017 
oouls 20030 299556 0402 oonts 
26500 29015 e9o4e 03939 20007 
00)62 00010 099700 05796 00038 
OP} eOuud 094bu0 05053 00008 
2S4u5 e007 099910 25510 20004 
05627 e0uns oI99ue 03367 unos 
03709 00006 beAvVVUe v3225 20003 


Fr CLASS INTERVAL S 


MOWN, ALL RKEIGNTD ARE NO 
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. 
CuM,? 


Table B-10b 


LOweR REQ. 
LIMIT 
Seogesogestese 
1.7519 ©0000 
1o?I7o 0000) 
1.6832 00001 
1.6489 e0u03 
1060145 20005 
1,580) 00009 
1.5458 00009 
15114 e001e 
10477) 00018 
1.4427 00048 
1,484 00023 
1.3740 eov2ed 
1.3397 ©0031 
1.3053 00037 
1,2710 e00ue 
1e2$60 00051 
1,2vu2e2 00063 
1.1079 00070 
101535 egur? 
1,099%2 e00R4 
1.96048 0©0uU94 
1.9305 00303 
09964 00113 
09018 0012) 
29274 =o 135 
08950 0014) 
08587 00350 
08243 00152 
07900 20156 
07550 00367 
oF2ih 00166 
26469 001609 
26526 00167 
06182 00167 
05039 00164 
0549S 0162 
05151 001535 
24808 olay 
e44O4 0035) 
outel 00145 
03777 e0130 
o34tu 00130 
0 3090 00129 
o2747 00129 
e240 e0125 
02059 00123 
o1716 00125 
1372 o0l2l 
01029 00119 
20685 00118 
00542 e0l2e 
©,0002 00114 
©0545 00118 
200089 00121 
eoius2 00320 
©1376 0012) 
©1720 00119 
2.2063 00125 
@o2407 00125 
202750 0325 
e,3u9u o0ley 
o,5457 Oe Be) 
@ 3781 e013) 
@o412u 001s4 
2.4468 00139 
e,4812 o0hue 
2.5155 00155 
25499 00155 
02,5642 00189 
©6146 e0lou 
2.0524 00170 
2,087$ 00176 
e,72io 00174 
e,7S6y e074 
ee790$ 00178 
© ,8247 00170 
2,859) 00169 
©,8934 00158 
0.9278 00155 
2,962} 001u8 
269965 00140 
1.0308 e0l2u 
21,0052 00109 
21,9995 00090 
ero 559 00086 
21,1082 0007s 
102026 0006) 
©1,2570 00uS) 
e1,27is eouus 
21,5097 00U38 
21,3400 e0us0 
o1,574u 00025 
e1,4087 eouel 
21 ,4u3} eo0te 
04774 20004 
21,5116 20000 
21,5402 0004 
01,5005 000d 
e1.60149 00001 
o1,6u92 °000U 
21,6456 ©0000 


156 


RMALIZEO WITH RESPECT 
HOURLY VALUES 


o8usae 
o8Ou7e 
087058 
oA9208 
090078 
920K8 
093328 
o94uie 
095588 
o9o2h% 
09696 
o97978 
0 FHUBE 
FNS 1e 
AC 
09919 
2994u8 
099658 
299778 
099868 
9995 
09996 
299498 
1,00009% 
1,00un8 
1.90008 


TO HALF THE MEAN RANGE 


LUP WATER 


LOWER 
LIMIT 


Seeeesssesesge 
oo4$2t 00001 
eo4uu? 00004 
2.4572 00004 
eo4o97 00012 
24822 00912 
e,4Qu7 vole 
e.o072 09018 
205197 20028 
2,323 20032 
2 ,54u8 00040 
2.5573 00058 
202098 000uU8 
2.5825 00047 
20598 004d 
2.0073 00048 
200199 00057 
2.0524 00000 
0449 00072 
©,60574 00007 
©6099 00072 
© o6A24u 00083 
290949 04069 
2.7075 00106 
©.7200 00915 
2.7$e5 0011) 
2o7450 00117 
207575 00430 
207700 00145 
2.7825 00149 
2.795) 04160 
2.5076 e01ou 
2.620! 00107 
2.5326 oVlou 
2,845) o0100 
©,8S76 00171 
e670! 00166 
© ,bK27 20196 
2798952 00991 
eo9077 e01b) 
2.9202 00199 
209327 00203 
29452 00206 
29877 04192 
@,9703 00195 
©9828 00205 
@o9958 00257 
1.0078 20254 
01,0203 00231 
©1,0328 00220 
o1,0453 eb257 
e1,0879 00204 
e),0704 oVl97 
2} ,vhe9 00248 
e1,095u 0175 
e1,1079 0U178 
elelavd 00106 
e1.1329 00180 
21.1455 00172 
21.1560 00154 
103705 o)toe 
151650 e157 
2101955 00145 
e1.co80 oviso 
21.2205 00119 
el.a3si 00121 
102456 04099 
21.2561 00109 
e1o2706 00110 
e1le2ast 200K6 
2102950 00107 
e1o508) 00102 
el.3207 00096 
e1.5352 00078 

05457 e007h 
e1,3982 00077 
o1.5707 200609 
o1,3A32 00072 
©305957 00079 
oh e483 e062 
e1e42u8 0¥0S2 
L455 00040 
o1.4458 00049 
21.4583 eunut 
e1e4708 o0nus 
21.4633 00051 
1.4959 00024 
e).50K4 04030 
e1,92u9 0080 
21,9354 000e0 

05459 00015 
=).558u 20nid 
#4.9709 ound 
21.9835 0000S 
=1.5960 00008 

20085 evoud 

1.0210 00005 
21,0555 e004 
©1,b460 OY 
21,0505 00002 

0O711 0400 
©1.,0A36 PU | 


*KEQ, 


2,533 Peet, 


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LOwER 
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o,4b82 
2.5002 
2,512) 
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@,5560 
© ,5480 
@,2000 
e,5719 
0439 
2.9958 
2 ,0u7b 
2.0197 
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@.6436 
2.0556 
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2.0795 
2.0914 
e.703u 
2o7155 
e,7275 
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eo, 7874 
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@ S110 
2.4229 
2°, 85u9 
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©, 4588 
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© Ab27 
eo, 6947 
2.9060 
2,9)80 
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2.9425 
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a,978$ 
e,9905 
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e1,0142 
el,veo! 
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21,0559 
21,0979 
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PL e147 
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#1,1615 
74,1935 
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21,3250 
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21,5489 
21,5008 
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e1.4200 
PL.4s26 
e1 4445s 
21,4565 
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21,4923 
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1,102 
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1.9401 
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21,5044 
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1.6119 
e1,6¢e50 
1.0556 
©) ,0477 
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Pl.6716 
*1,0h50 


FREQ, Cum, 
PREQ, 
Seelcecosesesseeeoes 
00005 00004 
0000) 00003 
0000) 00004 
20003 00007 
20007 .0u15 
00012 00027 
20082 00059 
20013 00082 
00013 00066 
e0Ulo 20062 
s002et 00103 
20022 00126 
20022 e018 
00035 00184 
00037 00218 
00057 00256 
20049 20305 
20046 0055) 
29009 00420 
20085 00505 
00067 00573 
eoure e00uu 
oNu9s 00736 
20094 40030 
20329 00958 
00408 olue8 
00308 ol ITS 
0018 03293 
00155 ol420 
20152 =o 1588 
00148 e706 
e01le 01618 
00160 01976 
a0iTe 02150 
20370 «92527 
00150 o2hbe 
20203 02085 
20190 02684 
00195 o307G 
20208 93262 
20209 03487 
022s o3710 
20206 S917 
20255 04152 
2025) 24405 
00259 04045 
20250 04692 
20200 05099 
00217 05315 
20eey 09535 
00258 = SIT 
00215 «= 5988 
00194 06183: 
20176 06359 
2o1ey 26543 
00196 «= 0739 
00169 00908 
20170 o706u 
Ce) o72¢@70 
00158 = 4 7428 
20172 07000 
00/44 = ,F7uu 
20150 47680 
Olle 07992 
20120 48316 
00109 08227 
20086 «48515 
20155 o84u8 
20118 8560 
20127 96693 
00109 ebb02 
20u9S 08895 
00070 04905 
20094 09060 
20075 9334 
20096 09230 
20068 09518 
20082 09400 
20072 9472 
20055 99528 
20058 99586 
200055 09044 
00055 09096 
20037 99734 
20055 «99767 
20030 096035 
200 $4 09657 
2005) o¥b08 
20021 4 9889 
2002) 09910 
0002) 0993) 
200le o99US 
20015 09957 
20010 09967 
20U07 29975 
20009 o99KU 
euuuTl 0994 
20004 09996 
2000S 49999 
20000 69999 
2000} 1.0000 


Extreme Monthly LW 


it 
o 90 20 30 99.9 99,99 


0.0! 0.1 -30 -20 10 -o 50 
Mean Range =: 4.08 ft 
Figure B-1l1b 


Loy 


ARAN Ce iih. sNEWR ERS EN 


9 © a Oo a 
o,9 Ono 7a O70 


ToO9MOGQHODGOVGAZOOZO9DGQADA 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER oa = waxinun @ = NEAN HIGHER X = MEAN 


BEGE ECT 
J 


12345678910 l2 64 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o «wean © © NEAN Leven Xe MINIMUN 
Honma owmo mv ooecoooceoa 
©0000096 


®OGaqH00009 


12345678910 ile 6H 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE = MEAN TIDE Xe STO DEVIATION 
OAS 
wx x xx xX Xx y y EX KKK KKK KX KK KX KX XXX 
123%56786910 12 6H 69 7M 79 


MONTH OF THE YEAR _ YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-llc 


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Table B-1lb 


LOWER LIMIT OF CLASS INTERVAL BHORN, ALL HEIGHTY ARE NOKMALIJZED WITH RESEERY TO HALF THE MEAN RANGE 2,04] FEET 
e 


. NIGHER HIGH WATER * HIGH R 8 
Avge as ; 1G ate A HOURLY VALUES x LOw wATER ie LOWER Lum WATER 
‘ She FREU, puuaee Ronee PREU, peuees posts PREQe CuM,® LOwER FREQ, CUM,® LOWER PREQ, Cur, 
™ FREQ,® 4 
DF MET © PED peer re aoe ine PORTE SESE KET S RoR BOeES aes SER Ree AS EE Hee Muara rn Sel 
. e ° eBO1G 60001 20001 4.8014 20000 0000% e,542} 1) 
108477 00000 200028 11,6448 00000 200018 1,Re50 ©0000 S000 s 50) 9 38 ot 9000 Lee sous oO e000 
168340 40003 —0U0S® 1,A283 40002 0002" 147897 40001 SROFICY COCCI caEH eeCaO EDK ecenoe Dv eRar 
108203 40008 .0vlee 41,8117 0002 20005" 1.7539 0002 Paces meres OP | CRGR RE ORIHD. | OBOB! | 900d 
108900 40005 017% 1.7951 40008 s0013* 1.7;84 ORG CaRORO Be a8 LS OC eee aa OO OUI 
a2e29> Wool ocuOS8e) .c77AGR ALOOUS/y NEON USS IuTGeese NT soc aSM mea MiseNme atin Meureelemiagorce mecastre we rcTuN tect: 
ares Fool COIS. (Conan ere OES Tey soe : oot eo41tt 00006 00015% @e4514 20007 00016 
107055 20023 00608 14,7455 0016 20080" 4.6100 oRAG *0 ee ee4249 40009 = 002UR = ay4ouS 40000 0022 
107518 40027 00938 1.7280 ool? .o0e7* 4.s74d 0011 reais AUD ico a Ae WOO UT GOT OED 
Nous COMA  AONTeO <Mauies  coond | poate “deaden | coon) 50 aS SEERA a ane ID CRN ald COLE a COORD 
NOWATE) 90008 GOGO NeGOED the ~ GOdBD qcaNeh  caond as Ce POH a Te ODEN i OOK) OKO 
Le7100 «duo 001808 1.0792 20025 001588 1,ue73 Souee epee seek 00019 ,0080% #,5180 20018 40080 
1269609 20050 20280 1.026 50035 so172e 1.4315 Saas eatiaae Be 3 00050 o0110% e,535,4 00010 20094 
100A32 20033 202638 j{eodot 20055 s02U7® 4.3950 saat sate vee 6 eV0cb 001$08 &,5uu7 20019 20110 
1266095 20005 00327 1.6295 20034 ou2ut{s 153598 00039 s019se Basics arose Ce Roce pause ae 
ieee cee SAE HA soe nagees Heo one soles ooe Be 0036 o02uS® 65715 20v22 20}56 
rete ne SAV eeahc Guus castinenee OE an SH poe souay Oe Oh a 00046 = 0249% o,5848 0056 40492 
Lebobu 10062 05058 145798 0046 e03S0U® 1.2525 40053 $033 e Sieve yen racuepacetmaeatienas at hase 
1e6,47 00U59 =e 0563 145632 20008 e04528 1.2105 *0u64 towne SER HIG Geis ae eeoa ce Leteuae tae 
Leouly 00074 00037 J ,5U07 00053 o0465*% 1.1607 e0U7S sou7 3 R AiG Bare DOT ant ROTEL Ste eae 
NOGAVS MGONOS" “SORONC: | NeGEaI., -cOO0d | OUBRO. Honamol cama iGassas p08 42 40053, 0472# ©,60583 4 90S0 4U3u0 
cone 5O00S Moras cients Siow Senne Ana sones Gnee geet ee o0064 005508 2,605)7 200%2 09592 
105599 00195 0090U8 4,497 00054 o0652% 1.0732 00090 corsae Eten sone oe tecuareceal 2n0ge one 
HEC RYSP Tn AIRE VE ah GCIs RA IRE oe eee He SO NGS seaee eV0K0 = 0OK4F = 46784 20059 = 0514 
155525 0008) «f059e 41,4039 .0ons3 soTSi® jco0lS «011s .00sse eines sai ape aeRO E cee OME, (i UCT TCO 28 
105188 08) a L1198 4.4u73 50082 6 08US* =. 9657 snes 10738 Bee MPO patie niet et BDU Tara R TO at Oo 
LeBOSI- Vaceam elie tien is tosy! MicUOTT A ie og sue He sGoh | MGS POURED Std EES TEE CN MOG TRIGA IRSA pea Ea ECA aiueeereammeceen 
NodONS G0005  oNSAOD \feadan. .oagly . cOGNO" Soden” “congo SaSeee) locus.” | Songe Sete eeu ee LAmcee nares 
108776 20098 01401 1,3976 200835 o10K0% “8582 00139 ‘jus wee oes OO pee ua sone 
104639 008 1487 34,3810 20105 ei1e5# sa2ed e0146 s1o1se =Ous arn aye ahs cores eon eee 
ys e,7u 7 uj7e 
Ree at SL Ree seve Gir © teen dae Se Suen i ee sens 
. ° 00096 =a 38 27507 00157 s 
teuzee e011) e 1BOL® «443313 vteo 1503" ,7449 One oes me aie ie? meee ety seen 
1edo9] 00123 oS 9848 143148 00109 = eloles 19 . : : 
ie395u) COLT) FeNISsl Dy seeen le conus, | MUTHOSh) USeusa) Ueonae | tediles Stenini licuiceN useitoos Splaee Cages 
1e3h17 00158 eeeTe® 1.2816 o0115 018550 o6074 00171 e25H78 © ,h24u9 eOlot eovule *o1se tiese 
1.3680 00152 e242ue 142654 o01S4 a1 9078 e57T16 00175 = 27638 eo gb3H7 ovi7s 225158 $0147 +2039 
teS543 00155 =e2d59% 162485 00159 vel uoF 05558 00168 =p 2930" @.4525 40157 aeb7ee so171 1221 
1.3400 00152 027118 1.2320 00144 022958 04999 00170 o3100% e,bbo2 20140 echSee was nario 
1e3209 00185 e269 1.2154 20196 = =oedi ie o4b4 00165 ,3263% ©5400 002U0 250598 so2ts +2008 
feS132 69155 =a 3USU® =1,196R oulo? 625789 o4288 = 0154 o3U17® ©,6936 020d oseose so2u! +200 
102995 e01dy oS1908 144823 evlos e2740% 05925 00154 oS571% 2.9076 0v205 a S4obe $0198 Hvac 
1ee2sSo 20105 035558 441657 09178 e291 he 03506 0015) oS7228 0,92 14 oVA10 0 56758 vets SCOA0 
1e27at 20185 655390 444494 00179 =o SuN74 23208 0014) 038628 ©,9352 8 g0Pe2 = gs SYNE 021) $3455 
102565 20198 2$096% te13e6 evi70 052079 22650 200140 4002 ©,9499 00225 = =akleoe sete BEL 
1erddo 0257 259348 151160 eULS? =o SU25e oP 49 00135 =o W1 57% =, 9H2H sure =u 5408 so215 +3009 
1e2309 00197 o4isus 1.0994 00174 =o 3Hu0# e2133 00131 o4267% 264706 057 o45oue ‘0223 $4092 
1e2i72 00198 o4$29% 1,029 eulTt 057719 e775 00152 044008 22,9904 00195 o47058 +0195 10287 
1eeusd 00228 049578 1 ,Ubo3 00195 0392b* 0/417 00125 045254 ©} 00uA 0020 049758 toed swage 
Lelh96 20216 e477S% 140497 40175 eutoré 21058 00126 = op 40 53% ©1 oU1K0 00198 = dt 758 +0224 su7ie 
1el7o} 0022) o4994G 1.0532 20168 042098 200700 e0l2e 04775% 01,0318 20216 253088 ©) ,0528 soeeu yuyau 
leloed e0est 052258 1.0166 e057 o4456e 20342 00128 04902% @f .0455 eue2ea 25610% 21,0062 ‘oeue +5186 
101487 20230 254558 4.0000 00151 e4O3K% 96,0017 e012) o5024u% ef ,0593 oU21T oSAS3® ©1,079%6 $0207 +9392 
1el3Su 20200 050558 0 9AS5 00203 048418 90375 s0l2l eo 5145 of 07354 020s 20056% 91,0929 0244 So3o 
telat e020) eShS508 209669 20209 05049% 2,0733 e0leu 052708 ©1,VR69 oV2e5 eoecoUF ef ,1U63 soele $508 
Lelo7e 00165 = sbruie 29504 00190 05239 0,109 e612e2 =o 391% 1 61007 00206 souobe m1 ,1197 0221 +6070 
Hoe Cat 002186 09 55K e01os 0S4u2% 0,1 450 00120 055169 eh el1ud 00195 eoool*® 1,155) $0187 $0257 
. : 20205 eb4ele 29172 =o 0168 =o 594% =, 1808 00123 Soule © 63 u Hose 94 
100605 e01A9 2oo018e 29007 201% 05707% ©,2166 e0lee Ses SHetaoA ea soa Sse TeoS pan 
1.00528 09192 207956 oBRuy 00181 05909% o,252u e0127 oSB890% 21,1559 00196 otecs® oy 1732 50198 ert) 
100391 20166 2b9b28 0875 200196 20105% ©,2863 00127 e6017% 9101697 00158 e7S01% w1.t6ps soire i705 
1002535 e020yu o716\e eAS10 20170 063358 2,324] 00128 e614o% ©f,1855 20155 075S48 94,1999 $0165 +7196 
1e0116 00186 o734be ob34d 00193 06529% 02,3599 00132 06278% 93,1973 eU1$h =o 70708 ©1,2153 o1oe2 +7558 
09979 e017) 075198 28178 00203 06732 06,3958 00139 064168 @1eett) 00459 o7TH1U® ©} ,2267 $0159 $7517 
09642 00198 o77170 ehO18 00179 eoV11 e,USl6 e0hus 2065598 ef ,22u9 00157 079068 ef ,2uuu 00154 +7051 
09705 00165 oT 9088 07847 eueod 07115 aw do7u e0lue 067018 @} 42380 evl2a eHOV4® ©} 42554 00154 7785 
295648 20Jo8 e0uU708 07661 00187 o7Su2e% «5052 00148 eOBU9® wi yeSeu evita eb2U8® ©} ,2o006 01 su ‘7918 
e945) e012 oR20ee 27516 20164 07480% 02,5391 eulso e7TV0K4% el echoed eUlel ehS299 1,260) so1uo seuss 
09294 = 40129 KS S18 07550 =e 0101 e7647® 045749 0164 971698 #1,2800 cO1LS «= BUN 2152935 s01se $8190 
aeioy eO13u 2b4058 27165) WITT 07824 3.6107 20165 073348 @1ee9$B 60110 2h552% ©), 3009 o0se8 ,HS18 
o9u20 oOlts ohSThe 07019 00168 e7991% 2.6466 00167 075018 1.5076 eOtle ahmodse® ee $eiis edi2e ebuuy 
apee 00128 ohT0S0 20553 oOl74 08102% a ,6d24 0017) 070729 el esia 00106 oh771% © 1,5350 eOlls ob557 
2AT46 00125 etdsus 20068 o01os eb3d0% ©,7182 0175 oTAUG® #155552 00004 ehb59® eL,su7y eOthy ooo7 
04609 20096 2h9208 26522 00175 06500% ©,7540 00169 080158 21,3490 eVO9R eH957® ef, 5004 Oe) 6767 
08472 60099 WU2SE 206356 =o D155 «=o BO S5% 20,7899 =o 01 BU 08196% el es6eH o00du e40S1% “453757 soudu sHbu7 
28535 eOliu e9139e ool 20147 04762% ©,8257 00174 083699 @} 45766 0071 91220 91,5871 20104 0b951 
28198 20104 92408 26025 20149 08951% @,8615 00166 085379 91,5904 2 0NK2 oF 048 ©} ,4U0S Ours vpIueu 
«Bool 00104 e95uue 05459 00125 09050% @,K97$§ 20166 oh7U2% @},4nue avoTT e9Pb19 e141 BY S00h. hho 
07924 20086 oVuove 25690 00105 e91018 02,9532 00159 0861] e1e4140 20009 095508 wt suere sou7” $9169 
sls 00087 0552A 00114 09275% 20,9690 e014 090078 tyiaags ounnt eVUPL® @L,uuio 20ud6 09276 
. . Q ° . 
sFera — 338%6 8183 8188 | 9d883 SfsBBnh ALES Ska ds Stscs3y | sbnes se8uTs s8b6d | soured 
07375 e0U30 050351 2U065 09551% 01,0705 00114 o9SH7% of 5475) eV0o0 o9OUSe 20uld 09496 
27238 eNUSh oV7048 24665 20077 9027 e1,4125 2uv99 eFUKO® @1,4Ho9 20056 240598 1 ,09u4 00067 09505 
e701 20U4GA 097528 24700 20052 oYOT9® ef ,1 4d] eQUR9 e9STS® wLed0)7 e050 o¥7U8O HL QSvTS e0uTY e955 
oh9bu o0USK oVTACe 04550 2005! o9TS0% of 1640 ©0075 e9H49® ef ,51u5 euNue eVI519 #1 ,5e08 20055 eo FORM 
oobeT 000S5 oIbI Te 04509 00058 04709% ef ,2194 ©0067 eIT16% @1e5eAS e039 o47V0% #165542 2OUN8 o9l5o0 
e0o9U 20026 o6u28 rae | 0054 e9HUT® ©1 62556 00055 097728 O15 5U01 00058 eVb2T#® 1.5476 00eT Ile 
90555 00029 oIK710 24057 00052 eGRUNF 1.2915 e004u7 e9H19% @1,5559 e029 e985S7T@ = 5009 20usY9 e901 
eoulo 2020 e94Yoe 3472 2ons2 o9N7T1% 1, $278 o0ude eIMO1® @1 SANT eU006 eYNHSe OL SITUS 20054 09055 
00279 20UNK o9¥lus 23706 20016 e9bO7% 01,505) 60044 eI9HVO% @1,5H55 Ora) e991 08 #15077 euus) 09006 
06142 eOuld eI92He 23540 00027 o99LUF 01,5949 20026 099259 OL 5978 e001A e9928% Hj] ,oull 20027 1909S 
20095 0020 99478 205375 0021 09935% w1,4548 20025 o9947T® el eosit 20023 = V9HUF H1,0144 ,0US0 94S 
25808 20008 299558 23209 00017 29953% ef ,U705 0u017 09963 ©] ,02u8 001A 09908 “1 ,oeTh 200ee 09445 
5754 20012 299678 23043 20010 29907® ={,500U 20014 299788 e1,03H6 20007 299758 e1,6ul2 20015 09958 
05594 00014 e99BUe 22878 20007 09974 01 ,5u23 00010 o99B7T% @=1 0524 eV00T7 099628 &f,05u5 e0UlU oV9O9 
25456 60005 =o PYHSS = 2712 =o DKOUH = on VHF 01,578) 00006 49994% ef,b062 0007 249698 @1,66079 ,OUIe 699) 
05319 60006 sI99C8 02546 20006 09989% 21 6139 20004 2999b8 @1,0800 evuuSs oV99US wf ,oH1§ e0u0T 69988 
o51 82 20005 099958 eodKt e0uuy 099958 @} 6497 ©0002 099998 #1,0958 2v0US 0999T® & 1 ,o9UuT 20000 0999u 
22u45 20002 299978 22015 20002 o999R® 01,6650 20VU0L 1e00008 167076 20002 099968 M1, 7044) 20005 09997 
04906 0000S) Levunie 62050 00002 oV0N0F wf,72)4 e0U00 L,00008 elel2i4u 20902 Jevnvue s1,7el4 2000S 440000 


160 


“Uatdtdalalatalafalaltetad 
ANT ETT 


ju 
; eT TTT TTT 


BREAKWATER HARBOR. OEL- = $$ JANUARY 1963 


Figure B-12b 


BREAKWATER HARBOR. DELAWARE 


o 
80, "209 Og gO" 00998 


COTHQHAHHOF®FHOH OCHO 
XXMXXXKKKXKKXKKXKKXKKX 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER oa « waxinon @ « NEAN HIGHER X = MERN 


123W¥5678910 jl2 6NY 69 7M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER) o@ «ween © © WEAN Lenen X= MINIMUM 


12345676910 i2 6 69 7H 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE = NEAN TICE Xe STO DEVIATION 
0. se Mi Re I XRMXKKXKKXK KKK KKK 
“323456760910 12 6 69 7H 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-1l2c 


162 


00C0°T nnoo® 09g9°t= 80000°) nnoo® O2ne?l. of s e 
9506" 0000° @0£9° T= 29566° 0000° 9ineel a2 * eSdtc° £920° BOLE° TS wOygg? £920° Torset 22S 
9566° noo? 9529° l= #9466° 0000° eaSeel ef 8 eclon® @Av0® 9S9E° l= wFeg0° S4so° @SfS°l 6S 
2loo° nno0® nued° t= 9566° ge0g® 6eSe°s) en s eSeun? o1¢0° nogg°?te ednng? egtue ning*t ens 
@996° 0000° 2519°T= 28986" 000° 9n922) 8S 2 eS09ne mnvd?® e€GSf° le ea1gge Salve Tenses 9S 
8906" noo? 0019 T= #8996° Qvuo® 2oze°) 29 s al9Gne 400° VOSE* TS sontg® egioe 42S9°t 29S 
S2u6° nnoo® @nvus° l= 2#6996° we@00° oSie*l wh e ensene pred? ennk ? le 26009° ecto? mgSS°l #4 
Te16° #Hw00° 960S*°T= #1e@l6° 000u° Stee’l «6 * allene egioe 9oEE° le w129S° noo? On9g*t e@S 
£696° 0000° nnoS*t= ele@le° 0v00° 24e2°) #6 * e6L0n® Sgioe mhpgsete efFE5° 6120° 469S°) . 86S 
£096° gg00° 2o8S° t= alglo® @H00° B2oe°) Ol * antec? qoe2o° doek* be wniog® ecto? {54G°) 0609 
$u96° nnoo® OngS®* le #f£696° 000u° Seoe°’l alt s s0noge goe0° Unes°te eegns? pno0® Cbeset #19 
1956° nnoo® pedS°l= #£696° 0v0u" Tn0get wet * aLLic? o120° woIL’T= eefns? Satvoe 99uS°sk 829 
81S6° esto° 9ELS° T= 2£696° 0000° @e0s*h aft * w@Sice ot20° 9EIg le weges® £92u0° €205°h 669 
98¢56° mnuo® negS*l= #*#f696° Ouoo® moteel ent PY e6foe° #A00° Neue? te #ouNg? 2gtvue 6465°) #8n9 
engo° 800° 2E9S° t= #f690° @v0U" Teecet St * eISge? 8900° eLug* te eA9en® geno? 9¢09°} 269 
nS26° 0000° UHSS* l= #S5096° 0000° 4o2c°h a9t * #£942° nnoo® vgo2*le wledn® @v00° 20099) 899 
nS2o° egio® B26S°Tt= 25096" 000u" nmess*t wt * aolee® erro? beoe°’ l= afo9n® Satoe® onloet 249 
£216° nnoo® 9LnS* t= #S096° nn00°® Opes’) weQt * 2@Ase® 40%0° 9Lu2°Te sBign® egto® 6029°) 6899 
6LU6° #@00° nenS*t= #19S6° 000v° dgnf°t ot * alaee® 250° neverle sougn® zZgtoe 2920°1 869 
looe° 0000" 214S°t= 619S6° eg0u° fone*b #02 ® eonle? weuo® eLle?te sngen® S4toe O189°S 804 
looe° 6120° O2gS*l= anino® nnoo® osss*th ete * 019028 oteo? vede’t= #640n° pnooe Getoeb ele 
24.e° eg10° 892S°l= #04no° 9e00° 909¢°t s22 8 eenet? gev0® v9ge°be #gf0n? 2gtue 2ang*s e222 
onge® #e00° 912S°l= s2nfo° nn00° £99¢°) £2 * ensat® egu0® 9192°l= enves® Gp 00° @pngel ef2 
iSse° egto® n91S* l= #8626° vo00° otda°l ene * #L99T° wRuo0® ngse°te #oleg? 800° SpS9°h) ond 
lzne® nno0® Z2t1S*t= eee6ze° nnou® 9Lds°t) «52 s wolst® er10° etse’te syece? Logo? bc99°h Se 
4ige° 0000° 090S°t= #nS2o° nn0o° 2sec*tl 292 * adnnt® noo? vugn2?tle eteng® \gg0° 599° #94 
dise° #ao0° g00S*l= #1t26° 000u° ogar®?h wl2 6 ehOnte eroe wOne*te #040G° By00e nbeoeb 946 
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este° eto? noon’t= sf2lo® 9e00° 200n°t #62 * angite nhoo® noge*t= #€9L2° S4toe 4269°t 86d 
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6fol° 9A00° vOgn®t= #S¢06° v@00° Sttn°t wtf * 29607" nmnuo® vug2°le #9Gne° egto° dn69°s #19 
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Si9d° S2to° mnon*t= *«91¢e° nndv® neen?l ene s #ice0° we@u0® mnvue*’t= egodt® 2ctoe CUlges ane 
00SgL° 2s10° 2oSn°l= e2iie° 0000° Ingn®b «Se s #9nL0° S4to° 2oot°t= 849918 Logue ogtg*l es@ 
a9gd° Sito° Onsn*t= s2c.e° @u0u® Lofin’t #9€ s #01450° ey00° Onot?t= #09¢1° Sztoe f2eqet 290 
LorL® BH00° gann®t= engoe® Sito® ngnn®h wef * seen0d® pnvo® woul ?l= engit® pnoo° o424°) 048 
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0£69° 0000° negr*’t= «Sony® nnvo® 49Sn°l 86 ® #i0%0° vouo® nedl?*t= 960° Hw00° 2ofg*) sos 
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4999° gAo0® Ogen*t= alifu® pnoo® 0g9n°) eln PY «00° voooe OggTeTe egsace noo? SuSg*t slo 
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longe ot2z0° 9Lin®t= enite® nnvuo® fodn°) ef a #£9¢0° nnuc?® 9L51° te s92@50° #e0° eb9g°h £6 
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g229° 6t20° O20n*° l= #olid® eshu® 29on°b 29m Py aot20° wRu0® venk?te s6i2c® nno0o® egdeesb 296 
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163 


e HIGHER AIGH WATER ° HIGH WATER ® HOURLY VALUES 
° 8 ® 
Classe LOUneR FREQ, Cum.® LOWER FREQ, CUM,® LOWER FREQ, 
NO, &@ LIMIT PREQ,® (IMT FREQ,® \UrMIT 
SOCO SESS SH SSS HOSS HOST HOSS TOSS TEETH HSE H HSER HRS HHHSSH HSS RH SEES ESTHET EHOOEEOS 

1018 te8y7o 2000) e00018 41,8070 20001 00001 1.8070 ©0000 
1008 1e79ue 20001 e000Se 3,798 00001 00002 1,7726 ©00N0 
O98 127A2) 20006 000098 1.47756 200ud 200068 14,9382 0000! 
QRe 1276% 20009 200168 4,75999 20007 00018 41,7037 20004 
978 107572 000138 eOOS1S 1 ,74Uy 200008 00022 14,6693 ©0005 
Qoe 1e%ud7 20012 000438 31,7286 0017 000399 34,6349 20008 
95e 107323 20v2d 00067 14,7129 00019 00058% 14,6004 ©0010 
Que 107498 20033 001008 14,6972 20025 00083 1+,5660 00012 
Q3e 107073 20087 eO137T® 41,6815 00023 00106 14,5516 20014 
926 1.0949 20040 0017K® 1 ,665A 00026 o013S28 34,4972 00018 
Sie 100824 0044 002218 41,6501 00033 00105% 4,46?7 20022 
Qoe teo70u 20us6 092578 = Jo.o5ud 00032 e0l97® = 4,4283 00025 
A9e 1206575 20US2 e0S0%® 34,6187 00035 002538 14,3939 00029 
BAe 11,6450 200Su o0$03% 1.6030 2on4d 00e77® 14,3594 00034 
A7s te6%26 000Su e0UTTe 465873 00048 00325% 11,3250 ©0040 
Bee 16201 00051 004676 465717 20030 00354 1.2906 00049 
85e Lev? 20064 003328 1.5560 00036 00590 43,2561 00056 
B4e 105952 20076 e00NKe 445403 0005) 004419 34,2217 ©0066 
B3e 105827 20060 000738 165246 00046 00466 34,1873 eo0ve 
BPs 105703 20052 007208 14,5049 20057 e0544e 444529 ©0076 
B18 105578 0006) e07878 34,4932 00055 20600 34,4184 00087 
Boe 105u5u e0use2 e08H98 41,4775 00073 ©0672 14,0840 00090 
798 105329 200063 e09%2e YQuosA 00069 eO7T41® 4,04% 00103 
Whe 165204 oUF) efules y,udo4 00055 e079 34,0151 00108 
77e e500 20085 o1097e 1,4u30u 00NbY 00kS8e 29807 eolie 
Tose 164955 60085 o1182e 164147 20985 20¥4us 29463 = 0124 
7Se 1o4eds 0107 012908 41,3994 00076 010198 09118 00128 
74e 104700 0107 ol397@ 14,3834 00098 oflt7e oAlTa 00130 
739 104541 00097 o1494e 153677 60083 of200% 48430 00136 
V2e 164457 00087 e1SA1e8 4,352n 00103 013059 28086 00138 
Tie 104$32 00094 el072¢ 1.3363 e012 014008 0774 00146 
708 104208 oo1is 01790 143206 00108 015138 07397 00351 
698 10598$ 60124 oN V14e 443949 60102 of olo® 07053 = 0 0155 
o8e 1263958 0118 020428 14,2992 00134 017508 26708 00156 
67s 153834 00133 o21hS8 142735 00138 01687% 206564 00360 
663 103709 e134 e2e%ee 142578 00171 020588 26070 ‘0161 
oSe 1.3585 oOLh7 e2dsus 1,242) 00164 022238 25675 00160 
o4e 103460 eOlSu o25648 1.2265 00146 023098 05331 00163 
638 103335 00155 0272$0) 462108 e010u 025358 04987 00150 
620 153P11 00154 e2477e 441951 001eu 020978 04643 00152 
ole 163086 09149 030268 444794 00199 028568 04298 00153 
698 10296} 00155 o31826 344637 00156 os01ee 23954 ©0146 
59e 1.2857 00193 o3374e 1,1480 00147 031598 03610 00140 
SAe 1.a7l2 0021) eS5KSe 444323 00175 o333ue 23265 00133 
57e 1028588 onesu oS6199 41,4166 00152 034068 2792} 00133 
Sos 102463 00226 o40d7e 441009 00165 o3651% 2577 00130 
SSe 102338 2021S e426?8 1,052 00193 o360uF 02233 00126 
Sue 102214 69190 e4452e@ 4.0695 00572 03976% ,18AKB 0170 
S3e 102089 oasis e4066e 34,0539 00146 o41ose 01944 e0tP! 
S20 121965 o0et3 e4B7Ve 4 ,0382 00169 ob 33e8 01200 00320 
S18 161A40 29209 250K 14,0225 00197 45299 29855 0 0120 
Soe 101715 00167 052758 41,0068 00175 o470Ue 00511 00116 
49s 161591 00190 oS4bue 09914 00203 049058 00167 00120 
Whe feluoo a | 056208 09754 00163 059688 69,0178 00113 
u?e 151342 20202 o5b2Te 09597 00181 052698 = 9,0522 00116 
Woe LelP!7 60484 660118 94H 460184 65453% 2,866 00148 
a5¢ 101092 00162 061938 09283 00176 05629 2.1210 00119 
44e 1200968 0164 eOS548 = 9126 = 0173 = 5B02% 91555 001186 
use 1eAus 09185 0O5t4e 26969 00161 05962 02,1899 e011S 
Pe 109719 = 6219 =o BT59@ = HH1Y =o 0179 =o H141% 2243 0 017 
41% 100594 00193 ob69516 28656 00162 06303% 0,2588 00120 
4Oe 100469 20170 oTi220 28499 00165 064698 06,2932 00123 
39¢ 100345 00193 o7S5148 2A342 00171 066408 0, 3276 00125 
BAe 120220 00194 e7S0be 04165 20162 06803 ©,3621 00125 
37e8 $0096 o0167 070758 eA02R 00162 06904 20,3965 0122 
Jos 09971 00145 o7bole 07874 00173 071574# 4309 00134 
3Se o9Buo e017 o80S1e o7714 00179 07337 «4053 00133 
Bus 29722 =o 0175p 2050 07557 60160 «0 7497% «56,4996 =o 01 37 
336 09597 00136 obSule 07400 20150 07647® @,5342 0014s 
320 09475 0134 eAu7os 07243 0164 e7831% 22,5686 00152 
3is 09348 00130 oFo0be 27087 00158 07969% 0,603) 00165 
3os 09223 00107 oF71 Se 06930 00153 081418 9 ,6575 0162 
298 09099 00113 obb62Te 26773 00140 062618 02,6719 00170 
286 08974 20195 oAISIG 06616 00149 08430% «,7064 00171 
276 2AK50 =o 099g 0308 = 6459 0140 =o BS 70% 47406 0 1 78 
bs 08725 00084 o%M115e 26302 e040 087099 «7752 00179 
ese 24600 0009) e92ende 26145 00158 08867% 2,09 00188 
Que eAu76 §=40078 §= » PR B® 059hB =o 0115 = 0 892 wo BYU} eO1AS 
23e 9 K454 00070 «= 93528 oSAS 20110 090928 ©,8785 0179 
22° 4227 =o 0065 =o DUNS 25674 60105 o9197% 0,9129 0176 
2te ohine oN0Au oFUGKe 05517 00107 e9S04% 6, 9474 00162 
20° 07977 0063 o95b1e 05301 00105 09409% 06,9818 Niue 
196 6 7RSS 40070 POS = 520K =o 09BS =o VUZE wY,Ho2 00135 
jAe 07728 2905K oFOKYe o5Nue 20072 095648 01,0507 0122 
176 e7H04 20030 097258 AL) 00007 09631% 01,085) e0sne 
166 07479 20us9 eI7nue 04733 00063 046938 01,4195 00099 
156 o7354 U4 0979458 04576 =o 0NGP =— op VP 441539 c00A3 
14e 07230 20036 096310 04439 0004S 09791% 01,5684 00070 
138 07405 0002) o9H52Pe 24262 00035 098269 01,2228 00059 
128 0O9Ay 20031 oIbKue 04105 00034 09BON*% 04,2572 0050 
116 06856 20015 29K9Ke 23948 00033 09B93% 01,2917 00039 
108 06731 20027 099258 03741 20020 099138 ©f,326) 00032 
Go 06607 o0UsR 0I9USe 23635 00019 099338 ©1,3695 00025 
Ae ebuh2 20019 04630 2 SUTRA 00016 09949% 04,3949 00016 
Is 06354 20050 099736 e3321 00013 09903 04,4294 ©0015 
6s 06233 20006 099748 o316u 00011 09974 61,4638 ©0010 
Se 06106 20010 099908 23007 20007 09981% 01,4982 ©0006 
de «59RG ©0003 099986 22450 00007 o99KAS 01,5327 00005 
3s 05AS9 0UN 099946 22695 20nud 099928 04,567) 00002 
2e 05735 2004 299968 22536 00005 099978 01,6015 00M) 
1s eSolu e9U0G Tylunve 22379 20003 1,0000% o1 360 00000 


LOomEem LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED wITN RESPECT 


Table B-12b 


164 


8 
8 
CuM,® 
FREO,® 


05635% 
057528 
05872% 
059958 
061178 
o62u1% 
ob3oue 
264988 
ob631% 
ob 768% 
069118 
27060u8 
072298 
07398 
07561% 
077328 
079118 
080908 
282708 
ohub3e 
086428 
068178 
2089798 
091208 
092658 
2 93R58 
o9UATe 
295He8 
296698 
97 We 
097978 
298478 
2098878 
099198 
299448 
099628 
099768 
299R7e 
2099928 
099978 
099998 
1,900 
1,00008 


YO HALF THE MEAN RANGE 


LOw waTER ° 
s 
LOWER FREQ, CUM,® 
LIMgT PREG,® 
Cooeeseooenececeoes 
00001 200003 
20001 200018 
20004 = 00058 
00n0S 20010e 
20000 20059% 
00012 200278 
00010 = 0037 
00014 =, 00518 
00023 000740 
00018 000926 
00029 e0lels 
00Neb oOlure 
200338 ,01608 
2000U6 = 0P2OE 
00038 002048 
20053 oOS17e 
20060 003778 
00054 oO4ste 
220697 00070 205008 
2 ,0A1S 0006) 20502? 
2.6932 00082 206436 
2.7050 00079 =, 07228 
2.7168 00007 208088 
©7786 20087 208958 
e,7ung 00109 o100ue 
2.1522 00137 ell22e 
e.764u0 e0le! olouse 
207757 00125 91 3088 
© o7A7S 00146 0151 5e 
2.7993 00156 216509 
eo4111 00166 018160 
2.8229 00146 ol 9%oue 
e.43U? .OlOU o2te7e 
© .b46u 20170 027988 
2.8582 00182 e24bne 
2.4700 00197 o2o77e 
e.HA18 8 40194 228688 
74936 20023 030918 
© 09054 00192 032838 
2.9171 «90230 «= B51 Ue 
2.9289 00227 037408 
2.9407 00248 039860 
2.9525 00224 edrlee 
2.9643 0245 = uudT7e 
2.9761 00197 o4O54Ue 
©9878 00216 =, 48708 
2.9996 00209 050798 
e1,0114 00222 eSt01% 
°1,0232 00706 055078 
e}.0350 00203 057098 
21,0468 00210 059198 
21.0585 00205 ebl2ue 
1.0703 00200 eoseue 
e1,08A1 00172 064908 
23.0939 00162 066788 
#101057 00179 008580 
1 1175 00173 o7O31e 
©1,13293 00163 a7194e 
eseiuio 00170 o7 305% 
21.1508 00154 75178 
Plolhue 00137 076548 
e1o1764 00147 o7h01e 
01,1882 00fu4 o79uNe 
°1,2000 0014) 280828 
eLearn? 00137 062198 
°1.2235 00122 oh3ul1e 
°1.2353 00108 0b 4u9e 
e1o2U71 .0139 85884 
°1.2589 o010t 08689¢ 
21,2707 00103 08792% 
e1,e82u 00095 0 6887% 
#1.2e942 20986 249738 
21.5960 00093 090078 
°1,3178 00091 091588 
©1,3296 00087 09245% 
e1,3saia e078 e9t25e 
°1,3531 00064 093868 
2153649 0064 2094508 
o1,5707 00057 095008 
21.3885 058 2950ue 
°1.4003 20Nu3 o96UT7e 
eredial 00Nus 0 9G498 
21,4238 20046 096958 
21.4356 00039 o973ue 
elodura 00055 =o 97 O98 
2104592 00037 29B008 
1.4710 20034 = 9AU0e 
©1,4A28 00N2u eVAoue 
71.4945 40017 298818 
21.5063 0017 298988 
e1,5141 e0Ne4 099228 
21,5299 20019 oV9uie 
e151) 00015 099548 
©109535 00083 099678 
2125653 20007 09975 
°1,5770 20007 099818 
=1,5A8R 00007 099898 
21.6006- 0004 0994958 
e1,61e4 00004 099978 
21,6242 ,0002 209999 
*1,6560 04001 1.00008 


2,001 FEET, 
LOWER (Ow waTER 


LOWER FREQ, 
LUMLY 
Oesecotsesea 
20002 
20003 
20002 
00003 
00008 
20002 
°,5501 00014 
2.5617 2002 
2,973? 20024 
2.9648 00011 
265963 20020 
2.6079 20020 
2.6194 0018 
2.6310 20029 
=.6425 0027 
2,544 20029 
700656 20030 
2.6772 20042 
= 6887 20053 
2.7003 0059 
e.7116 0057 
eo72t4 20091 
©7349 20057 
2.7465 0074 
°.7580 00110 
227696 0094 
2,782 200100 
2.7927 e0hle 
00315 
20156 
00143 
20140 
20130 
00178 
00166 
00195 
20199 
20175 
20263 
20202 
200254 
20238 
0217 
00207 
00252 
@1,0006 20216 
°1,9l22 20243 
°3,0237 0021) 
21,0353 00213 
©1,0468 0219 
@1,958u 00229 
©4,06099 20205 
©1,0615 00186 
-1,0930 e02elo 
°1,1046 00195 
e1ollol 00183 
°1,1277 00178 
Ptots92 = 0492 
=1,1506 20175 
=1,1623 00101 
o1,1739 00178 
1.1655 200152 
°1,1970 00161 
=1,2086 20152 
1.2201 40136 
o1,.e5i7 20122 
21,2432 00140 
21.2548 40154 
°1,2663 00094 
21,2779 0136 
21 ,2ch9u 20097 
°1,3010 200097 
e1,3125 20089 
e1,32u1 00103 
21,3356 20094 
°1,3472 00066 
°1,3587 ,0066 
P1,37N3 20081 
21,3618 0078 
21,3934 20035 
21,4049 20054 
1,416 0004) 
=1,4?80 20051 
21.43% 49033 
e1,451) 20053 
"1,4o27 00042 
"1,4742 20035 
#1 ,4458 20029 
1.4975 00017 
=1,9089 00014 
>1.5204 200358 
#1,5320 20024 
21,5435 00015 
°$,5551 00017 
71.5666 0012 
°1,5782 20008 
#1,5898 ,0011 
-1,6013 20008 
26129 0008 
-1,6244 20008 
16360 


20002 


Cum, 
FREO, 
sooege 
00002 
20005 
00000 
00009 
00017 
00038 
00032 
00044 
00066 
00078 
00096 
00118 
00136 
00164 
00492 
00220 
00257 
00299 
20352 
00410 
004668 
00519 
00576 
00650 
0076) 
00854 
20960 
0107) 
01186 
ols22 
01465 
ol606 
01745 
0113 
02079 
of2e7u 
247s 
02048 
02911 
o3115 
o 33u7 
03585 
03803 
04009 
e422 
04456 
04700 
04912 
oSi2d 
05343 
0557S 
05778 
05965 
06173 
96568 
26550 
0729 
96920 
67095 
07257 
07435 
07587 
27749 
07904 
0037 
08459 
26299 
28453 
08547 
25683 
08779 
08876 
08965 
09067 
09161 
09227 
09294 
09375 
09454 
09488 
09545 
09584 
09635 
29668 
09724 
09763 
09798 
99826 
99845 
09857 
09894 
09919 
09934 
09950 
29962 
09970 
29980 
59988 
29995 
29998 
1.0000 


THAONAVANMAMALALAAAAAAAAAAAAAAAAL 
arin 


“tiutatealul! mim 


ta PVT TTCTTEUT 


HOURLY TIDE HEIGHTS 
JANUARY 1963 


Figure B-13b 


REEDY POINT. DELAWARE 


2009000000098999 
XXX KK KK KK XH 


79 


12345678910 le 64 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER @e-naxinuy Oe WEAN HIGHER =X @ HEARN 


123456786910 iji2 6 69 7N 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER mewnean = EAN LOWER Xe MINIMUM 


12345676910 i2 64 69 7u 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE ©® -|} owrnar tie @ = EAN TI08 Xe STD DEVIATION 
0.5 
ge MMM 3 YS KKK KKK KKK KK WK KKK KX 
12345676910 i2 6N 69 7u 79 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-13c 


166 


0000°t fmnron® Tren?te 20000°t fhn0u® 2990°T ot e 
9S66° C008 BoLnN® Te 29G66° 0000° CoLoel #2 * 
9566° 0nG0® Ssan°t= #9566° 0000° Lnc0°b ef * 
9566° pnou® Er2n® l= 29G66° 0000° fe.0°t wn ® 
216° 0n00° OL9N° Te 49566" 0000° g2eo°t aS * 
2t66° fone e29n*Te #9666° 9000° Togo 29 8 
8906" onno® Sas7*te 29S66° mn00° £060°t wf a 
8906° Goon® 2ncn*t= #2166° nn0o° {no0°t se PY 
89G6° pno0® 00S7* t= eh9R6° nnoo® £e60°T 26 * 
S2a6° 6120° 4gnn*te eS2n6° e800° m2oret wot s 
S096° reno? Stnn*te eiglo’ mn00°® mg0teh wit 8 
19S6° On00® 24an°le #f696° 0000° Mmorseh set 8 
1956° @Aoo® o2gn°le= 2f696° 9000° mnttet «fT * 
nino? wad? ceen*te »£696° e@00° meli?t went 2 
9856° nno00o® nmnen®t= *5096° 0000° peetet «st 8 
2ngo°® pnoo0® boen*t= 2#5096° nn00° ng2t°t «ot a 
B626° 000° oSsin®te #19S6° agoo° mogiet alt * 
8626° egio° 91In? t= enino® nn00° Snfiel we#9t * 
L916° mnoo® mion®t> s0gne® nnoo° Sect?t eet ry 
i2te° erro® lgon*t= #9@f6° 9e00° Sent*t #02 * 
teee? pno0® BR6L° T= wG@626° nndv® sontetl w#t2 * 
4noe® #e00° 9ror° t= ens26° 9e00° Sost*t e222 * 
09ge° #e00° LOoL* T= 2L9to°® nn00° Snst°t vege * 
2428° 2gtoe logg*te sf2lo® nndu® Sest°t wane * 
Onge° S.toe Bter° t= #6206" nnoo® S291et «Se * 
S9ne? Sato® SLLE°V= #S506° nn00° 9991°T 292 s 
ee2e° 2c1o° foLetl= wloog® nn00° 9041°s 2d2 6 
HSTAR® ot20° 069f°T= winoe® 0000° 9ndb?t we2 * 
ofod° 0000% angi*t= ein6e® eg00° 9eLtot #62 * 
6fo<d° erio® So9c*te e0Guu* ot2u® 92et°t wos e 
40@2° 6129° 2955°1* e0n9e° z2gto° 99e1°t wtf * 
eesd® 0000° O2Se°T= #6058° 6120° 90oTol eee * 
eesi° erto° dint°te= seece® nn0o0°® Gnotel wee a 
9Snd° Sitoe GErtet= e9n2y* 6l2u° Leolet anf ® 
leec® S.to° 2orr* te 29208° Ayou® 4202°t «S& s 
SoOtL® zg1o° onge*te wofed® nno0o® 4902°s 996 a 
169° 2¢10° Logg?te eSeac® nnoo° Zote*t wif * 
ene9° 800° noezt*t= elsed® 2cto® dnt2°l e@f e 
msz9° ot20° Va22e°t= sotld® #600° det2*l sof * 
Sig9° 800° OdTE° l= e269L° zcto° deee°l «0n ® 
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167 


LORER LIMIT UF CLaSS INTERVAL S 
s HIGHER HIGH waTER . wIGH WATER 
s ° 
CLASS® LunerR FREQ, CUM,® LOrER FREG, 
NO, ® Limrt FREG,® LIMIT 
SFOs oeesdeaseeeasssengsess SCeseoesesseseeae 
Lule Ledors 20003 200038 45,4675 2000) 
1008 1.24598 00003 00000 41,4579 0000) 
99s 124522 20003 000096 y,uuny 20004 
9He feduus 20010 200198 1 ,usb7 200048 
O7e tedsos e0Ulo 000308 1.4292 euoll 
Gor 124292 29019 e005S*® 1,41%6 200N8 
95e 164215 euveu e007T#® Leusoo 20016 
94s 104138 29030 eC10%e y,4nou 20026 
Q3e 124062 20050 eUL39@® 143908 20026 
922 103945 20049 eOLB98 163815 000e9 
912 Ledsvuh 20059 e022he 165717 000248 
Sue LeShse 20055 e02bSe 165621 00058 
hYe 1635755 20us0 eOS1S® 163525 00037 
ARe 103679 20054 e0S67% 145429 20046 
578 Ledove 20060 oO4FTSe 1, 3338 00091 
Hoe 165525 e006y e0G93e 1 ,323A 00046 
B5e {esuu9 20069 e0Sb2e 145 fu2 00058 
Bde 165372 e0U9 e053 13,3066 00050 
638 105295 20066 oO7198 142950 00072 
B22 103219 00070 00795® 4,244 00071 
Ale Jes 4e2 20U9G e0GK9® 1.2759 20076 
B08 Je5005 00073 0049658 142663 00078 
79®  Leedhy 20094 el657® 1.2507 00043 
7Re 1e2e9le 20116 ell?6e 41,2474 00094 
778 102855 20099 ole74e 1.62375 00115 
7o* 102759 20120 013948 442279 eotle 
75% te2oh2 ©0124 01514 34,2164 00099 
Tue Leeo_io eOltA e1037® 1.0088 00116 
732 102529 00135 o177U% 441992 00156 
Fee {,ruse 00142 of%tee 11,1496 olla 
Tie 102370 oni6u e2u90® 46.400 00145 
708 102249 20160 eePbse pei tou 00114 
698 122222 00197 ee420e 141609 001359 
oAB Le2j4o 00155 ePST$e 464513 0014) 
o78 102009 ©0169 e2TUee 161417 eolee 
662 101992 20208 029508 16131 0013 
65e Lele 20160 e51108 1o122e5 ould 
o4s 161859 00202 eS312e fo4t3n 00145 
ote 101762 e019 eSU7T1® feu su eulus 
622 lelobo 00195 edoo0e 1.0958 00178 
ble Lelotd 00184 o3647@ 1 aubua 00102 
ous 1601533 00198 e40GS® 1 4nluo 00162 
598 jteluso 00165 042278 1,06050 00172 
SHe 161579 09127 245558 14,0555 20108 
S72 101363 09198 2455ee 140459 00179 
Soe 1.1220 00176 o47508 fused 00179 
5Se 1011449 00160 e49IU 140267 0221 
Sue Jolu73 eOl'y e5uUb1® 4,017) 00181 
S3e 160946 20190 052778 1.0076 ouldt 
see 1200919 0014) 05ub568 299RO e020! 
518 100K45 00205 o5005e 09804 00215 
598 160766 200208 e5b7ee 09768 00197 
ude 100089 eO199 eoulye 209692 20200 
ake levels e018 eoe5$e 09596 20210 
47s 160536 2001K9 eo4uee 09504 00190 
oe 1eNueo 201M6 onoake 094uS 00182 
USe 100345 e0los ob 1918 09309 00168 
4ue 16eNSo0 00235 e7u?os 09243 00152 
use Letasu 00190 eTeloe e917 00158 
wee 10155 00144 015978 0922 00190 
wis tevnto 00198 oTS918 oh426 00105 
ane Le0uve 29176 aTTove oh BSO eQ10l 
340 09923 20199 o74%obe ad? hu 20150 
yee 29KUD 00172 bl due 2038 00155 
378 09770 00172 ebsice oASue 00155 
yoo 09693 eON7u ohutoe eAuu? e014a 
Se eFolo e01d0 eHonoe oh351 00147 
34s 09540 20160 ho2oe 06255 00142 
350 e9uo$ oO11B ob4uue 06159 e01ud 
320 29 5A6 00124 e90boe 080603 00129 
sie 09310 20130 091908 01967 00142 
yoe ©9255 eOUA7 oIcASe 27872 e01es 
29s 09457 00075 09556 07776 00123 
2ue 09080 00ST oFulue 07680 00145 
27e 09008 o0U6o$ oV4778 27584 20108 
2be 08927 2005S 095550 o TUKAR eOlol 
258 08850 ©0054 095910 oT S93 eOlul 
2ue e877 20U42 eIo5se 07297 00099 
ete 04097 20049 290858 e720 00098 
226 e420 20U4n 097238 07105 00077 
2is 06545 2025 eI7Tide 07009 00083 
ane obuo7 e0uS7 e47Ho8 00913 00987 
198 «A390 29022 e9b0He 00618 =o y0T7S 
1Ae oA31S 00037 o9hdne 00722 00902 
176 06237 00U26 e9H7u8 06626 00Mo4 
168 25) 60 e00eu oIO9K8 06530 00049 
158 e6obu s0Ulo 099156 eo4su ©0042 
jue 0407 e0ul0 0 I4250 00539 20036 
136 ©7950 e0U1K oI%use e024y 00057 
129 07654 ©0U10 099548 00147 00053 
tle 07777 OU ey e99hT8 2605) ©0051 
106 «7700 20003 0 IITUR 05955 00022 
4s e7oeu 20007 oF47be 20SA59 20016 
Ae 07547 e000" o99Re® 05704 00013 
Ts 27470 20005 e99KSe 25608 20012 
oe 07394 ©0001 o94A7e 05572 20010 
Se 07317 ©0004 oI9918 05476 ©0010 
us 7240 e0u0u 299908 oS SHO 20006 
ye o7jou 20003 099998 052KS 00005 
en «787 edu0U 699990 205189 ©0005 
1s Tut eO00L) Sevuuus e095 e000! 


0269 
0 S0TUS 
o5250% 
054198 
055918 
057594 
oe SISKe 
o41i7e 
043578 
o45iae 
047U9% 
o49loe 
051258 
e53e28 
055922% 
oST32° 
059228 
001054 
20245? 
eoUuue 
005828 
eo7s2e% 
08974 
a/058e 
072158 
o734K% 
o74bye 
o7oe7® 
o777u8 
0791 6% 
0606008 
061569 
065308 
ebUSue 
00S77% 
o872U% 
obB27e 
069268 
090298 
09128" 
092269 
095u5e 
09 tbe 
094749 
095474 
29o09e 
090738 
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096569 
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099028 
0992ue 
099414 
099548 
299068 
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099074 
099958 
099968 
099998 
1ey0o0" 


Table B-13b 


HORN, ALL HEIGHTS ARE NORMALIZED WITm RESPECT TO HALP THE MEAN RANGE 
* 


HOURLY VALUES 


LOWER FREQ. 
Limit 
Oeeetegesseosgose 
1,46075 ©0000 
1,4560 00003 
1.4088 00003 
1.3789 °0U07 
1.3494 00010 
1.3199 Outs 
1,evu4 N02) 
1.2609 20028 
1.2514 20036 
122019 ev0d7 
1.1723 20050 
$e1deb 20069 
1osi155 007d 
1,0H3e 20086 
1.9943 20100 
1.9246 00110 
209982 ©0125 
09657 00133 
29502 eulag 
09067 o0)46 
08772 eul4s 
28477 00150 
0818) 00159 
o7dHo 00156 
07591 00156 
272% ©0159 
0700) o01S$7 
06706 001535 
06414 00146 
06115 00137 
05620) 00159 
05525 20125 
05250 0012) 
04955 ©0120 
o4o4o e0116 
o45uu eOls0 
24049 00115 
03794 eolol 
23459 eolou 
03164 ©0103 
02609 °0104 
oPoTu 0010) 
o2e7b 001035 
01985 00103 
01688 20100 
01593 00097 
01098 ©0099 
00803 00097 
29507 20100 
202le e010) 
2.0083 00100 
2.0578 00105 
2.0075 20100 
©0968 20099 
e,icb3s ©0100 
261599 ©0105 
e,185u °0105 
2.7149 ©0107 
e,2buy e0104 
2.2759 e106 
e,susu 00105 
9.3356 00113 
=.t025 e011! 
2.5920 e011 
7.4215 e01st 
2.4510 e0120 
@,4805 e011? 
2510) *012e 
= 05596 0129 
2,509) 91268 
© 25986 ©0127 
20625) 00139 
=,0576 eulad 
2,647) 00155 
2.7167 00155 
2.7462 00163 
267757 e017) 
©8052 00175 
28547 20172 
2 Aod2 00178 
28958 00169 
2.9253 ©0155 
23,9524 20155 
=,9b25 e0141 
Pa i) 0125 
e1,nuis e0lts 
21,0700 20091 
21,1004 ©0082 
©1,1299 e0uTs 
21.1594 20056 
e1,1849 ©0046 
elecisu 00039 
21.2479 00029 
21.7775 ©002) 
21.3070 ©0015 
21,3505 00010 
=}.4060 ©0007 
21.3955 eNv05S 
#1,425u ©0u0e 
e1,d5uo euv01 
1 ,4buy 20000 


168 


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8 
CuM,® 


e00108 
200208 
000554 
200508 
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001218 
00/098 
002258 
e0e9us 
oN soue 
204568 
095568 
26608 
007918 
0992ue 
210088 
el2lo® 
ol tore 
015118 
016668 
elkeus 
019608 
021 3H8 
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025958 
oeT32e 
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035558 
2 3465% 
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037852 
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0 39908 
40918 
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052958 
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000278 
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072178 
073558 
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296958 
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099598 
099018 
0997 OF 
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099938 
099978 
099998 
1,900U8% 
1,00008 


2,754 FEET, 


LOW PATER s LOWER (On WATER 
¢ 

LORER FREU, CUM,® LOUnRER FREQ, Cum, 
1S ad PREQ,® LIMIT PREQ, 
FOOSE ROOT O ODEO EOE SOOO TOOL OOD OREROONEEOSEDRERS 
2.5910 00nol 00001% ©, 7082 20002 00002 
5999 00002 0000S® @,7160 00002 00003 
0069 2000G 00007 @,7238 20014 00014 
2.6178 00008 000168 @,7515% 20004 0000S 
@,6267 04005 eV0d1® ©,7593 20vel 20044 
e009 eN05U8 ru70 20u2u 20008 
00018 evU4S® 0, 75un 20048 e0llo 
2.0535 e004 000018 @,7625 e0Ud4K e015 
226625 20020 eU0KI® ee, 7703 20046 200207 
20022 2010S® ©, 77R4 20059 20266 
200e4 00127 ©,7055! Ove 00535 
00059 00100% ©,7936 10uU%e 0042S 
2.0982 0029 e0195% e,huls 09098 00518 
eo707! ou0st eVecos 2,409) evs04 oboe} 
207100 2004 00270% 0,6169 20107 00726 
207250 eunsa 00304 e,F2u0 20092 00619 
eo7339 00056 e0$00% ©,9$2u evlee 00944 
207428 00053 004) S® ©, 840) 00144 01065 
2.7518 00069 e04K2% aw bury 0012s el210 
eo7hn7 00978 265018 0.8550 00158 o1sus 
©o7696 e0N7Y 206408 o,8o su 00157 ol48u 
207785 007A eUTIK® ©8712 o0151 01015 
ee7ATS §=o103 oGK21® ©,6789 ef 13e e17S5 
2 o796u ousi4 009548 ©,5867 200154 01887 
26055 eile 010468 e,6944 00}5e 02038 
eobsus eUled o1171% © ,9U22 20164 02202 
eohase 00152 of 3U2® 6.9100 014s e2Suu 
2.5321 e0luy 014518 ©9577 00159 ee503 
eobutt eVlot eleolee® ©,9258 0016) 02064 
eoh500 euld6 o1755% ©9532 00147 07614 
24569 e154 ol¥joe e@,9410 o919%2 20 SU05 
e679 00973 020098 6, 9UA7 00170 oS175 
2 ob7oR oulsa 022422 © ,9565 00174 oS 547 
2 .tAS7 0vS90 024529 ©, %oUus 201 bo 05555 
OG) oU19t 02625% @,9720 00168 05721 
2.9036 e019? e2820% 02,9798 20215 23935 
=o09125 0016S o3003® ©, 9875 00107 04102 
eoIP la oVPV0 oS2u2e® 0, 99535 00194 04295 
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2.9572 04255 o4054% ef ,0263 00165 05007 
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1.0018 0v209 ed149% ef ,005) 20194 05937 
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e1.u2b6 e221 eST57® ef ,vbKu 00155 26406 
21.0375 eV2le 059098 01,9962 00370 06575 
eleiuod 00201 061708 e1,1u39 0037) 0O746 
21,0554 oVIKO 065598 1 ,1117 20140 06692 
eleuous e019? 06550% &1,119u 20166 °7U60 
21,0753 A a) e07U5% eLyle7e 29134 07193 
=1.vuRe2 oUlod e6908*® ef 1349 00156 e735) 
21.0911 00159 o7008% ef ,1427 ei Se 0748S 
21.1000 00185 0725$® 9141505 e0ldu o7o23 
2161090 20150 0740S {41582 vise 97755 
2101179 00158 o7501% e1,1og0 20158 07098 
el .12o4 eulat o77UL® ey ,1737 oull? e801 
elei3s6 elo2d 07804 91,1415 20099 206109 
ml.)uur eU15S7 e500 91,1493 00N37 oh4edo 
21.1556 00148 e61UK® wy ,197U On ie | 05570 
@leloeb e012o 08275% ef,.7046 00457 06515 
e1i71S 0015) 064U6% #142125 e004 obole 
|1e1AOK = 4U103 = ghS09® ep ,e203 40101 8717 
@1,149u 00125 086S$4% e1,2¢bu 00095 o8b10 
21.1943 0011S eO7TU9® 21,2556 20U9%U 04900 
1.2072 oUlel eHATU® ef, ‘Udo 2008. 2898S 
*leclol eV0R6 oh950% of 7515 00095 09078 
eleeAst e00KF e90U28 01,2594 20064 eF1ou 
*1ee340 0UN%6 o91S9% 81,7668 2007) 09230 
1.2429 ounk2 292218 ©1,2740 20065 29295 
2102519 20089 2093108 ©5,262u 2966 29561 
el.enu8 00062 095729 1 e901 20USY 09419 
21.2097 0060 e94S2% @4 6979 20udu o9405 
e1.e787 000548 e94K9® ©), 5060 00068 095350 
21.2876 00057 095U0% 01,45) 34 20045 09575 
e1e2e905 00045 e95918 OL, helt 20047 09022 
21.3055 00055 09640 et, $2860 o0uSY 09052 
e1e5144 0004s 09085 01,5567 20055 09086 
o1.5733 e042 097298 ef, Suuu 00046 09734 
21.5322 00052 e9To2e® =) 43522 20uSS 09709 
elesuie 02k 297H98 &1, 4599 20veT7 29790 
e1,550) 000357 09827% ee, 5077 20027 09825 
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21.5660 00025 e9K7H9 w1,5H32 20019 0907S 
15709 evnel o9N9IG 1 ,591U 20ue) 09690 
1.3858 00019 099198 ef $4K7 e0uls 099hu 
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21.4037 0001A 099558 er yitue 200lN o94uT 
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2104216 20008 099728 ©) 4e90 20000 09405 
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JANUARY 1963 
Figure B-l4a 


PHILADELPHIA. PA. 


PHILADELPHIA, PENNSYLVANIA 


123456789810 ile 64 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER a @ waxinon @ = HEAN HIGHER X = MERN 


123WU5678910 12 6H 69 7u 79 
MONTH OF THE YEAR YEAR (1965-1981) 


LOW WATER @ «nea @ = WEAN Leven Xe HINIMUN 


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0 BS PRS AES SES SB KRM KMKKKKKRKKKKKXK KK 
; 123456786910 12 6 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-14c 


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Table B-14b 


LORER LIMIT OF CLASS INTERVAL BRORN, ALL HEIGHTS ARE NORMALIZED WITM RESPECT TO HALF THE MEAN Rance 2,954 FEET, 
9 AUGHER HIGH aaTER ° HIGH MATER e MOURLY VALUES ® LOM RATER e LOWER Low maTeR 
8 9 e e 
LUwER PREQ, Cum.® LORER FREQ, CUM,*® Lower bREO. CuM,e LOwEeR FREQ, CUM,® LuRER FREQ, Cur, 
uansit PRE LIMIT 4 © UrerT FREQ,® LIMIT FREGS® LIMIT PREQ, 
OSC OSHS FHUESHSO SHOES OORSESE Seesoeseonseaes SOOO OOS SOOO SESE CEOS EE OSES ROTSTOHOH OHS H TOG SH SHOOTER OSS SORE HOTS SESH ETEEE 
Jol® 105941 .0U0) 200018 31,5944 20001 00001% 14,5944 00000 40000% e,7308 40000 400008 2,8090 0003 ,0001 
1008 120564) 20000 000038 14,5818 00000 00001 1,56036 00000 00000 e,7378 2000! e0001% ©,6152 2000) 00003 
990 125742 20000 000018 §,56095 e00ul 00001 1,53530 ©0000 c0000% e,74u8 ev00d 000008 #8214 20003 20000 
988 105042 001 00003 465572 c0001 00002% 34,5034 00001 90001% 67518 0001 20007% |,8276 0000 0012 
Q7e 105542 00004 o0V0T® 4.5449 00004 00007% 4,4734 00002 000038 e,7548 00005 00012 «,8538 00007 00019 
Qoe LeSuus 00V00 000138 14,5326 00004 00030 14,4429 0003 00006 ©7658 200007 00019 22,8400 200le 0003) 
950 165543 e0vo? 200218 1.5203 0000) euole® 34,4127 00004 eOOKLF en7?e7 00007 200259 e,6462 00019 0005) 
Que 132404 e0u0s eQu2es 14,5080 00004 00030 14,3624 00007 000188 e,7797 00009 000S4@ o,852u 40015 00006 
w3e 16Sydu 00u0s e0u25e 14,4957 00030 o0UeT® 41,3522 eouse 00029 a,7Bo7 00007 20042 e,8580 00022 00086 
92e 10545 e0uld eOusee 4 ,483u 00082 00059 14,3220 00044 000448 067937 00015 00055 «©,6648 0002) 00109 
9le 1eA9us eOule eUUS4O fy ourit 00009 00046 34,2917 oul? 00001% @,6007 20010 000058 #,87}0 000e7 00136 
Yue Ledbuo euvel 00075 41,4588 00usd e0001® 442015 00020 000819 9.6077 00017 200028 o,8772 00028 00164 
BYe LedT4H = eduto =eVO91® e445 00039 00080 442332 00028 20109% 064147 0018 10090 @,6534 ,0045 0209 
oRe Jededo 00021 oVlie2® jyeusua 00089 000998 4.2010 00038 o0142S e,b216 20023 001199 ©,868696 20046 00255 
b7e 194547 e0u2e2 eVlS5® 1.4220 00019 oOL19F 49,1708 004d 00195 a,h286 20000 001450 #6956 2004e 00297 
bre 1e4Ud7 = 40U2H =o DOS 1.4097 90025 oVS44® 441405 00052 20243% 56356 20055 20178 ©9020 4005) 00548 
65% Ledsde Oust 001948 14,3974 00035 oO177® 444105 0006) 003048 e,8u20 20048 00220% =,962 20055 00405 
b4e 1064248 20030 oversee 4,385) 00053 002108 4,060) 00073 003778 2.8496 00044 002708 o,9) uu 00005 20460 
B3Se Le4s 4H = 6003H = oM2OS® 153728 00045 00255 140498 00084 204018 @.4566 40060 40330 =,9207 ,0001 0527 
Bee 1ed4od9 e0usS 005088 14,3005 00040 00295 1,039 ©0093 005548 e,bo36 20058 005888 0,9269 20070 00597 
Als 123949 20000 eusnbe 4 ,3uR2 0050 00345e 09094 00105 006598 2.8706 20070 004598 9,953) 00104 00704 
B08 tedeSu 0u0Su 004228 34,3359 00046 o0S91% 0959) 00115 007748 a,8975 00090 005468 @,9593 000% 00797 
79@ Le3750 eVV7S oV49O8 463236 00052 00444% 9289 00423 408978 224845 26100 906558 09,9455 0107 0904 
78s 103051 00U5H 005558 153113 00055 004988 08987 00139 o1050% ©6915 00091 007US® ©9517 e014 $0 01034 
778 10355} e0v66 =e VE2U® 1.2999 00054 052% 08684 00145 891 79% ©8965 80151 2008574 0©,9579 40154 91168 
Toe tosudse 00073 e00948 14,2867 00002 000149 206582 00148 01326% ©,9055 0010S 009600 #9644 00196 el34o 
758 103352 euu7s o0768® j{,27uu 00069 ©0638 2806y ONS) el 478% 269125 00150 01090 #9705 00178 olS2u 
74s 13253 00U79 oCB4bG 46202) 00079 00702e o7777 00156 olo30% © 69195 00129 012198 ©,9705 e0l72 016096 
73e 1033535 20u72 oN9198 442496 00091 008548 07475 001357 o1793% ©,9204 00138 0135798 ©9627 20209 01904 
728) Lesnd5 00u% 010098 462375 00102 00950e 07173 00152 019468 @,935u 00178 015558 ©9889 o02l2 0216 
71e 1e245u 00U69 olu76e@ 462253 00105 010019 26870 00157 e210$% @,9404U 00159 210940 2,495] oes) 22348 
708 1efRSu e0u90 efl6® jJo2tso 00107 elloue 06508 0016) e2204e «,94u7u 00165 016599 03,0013 e0els 0256) 
Ye 102755 00100 = =ole748 1.2007 20110 01278 46265 00103 o2u27® 269544 40208 o2007% 91,0075 40255 e2dlo 
68¢ 102055 00100 ol 3SAuS 43,3464 00142 14ers 05903 00152 025798 2.9614 On BY 027008 ©1,0137 e0elo 030335 
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66% 102456 09136 olo3ue 1 ,103A 00133 olo76% 05358 0015) 02882 0,973 00222 026688 21,026) 2024S o3534 
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028 102y56 00156 22006 Jeh1u6 014d 022408 04149 00132 034428 03,0033 00272 o37ul® ©3,0510 02s) e447 
61% LelGd5 = 60403 o2S71® 4561923 00180 o2475% ,3B847 00329 435718 ©1,0103 90245 639479 91,0572 024H pb72e 
098 191859 = 60184 029528 150900 ec0174 02050 43544 00127 43698" 01,0173 20200 4207 =1,0034 40255 4955 
59e 101759 e01To 027268 34,0777 00192 o2buie o3e42 00326 038268 ef ,0242 00265 o4472® ©1,0096 eoesu 05390 
Sbe leloou 00179 e29use 31,0054 00105 o30eue 02940 00126 039528 ef ,0312 00247 047198 91,0758 20240 054356 
57e@ 101500 o0173 o3UK1® 460531 00206 = 3229 = g 2037 =o OF 21 = HUTS® ©1,0382 90245 .4904% @1,0820 40215 505) 
Soe 1elueu o02l2 o3245S@ foudOR 00192 oF421% 42335 00120 24195% 01,0452 yu2ui 052058 91,0682 ,0194 45645 
SSe lolol 00164 034558 1.0205 002e5 o3o4oe 02033 00316 043098 ef ,US22 00257 ob4u2e =1,0944 00197 eb042 
S4e tel2et o0214 63009% 1.0103 00209 o3855% 41730 00121 o4450% 91,0592 0246 5688 @1,1000 4.0193 ,b25u 
S36 lelioe 00190 036598 4.0040 00206 40019 91428 e0122 045528 e} Vbo2 00254 059429 @3,1068 20185 20419 
S28 lelvo2 ovela e4u7es 09917 e02s3 o4a7ue o1te5 oOli? o4670% 1,075) 00243 06165% 91,1130 20200 06019 
Ste 120090$ 0021) e428$8 = 9794 = KLOY =p W4UBS® = gH2S = OH PU «= HT.90% ©1,0801 00224 ,6409% 91,1192 0197 6816 
Sus 100605 00194 044760 09071 00242 ou7ese 00521 00115 049059 e1,087) 00194 06005% 94,1254 00175 00994 
u9e 100763 00233 o47118 0 954A eves! o49578 09218 e0llo o5021% ©f,0944 00169 007929 41,1316 201604 07155 
4Be® 1eVoou 00178 0 4OB90 09425 00237 05194 ©,0064 00119 05140" ef o108) 00195 009889 =| ,1378 00164 eT31o 
Ue 100564 0212 05101% 49302 00238 o5411% 050586 00315 95255" 015106) 00165 =o 7172® =t,1440 .0169 47485 
Woe 100465 60199 455008 49179 c0227? 05658% ©,0089 oie 953679 ofo115! oU169 = =o73S62% 91,1502 OTe 7057 
45e 160305 022d 655248 = 9056 «=o 023B =o SB7H% 0,099) cOLti 654789 ehe1221 60177 075398 91,1504 0149 7800 
Que 109266 60208 057328 48933 oU212 10008 @51293 00115 o559$% 101290 50165 o7724% P1,1026 90149 47955 
G$@ Levpoe elu eS5440e 48810 0211 00299 06159 =o N12 «=o ST05® 153300 0015S 97870% ©1,1088 0148 6405 
42s 100ue7 oO1S7 eoss2eo 6087 002)9 005188 0,1898 00116 058218 ele1450 00151 ef027*® #141750 00145 06246 
aie e¥4OT =o 0224 =o 0357 = B5B4 =o DPU4 =o OFLA y2200 = 0195 = 950% H101500 0177 «= H205% @1,1615 .014e »6390 
woe oFHOT =o NPNS =n BOLO = g BUY 00202 = 0924® =o ,25US =o ON13 = HOSUF H10157U = 01SS = HS SBF O$1,1675 20139 48528 
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yAe 29%oe6 00233 o7ui se 04196 00175 07268 ©,3107 e087 06281" ©161710 00134 086188 91,1999 Olea 08784 
370 2095609 00188 o7e20le 208073 00171 074599 «3410 00344 063959 of,1779 0029 o674U8% 1,206) 20099 28662 
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ye 09370 00194 o7SK40 0782? 00174 o7Tbul® 00315 066189 0} 1919 Oe al) oOVN2e @1,2145 001304 09062 
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330 09 7u 0016S o7¥hVe 07581 e01S5 eoleue 20140 068459 of 52089 00094, o9165% H1,2509 00078 09255 
3ee 09071 ouleu 1758 07458 00199 082799 e01s7 069008 eleei29 00080 092038 ©1,257) 00009 09524 
Sie oAY71 00182 =o8350% = 7835 =o 0127 =p BU OF ©0116 «=o 7070% 9102199 .00K4 o9547% ©1,2433 0070 49394 
yue obaTe eOtdy 054908 o?212 oo1dt 085578 00116 071928 02268 00074 94214 1.2495. OOTS 09407 
299 o772 6015H of0558 47089 00129 06605° ©0119 «6 2310% @he233B 70900 8 o94H1% 142557 0040 9513 
ake oho7s 00160 ohblue 00%06 e01e6 06791% 00119 o7429% ef ,24u8 00074 09559% @1,2019 20054 09507 
27e e457 00356 oAMS5h6 e0buy 00132 06925° e012e o7551% 01,2478 00055 09610% ©1,208) 20000 29027 
2oe ofu7y 00105 040558 eo720 oolis ovale e0t25 76748 152548 ev0us 096554 94,2748 00059 09066 
256 063574 Olek 091708 00597 00098 091598 e0l2e 07796% 01,2618 00042 290958 ©} ,2805 20028 09094 
249 =oteT4 = 00% =o FABOF = gH =o 0H )=— so PAS 00335 «=o 79319 efe2bbR ,0043 297SI% S{,2HO7 0040 09734 
2te e175 20064 oVSSue 06351 00108 o9355e 0013) 08062" e1e2757 0031 09700% ©1,2929 0004S 09778 
228 oHy7S 0004S o941Se 00229 00008 ovdars 00134 of201% ef ,2827 00030 097988 ©1299) 000e) 09799 
aie 07970 20066 oVuate 26106 00078 09499e 00350 083519 o1,eA97 00050 098268 ef, 5053 20022 09624 
Que 7676 ovuS2 o9S3us 05964 00073 095719 00157 085088 ©1.2967 00025 096538 ef, $110 00015 09636 
19¢ 07777 00049 oISKS9 25600 00003 09o5ue 00169 o8677* 01.3037 20020 o9b749 91,5178 00019 09655 
1b9 e7o77T §=6094H =o 40299 = S7$P7 =o 000K =o H98 00170 «= BBUOF H143107 20016 49690% =1,3240 40030 49085 
178 07577 0005S oFOASO 05614 oGOu7 097469 00176 090248 ef oS177 20016 09906 =1,3502 200030 09096 
los 07476 = 60045) o YT 248 09494 00046 097918 00378 692038 143246 60019 499244 ©1,3364 0015 49910 
156 07376 o0vu2e? 097508 05 30R 00094 096459 01,0061 00165 093679 1 o3316 001d 099S0% ©1,3426 00032 09922 
146 07279 00036 0979¢8 05245 00052 094779 01,0304 00147 095148 of ,35H6 00012 099488 © 1,548 20083 09930 
130 07179 00026 096210 05122 00030 099079 01,0666 00120 09640" 2155456 00010 099568 m1,3550 00010 09906 
126 o706y 20u2e5 oFbUoe 24999 00019 099279 01,0969 00099 09739% ©} .5526 20008 09900% e1,3012 00004 09954 
11s 20960 20Ul6 24628 0476 00019 099468 ef of27] 00ues 098228 &1,5596 2v00d 09970% =1,5074 00009 09960 
tus eOnet 20027 0 IbB9G 04753 20016 09902% a1 51573 00063 096848 @1.3666 20005 09975% &1,35736 20010 09970 
96 0O7K4 00018 9407S 24630 00009 099719 ef ,f876 00046 099519 SL, S736 20007 099824 @1,5798 20004 09975 
Be 6641 20025 994338 04507 060008 0699799 01,2178 00028 49959% =1,5405 40004  9987% 93,3860 0005 ,9976 
7s 20582 00013 049408 o436u 00002 099619 01,280 00048 099778 01,3875 20003 099908 94,3922 20000 09984 
6% 26462 40009 499558 ,u2et 00008 «09990% 01,2783 0011 099B9% 0143945 0003 99958 =143984 40000 49990 
Se oh3h3 00016 oI97e8 04159 20003 099959 01,3085 ©0000 099955 m1 ,4015 00003 09990% 1,406 00005 09995 
Me ob265 = 010 =o V9HR® = U0 «=o 0002 «=o 9995 ©4,3387 060003 499988 21,4085 0001 29990% 01,4106 0003 9995 
3e eoibu 20010 099959 03693 00001 09990% 01,3090 ©0003 09999% 91,4155 09000 099909 #1,4170 20000 09993 
ee ehnbu 206 099948 03770 00001 09997% 01,3992 00003 $e0u0U® @1,4225 20001 0999 71,4232 20003 099% 
1° advou e001 = Seuv0us 05047 00003 fo00u0® ef ,ue%u 20000 1,0000% ©1,4294 00002 bevuve $1 ,4294 20004 $0000 


irae 


2s 
HOURLY TIOE HEIGHTS 
BALTIMORE. HD. JANUARY 13963 


Figure B-l5a 


20 
MHHW 
MHW Equivalent Gaussian 


o Distribution 


Extreme Monthly HW 


-O 
MLW 
MLLW 
Extreme Monthly LW 
-20 
0.01 0.1-30 -20 10 -o 50 0 90 20 30 99.9 99.99 


Mean Range =: !.03 ft 
Figure B-15b 


le 


BALTIMORE, MARYLAND 


G®OO0O0KOODAOOAOQADHO 
X«KMKMK KKK KKK 


x eo 


“123456789 10 12 6Y 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 « maxinun @ = WEAN HIGHER X © MERN 


12345678910 il2 6 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o@ = wean © NEAN LOWER X= MINENUN 
3.0 


0 Bo HooUoTeFee0CTG9TFOF8HO vA Oop. 
Cnog 


1.84000 00000000 ©OKHBHHHHHH909F900 


12345678910 12 6u 69 74N 79 
MONTH OF THE YEAR YEAR (1963-1981) 

RANGE o - DIURNAL TIDE @ = NEAN TIOE X= STD DEVIATION 

0.5 x X x 
x 
0.0 XKKKK KKK KKK KKK KKK 
=i jars) 
123uU567868910 ke 6 69 7 79 


x “MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-15c 


174 


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Table B-15b 


LORRR LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED WITH RESPECT TO WALP THE MEAN RANGE o5ie PEET, 
e MIGHER HIGH WATER 9 HIGH WATER ° HOURLY VALUES 9 LOW waTeR e LOWER LOmw WATER 
8 e ® s e 

CLASS® LUMER FREQ, Cum.® LOWER FREQ, CUm.® (oOWER FREQ, CUM,® LOWER FREQ, CUM,® LORER FREQ, Cur, 
NO, ® LIMIT PREQ,@ LIMIT FREQ,® LIMIT FREQ,® LIMIT FREG,® LIMIT FREQ, 
SOTO SSHTFSESSOH SHES SHSSHEFES SHREK HE ES ESTES HSSHSSFOH SSE SEH EHOHSSHSHS OOS HESS SHOT HHHESHHOSOCE SOHO HHETSHSHO HOH HHHOSERBEOOSEOSESOLOE 
1ole 269015 .n004 200018 2,9915 00001 00001 2,9015 20000 200008 04958 00001 000018 2035 = ,000) 0000) 
100% 208707 20003 200048 2,86uB 20003 20004 9,AuSo ©0000 000008 o4Qu0 00004 00005% oe877 00001 00003 
998 2.4399 20ul2 eOuloe 2.4281 20007 20010 2,7897 00001 000018 4321 20004 400098 e520 20009 0012 
GAs 204091 20010 200278 2.7914 20008 0©0019% 2,7338 00003 000048 24003 20008 200178 o,3362 20022 20034 
978 207783 20016 000038 267546 20035 20054" 2,6779 20003 = =,00078 2 308u 00016 0003Ue 23605 0049 00084 
9oe 207475 20026 00078® 2.7179 20013 200468 2.6220 20006 00128 S366 200023 200578 3eu7 20060 00150 
958 207107 29021 000938 22,6812 00018 00004% 2,566} 00006 200188 23007 00022 20079% 94090 200To 00226 
Que 2.0459 20035 e0125® 2,64u5 20031 ©0096% 22,5102 0008 200268 02729 00030 201088 24532 20090 00522 
938 2200551 20048 2017S® 2.0077 00019 00415 2.4543 000)1 200378 a) 20030 e014ue e475 e014 20436 
92e 206245 00037 202108 2.5710 20027 e042 22,3984 20013 200508 22092 00025 «4016098 04816 20132 00568 
918 265935 20057 e0Auhe 22,5343 00057 e0179% 22,3425 ©0015 090659 ol 773 20046 ovel5® @,5060 00148 0717 
90% 20027 20UU8 202968 2,497H 00037 e0216% 22,2866 20022 200878 21455 00038 002538 02,5505 00127 20644 
B9e 265319 20063 00354 2,4608 ©0040 00256% 22,2307 20u27 e01lue e116 20055 203088 00192 01036 
BAe 265)11 20066 204248 2eu2uy 20045 203008 P,1746 00031 001458 00818 00054 00 $628 05788 20184 01220 
A?e 264703 00U63 eOGATe 22,3874 00049 203508 244189 00033 eO17Re 2uu99 00063 20425% 2,6030 00187 01408 
Boe 224395 20060 e0S40e = 2,3507 00097 o0407% 22,0629 00038 002168 001K) 00055 004798 06273 00393 o1004 
RSs 264087 09999 o0045e 22,3159 20078 00465*# a.nn7o eodue 29259% w,01SA 20060U o054u8 200199 91604 
Bue 2e3779 20073 eC7168 2.2772 20081 00507 41,9531 00043 00302% 2.0456 00057 206018 20205 22006 
B3e 2eSu7] oNlns 066218 2.2405 00NK6 00653% 1,A952 e004u4 093518 ©,0775 00069 00669% @,7005 e023) e2e3s7 
B22 2etios e013) 009528 2.2038 00105 00757 1,A393 ©0054 c04NS® @,1093 00M? 207508 7eus 000d 02456 
Bie 262855 oO1de o1U94e 2.1679 00097 evhS54® 14,7834 200548 oN4O3S e,14j2 o0Nee 007964 7486 20226 020840 
B08 26e547 09154 el2dde 2.1303 20086 =o 094% «147275 00062 209525% 051750 00077 204758 7728 00198 eebA2 
79e@ 202239 0015) o1S998 2.0956 20096 01056% 1,6716 00064 20589% e,204u8 20085 009008 7974 og2i4 03100 
78e 261930 0916) o1S60@ 2,0569 200090 o1126% 14,6157 00966 09655% e,2367 20ngn 019508 20219 03319 
778 Aeloee e01b5 e1725% 2.0202 00089 e1215% 14,5596 00070 007258 e.2cbAS 0006S oll sue 00198 o S517 
Toe Aelsia o9l4o o1b728 1,9A5u 200092 o1S07® 14,5039 e0U7S o9K00% ©5004 200096 olesie 00193 0571 
758 261000 0015u 02025% 14,9407 00098 01405* 1,448v 00075 00875% e322 00110 o13414 o,b9uy 2018) 03892 
Tue 200H98 00157 021828 1.9100 00123 01529 34,3924 e00A4 00956" e,5644 e0le2 ol4ose 00196 04090 
738 200390 20137 oP $19e 154733 00114 e1642% 41,3362 200A o1040® ©,4$959 00133 015908 20148 04238 
72% 200)82 0015u o2475e 1 ,8365 00120 el7o2* 41,2803 e00K7 o1{27% ©,4778 00145 o1741% ©,9664 eOldu 04362 
Tle) 109774 20145 oPo1be 4,799R 00120 o1Ab1% 42244 00091 012188 ©4596 00179 01920 6,991) 20144 04523 
70@ 19460 00154 e27728 15763) 20099 01901 41,3685 00094 o1312% 264935 90179 020988 ef ,0154 20127 2405) 
69e 169158 001% 29678 1.7264 00105 02066*% j{,31e5 00101 o1d14% ©5733 00176 02275 21,0596 00100 04754 
64% 104850 09173 o514ue 1.0446 00310 o2)9%6*% 14,0566 00105 015168 ©6955? 00221 ec4968 ©} 0039 200100 04658 
ofe 108542 20196 e530 1.6529 eolia 2311 1,0007 00119 01633 ©,5K70 00210 027068 ©] ,QKA2 20100 04958 
668 1e8234 00173 055098 1.6162 00135 o2kZo® 09446 OU re) 01756% 2.6169 ov2ld e2920% ef,1i2u 00118 05076 
65% 167926 00158 e36678 1.5795 00119 e254ue 208889 00133 01889% 2.6507 00216 03/568 ©1,1367 00118 09195 
o4e le7ols 00134 eth601e 14,5427 Oh we) 020578 ASSO 00147 02036% 2,626 202¢48 03304 ©1,1009 20094 09289 
o5e 167310 0014S o3N4oe 1,5060 00098 027958 eT 00152 e21h68 e,7{4u 00719 035649 01,1652 00300 05590 
62e 167002 09155 e4101 1.4693 00114 o2hove o72l2 00159 ol347% wo, 7463 0lP59 eo SAR228 02094 O12) 055K) 
61% 1eb66%4 eOtet 04265 1.43246 e01eu 029958 266055 0017! e251A® 0,778) 00227 040508 ©{,2337 20088 25000 
60% 1.56586 001S4 o4410e 1,395A e0leu o SL174 06094 00179 026097% @,8100 00214 24208% 01,2579 09096 05696 
598 100078 00106 043228 1,359 00118 032558 209935 00178 228759 2,818 00197 24405% ef ,2h22 200868 09784 
SAe 109770 00142 e4004e 4 ,32U eOllt 055409 04976 0019) 230608 2.6737 2UPl6 e461 ef, 5065 20087 0567 
S7?e 1.5462 00121 o47TAS@ 442857 oO1ht 0 54508 e441? 00194 03260% ©,9055 00203 e4hbUS of ,3507 00069 02940 
See 105;54 00122 049078 41,2489 e0s14 035708 2° 3658 00196 034588 ©,9374 20176 05000% 21,3550 00094 06034 
5S5e* 104846 00126 o5030 = Jo2122 00119 256898 23299 00203 236608 ©,9692 00182 252628 ©1,3792 2007S 26108 
Sue 104538 20099 eSitus $,4755 00555 058238 02740 09196 o3A56% 1.0011 00153 05395% ef 4035 00078 00186 
Sse 124230 00135 052678 14,5388 00145 039608 Plt 00205 04061% ef .0329 00147 05541% ef Ue77 0009) 0277 
See 163922 00119 oS3K78 161021 00125 obUGSs olo2e ©0202 o42648 ©} ,V64R 00147 e56KR® ©1,4520 20072 065u9 
Sis feto14 eOlss eSSTKS 44.0653 00155 o42uge ol0be e0en7 e4UTU® 01.0966 00140 058269 ©1 4762 2009) eOuuy 
Sone 1e3300 20109 0502778 140266 ole 244uoe 20503 00207 e4O7TK® 01,1265 00151 059798 01,5005 20093 = =4653u 
U9e 102997 09100 oS73be 29919 00170 04579% ©,9056 00207 24BAS® 01.1603 200135 e614 &f,52u8 00105 eOOS7 
UAs 162089 20093 250258 29552 00191 047718 @,0015 00205 o50KG® 0141922 00150 26265% ©1,5490 0907S ooTl2 
u7e VerSAL 29096 09214 o91KG 00206 o497h® o,1174 00209 0529A8 el ,e2un Po 2o40US 01,5735 20075 00787 
uoe fo2075 00100 a eAAI? 001he e515HF o,1733 0216 055148 01,2559 0014 00546 @1,5975 200A4 90568 
uSe 191765 e010$ 61 2ue oh4So vee) 05579® 2 ,Ae%e 00215 057298 e1eeR77 09155 eO7T01% O1,6218 20060 06928 
ude 1,1457 20135 oresye otOB3 202s 056308 o©,2r51 o0e2s 259528 of ,3195 20156 ebHST® ©] ,buoU 20085 07015 
ade 101149 00109 eb SUK 07715 20104 eSHUU® oo, 3ulv 00217 061689 of 5514 ool 2099A8 ©} 6703 20075 07088 
u2e 1460AR41 e106 2buSue o734UR 202sA eOU41F 02,3909 002A} 063909 21,5832 00138 o715S7® &f,6945 29066 o71Sa 
aie 100535 00145 205946 2698) 202A 00249% ,4528 ev2ed e6613® 91,4151 euiud e7201% 91,7148 20088 e7eus 
woe Lenedd eO11K 067108 eoOlu 00206 26455% 6,587 20227 o6b41% ©1469 00135 o7415¢ =1,7434 20090 o7535 
396 e997 eth ba eot5ie hea 00215 0660708 e,5646 00220 o7U61% Of p4TKA eteu 075408 21,7073 oO1l) oT4uu 
yhe 29609 20152 eTuase 05479 20200 208708 2.6298 20216 e7276% 15106 00140 070798 91,791 20105 07549 
37e 09301 00133 aTi3oe 05512 00165 07050% o,6704 00200 0 7U76% o1,5ue5 0013? e7K118 ©1,4158 00524 o7673 
3oe oh995 e150 272008 25145 20175 07251% 0.7325 00194 o7070% 1.5743 20105 279108 ef KUO 0010S 97777 
356 240s 00125 075918 04777 20107 07396% 03,7682 00179 o7TA4G® ©} ,0%02 00120 eh 3ne of hous 00118 07695 
yue oh S77 00142 079358 24410 00164 075824 ©, 8442 00166 ohN17® ©1,6380 20108 eb1U5® ef] Hobo oO1le 04007 
Se 0469 0914? eTOThs ehOuy 00136 o7718% @,9001 00155 081728 ©1.h699 00109 ehe54® 21,9329 2009) 04099 
Jee e776) 00119 017948 05076 00129 07846% 2,9560 e145 oAS17% O1,7917 20092 63468 &f 9371 20091 28190 
Jie 07453 00154 oT%uKe 03308 e01es 07969% ef n1{19 00134 oAU51® O14,7336 20102 eb4uhe ef 9014 00091 08eBb2 
toe e745 00127 of075Se 0294 00116 280854 01,0676 00127 085768 01.7654 00112 268560% ©1,9656 29100 of SAB 
298 2bAST 00128 eHense 0e57h 20108 06193" o1,1257 ented 2A702% 01,7973 00101 ehbol® 22,0099 20084 ehure 
266 06529 ede ot huse 22207 eotud 062978 01,1790 onlt7 28819" ©1429) 20100 ehTO1% ©2,054) eolle 08545 
27s e622) O12) okboos 01 Run 20099 063468 ©f,2355 e01g5 oFhG932% ©1,6610 00093 ehHA54S ©2,05hu eOleu eb705 
208 05913 o01ts obS748 01472 00103 084999 01,2914 o01N6 eFOSR® ©1,H92R 2 00KR eh 9uee 1626 20094 06799 
25 25605 eOlle2 oFAodie 01105 00092 065919 of S473 00102 091399 21,9247 e004 e9010% ©2,1069 20097 obB97 
2ue 03297 20105 oh7940 20732 26100 286919 01,4032 00090 092308 ©1955 20078 290948 o2,13882 20102 28999 
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220 o4oAy 200130 oIUUSe 20003 20066 266708 ©} ,5150 c00A1 eIS9K® 2 0AU2 00070 e924 92,1797 00100 09217 
eis e437 00136 eISKSH wy tou 20084 269548 01,5709 ©0072 29u70 00084 095519 22,2039 00078 09295 
208 e464 2090 092759 8,071 00077 09050% ©1,6268 20060 095508 00ND 294008 ©2,2ch? 20088 09584 
198 25756 20uT3 oI34H® wei 04A 0006) 091128 01 -hb27 000A) 2095978 00077 oGUTT® @2,050u 00078 =. Woe 
{Ae 25448 20093 e9UdUe ey} ob 200869 e92U1% 03,7386 20056 20965u8 20608 09545 92,2767 20057 09519 
178 03140 200746 095309 0,1 A383 00077 o9PTA® 01,7945 ©0054 097088 #2,1795 000648 096138 ©2,5009 00007 09586 
16s e2A32 20055 095608 ©2200 2007S = 9 9353% 01,0505 00005 = 9753% e2,2113 2und3 29hO0® &2,325e 20052 09039 
158 62524 MSU YON4S 42567 = OBS =o DUSH® 41,9064 0 00U2 = 979U® M2,e432 = UNHA =n VTH# ©2,5495 40049 49688 
jue o2rle 20009 e9on4e® ©2935 2000U 295028 01,9623 20054 VASP 200u2 09760% 22,3737 20053 09721 
13e 01998 20057 297258 e,33u2 20970 095728 ©2,014e 00033 0 IBOSe e0NuS 09R05S® ©2,59K0 20059 09700 
12° elovu e0U48 09704% &©,3669 00955 e9beb*® eP,474) e0uU3) o9hOT7® 2002R eVk 55% CP ,UC22 20034 09795 
116 01292 20040 eIHN98 6436 20075 097029 02,1500 200026 099228 00004 oFFO1® A, 4ubS 20053 09628 
106 00984 2005u o964U3e w,udou 20046 09747% 02,5459 00022 6994u8 2V024 eGVKES® ©2,U707 00007 09695 
9s 20676 20045 eIKAR® ©4774 20004 oGAL1% ©2,2416 20016 299608 20039 099048 &2,4950 20054 09869 
Be 003608 00027 099458 513K 00055 09A65% 02,2977 00012 099728 200A! 099248 22,5192 20ueu 9913 
7s ©9060 00026 099458 25505 20055 09901% 22,3536 20009 0 99K18 00022 099U7% ©2,54455 20030 09944 
6 969248 29018 299H18 ©, 5A72 20028 299299 22,4095 20006 2 I9RKS 00057 099048 @2,5078 2002) 0996u 
Se 00550 20007 299098 e&,62u0 00027 09956% 02,4054 00005 09993 00013 6997K8 #2,5920 20013 09978 
Us @,0Kb64u 09U12 e99A1® © ,b607 20016 099728 ©2,5213 e0U04 099978 00014 099919 ©2,6165 20010 099868 
Se owels72 eOUl2 299950 o4H97u 20018 299908 2.5772 20002 299998 02,0253 20N04 099908 &2,0U05 20000 09994 
eo weluky e0u0U eI44IG = o,7hu4 200u? o999K8 w2.H53] 00U01 Feburu® we,0572 ores 299998 ©2,06u8 00004 09999 
1e@ e617hb 20UNS LeM0NL® w,7709 20002 $00000% &2,4890 20000 1.90008 e¢,6A90 sONH1 14004V0% ©2,6690 0000) «100000 


176 


“TAANANAANANA AANA AAAAANAAMANIAT. 
of VOU TTC ver 


“TAMA all tstAOHIN F 


Span 


HOURLY TIOE HEIGHTS 
JANUARY 1963 


Figure B-l6a 


Figure B-16b 


WASHINGTON, O.C. 


12345678910 1e 64 69 74 719 
MONTH OF THE YEAR YEQR (1963-1981) 


HIGH WATER  o « waxinun @ © HEAN HIGHER X = MEAN 


12345678910 12 6H 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER) @ewnean © = NEAN Loxen X= NININUN 
Jas 


eo cages 
Z2HOPORO00000 


12345678910 ile 64 69 7U 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE o -} owrnat tite © = NEAN TIOE Xe STD DEVIATION 
0.5 
0.0 eee ee Petr et XRMXKXKKKKKXKXKKKKKKX 
-0.5€% ¥ 
12345676910 12 6&8 69 7 19 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-l6c 


178 


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@tos® mno0® pton?t= e2ing® e800° @nse*b 20S * annu0® 09908 e2go°te equnu® nnoo® Chaceb w200F 
mlo9° 0000° Phot? te »S2fc° nn0o° 2c9c°s «lS * anrno? noe SS2u°seo ennoo® ‘tndue 9oLg°l ett 
SHheseeeesesaeeesee eset ss eseeeteeetasesetesankasetesetsetOUSte oases sastacseerseseeeeeusareserRentecHneearstaaethestean 
e °o344 AtwIl) 8 *oa44 AInI7 2 °ON 8 *"Jy4 Alwl1 6 °na44 AIWI7Y —@ “ON 
2 °HN2 °Aads YaMO1 «2 "HID °O944 wa¥O7 8 *SSV198 "aN «9° 98400 HOT ow Swng °Oied 4aM07 8 8SSV19 
2 2 a & s 


@ BILVe "OF On 3w94LK2 @ HILVM HOTH “OW 3WwdHLKF o 


1334 O9c°t 


JONVY NVGW FHL 


Teef96t 


2 


41VH OL 139gS394 HiT" AQIZIWWHON Fa 


aeeee 


SL49194 W109 


*O°d ‘NOLONIHSVA 


eOT-d 9TIPL 


BFL¥™ 401 90m 3WddLXd @ Hades WDLH PNK IndaLxd # 
*NMOHS WAadin~’ §$¥12 40 LTWE1 439M07 


wOLLINAY HOTANYT¥LSTO 


179 


HIGHER HIGH WaTER ® 


Lumek 


1o3,30 
feSoou 
102875 
1o274S 
1letole 
1edubo 
102557 
1.2227 
102098 
101968 
101639 
101709 
101580 
1etu5o 
1o1521 
fol1%1 
letob2 
100932 
100603 
109673 
109544a 
LeoQuta 
1oo2hu 
1091;5S 
1e002e5 
0989 
09766 
09037 
09507 
09378 
oF2UAR 
0919 
08989 
eAAby 
08750 
oFoOL 
e847] 
oAsue 
oF2l2 
060RS 
07953 
o7e24 
07694 
27505 
07435 
07306 
07176 
07047 
060917 
06778 
006058 
06529 
06399 
o6270 
06140 
0601) 
0SABt 
05752 
o5h22 
0Su93 
05303 
oS23u 
03104 
o4975 
o4b45 


FREQ, 


e065 
00089 
e070 
00070 
00074 
00079 
00086 
00086 
©0095 
efiie 
00095 
00094 
00095 
ol22 
00110 
00140 
00147 
0014) 
00158 
00170 
olo2 
00177 
00162 
00206 
00225 
00298 
09176 
00158 
0206 
00228 
00148 
00207 
00182 
00198 
00191 
00198 
oN lou 
00186 
00159 
00186 
0947) 
00152 
00149 
09149 
20150 
00115 
oOlag 
00116 
00138 
00107 
00118 
00097 
00119 
o013u 
06106 
00115 
00106 
00088 
00094 
00095 
OUTS 
20094 
00107 
00U82 
00058 
20003 
00070 
©0060 
00057 
00039 
20046 
00043 
00046 
00044 
eN04o 
00us7 
0037 
00019 
0010 
00007 
00001 


s 
Cum,e@ 


eOS0Ke 
e0Sdbe 


- 004050 


004650 
e0S23e 
005938 
o00Upe 
0070%8 
007968 
e0Bobe 
oNGsHe 
o101Se 
010928 
oll 7ée 
efeoue 
ol3ouse 
14710 
015675 
elooas 
017500 
olAThe 
o19Ade 
eelpBbe 
e2e7oe 
o24i{ re 
025750 
o2@7uSe 
029078 
o30Hbe 
eSeboe 
o 34710 
050960 
039050 
e408U9 
o4Atbe 
o4uuue 
040728 
048590 
050608 
oS24Ke 
05440 
oS5o37e 
058358 
059948 
061808 
065uSe 
065420 
oh7058 
066550 
o700K6 
071530 
oT3050 
o74jbe 
75620 
o7o7HKe 
078178 
e792u9 
oA0ues 
081 she 
0825be 
083928 
bu97e 
efoies 
of71Re 
268noe 
068996 
059906 
o%003e 
91548 
92618 
PLE EY 
094018 
oIUoue 
095 hue 
095930 
090508 
oF0B9e 
097356 
0977b8 
oVb2ue 
098508 
098908 
099330 
099708 
299ALS 
699918 
299998 
1690008 


LOWER LIMJT OF CLABM INTERVAL SHOWN, ALL HEIGHTS 


HIGH FATER 
LOWER FREQ, 
LIMIT 
eeetaese ° 
1.77% 00001 
1.7042 e0n0t 
1.7488 20002 
1.7334 00905 
1.7180 20006 
1.7926 00030 
126872 00018 
1.0718 20022 
106504 00017 
1.0410 00025 
12060256 e0ned 
1.6102 20030 
1.5948 00031 
1.5794 00Nus 
1.5640 00035 
105446 00046 
105333 00037 
105179 00041 
1.5025 00052 
1.4871 C053 
1eu717? 00004 
1.4563 20055 
1.4409 20097 
104255 0076 
104101 00009 
1.3947 00076 
1035793 00071 
103639 0084 
1.3485 00093 
1065331 00108 
1.3177 00095 
1.3023 e010 
Le24o9 = 40125 
102715 0128 
1.250) 00147 
102407 00163 
102253 00147 
122099 00184 
101945 00196 
101791 00144 
101657 00172 
101483 00189 
1.1329 0019u 
1,1175 00203 
101921 00164 
1.9K? 00179 
1.0744 00216 
120560 00194 
120406 00216 
1.0292 00202 
1.0098 00256 

09944 001680 
09790 002)1 
09636 00218 
09482 o02l2 
09328 00190 
e974 0025! 
09020 00207 
o4Bob 00209 
oN712 00196 
ob 55AR 00210 
2840u 00226 
eA2so 00205 
080% 00180 
07942 00194 
07748 00171 
07634 0017! 
07480 o01uu 
07326 00142 
07172 00143 
27018 o0lst 
26B86u 00099 
06710 00112 
26556 00108 
00402 0093 
26249 00073 
26095 00070 
05944 00061 
05787 = 075 
05633 ©0065 
05479 00004 
05325 00079 
e517 00047 
05017 200050 
e4Roy 00046 
04709 00034 
24555 20030 
ehny 20033 
04247 000584 
24093 0024 
03939 00020 
23785 20020 
05631 00082 
3477 000la 
03323 0u0ls 
05169 00013 
03015 00009 
oP Aol ©0004 
22707 20002 
02553 00002 
02599 00001 


Table B-16b 


180 


-ARE NORMALIZED wITH RESPECT TO MALE. TMG MG aN Rance 4,380. Pagr, 
e HOURLY VALUES s LOW WATER 8 LOWER LOw WATER 
. s ° ° 
CUMe*® LOoweR PREQ, CUM,® LOKER FREO, CUM,® LOWER REO, Cua, 
FREG,® LIMIT FREG,® LIMIT FREQe® LIMIT FREQ, 
OPPOSE TSO S TEE OOO ROSE TO GASES HTH O RTE REO SESE TORSO ESEEOORETES COSeSegooesoseeeoegs 
00001% 1.779% ©0000 200008 me37o2 00001 0000) 20005 
e00002% 14,7442 0000 000% $@01 00001 20000 0004 
©0004 34,7087 e001 09001 4040 2003 20004 ,0000 
e0010% 1,67353 ©0003 00004 ©,4176 00004 20004 00010 
20016* 446379 00004 ,0n088 4317 = 0005 20009 0019 
00025% 41,6024 00006 oN014e 456 00010 00013 20032 
000438 44,5670 0010 200248 595.0006 20022 40054 
000605% 14,5516 0012 00056% o,4733 20012 000428 e,5804 20024 00078 
00062 14,4962 00015 00051% ©4872 00014 009568 #5934 20038 e0llo 
001078 14,4007 00049 000708 e511 00013 00070% 2,659 00032 90149 
eO1S1* 44253 00022 000918 00022 000928 7.6166 20044 00193 
eO101% 4,399 ©0026 09118% @,5288 000354 001208 @,65)3 00050 20249 
eO191% 49,3544 003) 001498 o,5u27 000ul 001607® e,64u0 200059 00307 
00234% 13,3190 20042 001908 ©5566 00070 00236% ©,6567 200057 00565 
00209% 14,2836 oconud 002348 65704 40055 40291% ©,6695 40069  0uty 
00315 34,2484 00053 .02A7% |,584$ 0965 403568 @,6422 40079 40513 
00352" 49,2127 00068 003568 ©,5982 00005 004218 #6949 00110 00624 
eOS9S® 141773 00079 40434 2.6120 40062 ,0503% ©,7076 ,0088 o0Tt2 
eO4US* 4.1419 60085 .0520% ©,0259 0084 005688 ©,7203 40131 20643 
00498" 1,14064 00099 40618% 2.6398 0090 .0h74% ©,733} 20125 =, 0968 
00559% 41,0710 00103 607218 60557 0094 007728 ©7458 40159 ot126 
e0O1U8 140350 00116 40837% 29,0675 60118 .UA91® =,7585 40459 41285 
006718 4.0001 00127 90965% ,6A14 0123 = 91013% 93,7712 0204 01490 
C0747 = 9647 = OSS = 10988 046953 = 0145 = L154® 047839 401609 41659 
008168 09293 =o 01US = 1240" = 7091 00152 =o 1 310% ©,7967 0187 41646 
e0A92e 2A9S9 00150 013908 00152 014628 ©,8094 00200 02046 
009038 oAS84 00154 o154ue 00170 o1652% 822) 00168 02213 
010478 08230 «660165 = =941709% ©7508 40194 01822 ©8548 40196 2409 
olsaie 07876 =o V17U =p LB79% ee7h4b 0201 v2023% @,8475 40168 2576 
o12uoe 07524 20165 22044% e,77AS OITA o2201% @,8003 40168 2744 
el3due 07167 20160 02204 2.7924 00162 o2304% ©,8730 00190 02934 
o145ue 26613 00167 023718 2,862 20206 025708 «8657 20178 o3ile 
015798 26458 =o 016$ = 253U% © B20) 00188 627599 ©,86984 ,0179 43294 
ol7o7e 26104 00154 e26A7® © ,8440 00162 o29418 o,9111 00136 03429 
ef AS3e 05750 00156 2843 @,8479 401A 231298 ©,9239 40190 ,3619 
e2010% = 45596 = 0152 = 29959 9 e8H17 = 0182 = 38118 ©9360 40176 © 3796 
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FTAAMANANA A ANALAANNANAAWAAA AAA 
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)va, YANUARY 1963 


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MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER a -naxinum © & WEAN HIGHER X © MERN 


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12345678910 12 6H 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


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MONTH OF THE YEAR YEAR (1963-1981) 
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183 


LORER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED WITH RESPECT 


Table B-17b 


® HIGHER MIGH WATER s HIGH WATER 8 HOURLY VALUES e 
se se e 8 
Classe LuxER FREQ, CUM,® LOWER FREQ, CUM.® LOWER FREQ. cus,¢ 
NOS SNe bREQ,® LIMIT FREQ.® LIMIT FREQ,¢ 
se POTTOSSSSSSSHSSSTSSSSTSESSSS SEES HESHS SESS TSS HH SOHTSSOR SHE SEET OHSS ESE ESSOS SEES 
tole 2e9053 e0u04 e0001% 2.0093 20005 000018 22,0053 ©0000 000008 
1008 1»99R95 29000 e0001% 1 ,9A5A 20000 20001% 41,9684 20000 290008 
99e 129758 20003 eN0N4® 1.9662 ©0002 00003% 14,9316 e00n) of001e 
Re 1295A0 20003 090078 14,9407 20004 00007* 14,8947 0000) 000028 
Q7e 129423 20007 e001S% 1,977 20006 00015 14,8578 ©0002 090038 
Qhe 12092605 29010 29025% 1.9076 20002 00015* 14,8210 00002 20058 
QS5e 129108 eoonu eN0308 1, ABBY 00012 00027% 4,784, 00003 0000R8 
Ode 10895U 2001S =e M0US® 1 ,RHAS 60010 = 0057% 14,7472 of004 00138 
Q3e 1.793 2001S 210608 1.8490 20009 00046" 41,7104 20006 200198 
92e 108635 20018 e0078® 4.8294 00013 200588 14,6735 00007 200268 
918 108u78 00013 000918 41,8099 29009 00067* 14,6566 00011 200378 
9ne 1eA320 09025 eO1toe® 41,7904 20012 00079* 41,5998 00015 200528 
A9e 1eAjo3 2010 o}e7*® 1.7708 00017 20096" 34,5629 00057 2000698 
BRe 124y05 00015 eOLde® 167513 e022 eO118" 14,5261 ©0022 090908 
A7e 1e7A4u8 20u24 eO1noe 1.7317 20027 20145® 14,4892 00025 201158 
Boe te7n90 00025 20191 147122 0st eO176® 41,4523 00029 201 44ue 
656 107582 2N0uo 002318 1.0927 00029 00205* 14,4155 e0usd 001788 
Rus 1207575 20030 e02h1e 1.6731 20040 ©0245 4,378 00037 002158 
83s 167217 200408 095098 140536 00043 = e02A7% 14,3417 00040 oN2o1e 
R2e 1e7u60 00u39 e0SGK® 1 ,0340 20049 00357 9,3049 2050 03118 
Bie 106902 20052 004008 1.6145 ©0053 00390% 14,2640 00058 003698 
ROe® 100745 20055 094558 14,5950 20059 00449 4,251) 20066 oOusue 
798 100547 20061 005178 1.5754 00003 00512 1,4943 00073 005078 
7B8e tenusn 29076 005958 1.5559 00958 00570 191574 00079 05868 
77@ 106272 000A4 000758 4.53608 00970 00639 141205 © 00A8 006758 
Toe too415 000A e0757® 16516R 00087 00726% 1,0837 00103 007788 
75 109957 29090 oOb478 4 ,u97y 20072 007988 41,9468 e0it) eNBAGS 
T4e 165AR00 00U75 099218 Lou777 eQ0bu e0ho2® 34,0100 00119 010088 
T3e 105642 00096 10178 1.4582 00097 009798 09731 00126 011558 
720 {eSukS e90AS o1192e 41,4386 00090 01 069% 09362 00130 ol264% 
71@ 105327 0094 11949 14,4194 00112 o1161% 0 A99U oO135 013998 
79e 105170 00118 o1312% 3.3996 00099 012808 2Ao25 olde 015428 
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b¥e 1045S 00116 0f95U8 14,3605 00110 015078 27888 00150 018358 
67% jedn¥7 00133 016638 43,3409 00129 01656% 07519 00157 019928 
bee 164540 200100 ol7ote 1.5214 00155 017728 07150 00159 e2tSie 
65¢ 124382 oNlAu eH SA7T® 43,3019 00132 019048 206782 00156 oe sn7e 
64a 104224 00145 e2C3e® 1.2823 00152 020568 6413 00153 024598 
b3e te4067 00133 021659 1,262A oO14A e220ue 26044 001635 o2o228 
26 1.5999 20136 02501 1.2432 20156 023598 05676 00167 e2Th9e 
ole 1063752 eO148 o2Udde 142237 00166 025258 05307 e016) e29uge 
608 163590 oO da 025A$e 1,2042 eO1l? 027038 04939 00160 o 31108 
59a 103437 00349 o27$e% 141846 e017! o287u9 24570 00355 232058 
SAe 103279 00154 ePHRoe® 141651 00203 0 3077% 04201 00154 054198 
S¥e 123122 00155 eS0418 41,4455 00193 032708 23835 00151 035708 
Soe 11,2964 00145 031808 151200 00203 o3472° 2 346u 00143 oS712% 
558) 102A07 9175 oS3618 1461965 o0A14 0 36058 2309S 0014) 0 36535% 
S49 1e2nd9 09155 o3S5108 1, R69 00245 0 59308 oe7e? 00139 039928 
Ste 102492 oOlAL 0S0978 {ennTh 00225 041958 02554 00136 o41eae 
Ses 1.2334 00197 eSH948 4 ud7R 00227 04 $82 21989 00134 edPhee 
S1% 102177 09149 SS es Be | 00243 04625% 00135 043978 
Soe 1062019 001 Bu o4227® 3 6008R e02SA o4Bos* 00142 o45308 
49e@ Lelkhe2 00179 edunhe 2 9hV2 00255 eS09R® e013) o4obl® 
GRe 101794 00187 045920 09697 0226 eSbeue 00127 o4Th9e 
u?e 101547 oN? e47Gus 29501 oh2e2 055464% 00128 49168 
Ube 1et$A9 09172 049608 09306 00203 oS 7TH9e 00127 PL 
uSe retest 00216 eStkeo ONS 00209 05 95K8 00178 051718 
Gude Lely 0206 oS SAbe eAQIS 0019S 00153* 00121 052928 
use 168916 00227 250156 eb720 20202 003558 00132 oS4eue 
u2e 100759 00216 e5htee ehS2U e016A 0o545e 00130 055558 
418 10901 0209 oou4)s 0AS29 00196 oo S98 ©0130 o50Ahus 
aoe LeAudu 20216 ooe57s eht3a 00200 eO9SKe o0132 o5b16% 
398 1092R6 onea7 ebukus 2 793A 00190 o71eRe 00132 259uR8 
the 1.691324 0213 oOO9he e774y 0018) of S098 oN ido eb NRBe 
37s 09974 e0elo e691 ue 7547 00188 074938 20136 o6P 7 ue 
Joe FF lu 0193 e71N7Te 07352 00e10 o77uS® 0014) 063658 
350 ©9656 00148 072958 07157 00171 o7AR74Ue 00144 065098 
Bae 09499 oO AS oTuKne 269%] 00102 080 5h% ©0150 266598 
33e oF 54y olds 076290 2067nb 00100 061908 0161 ob BPue 
yee oF Ku ©0158 oTTAYe 06570 00149 oAuse ©0158 269798 
Bie 09026 eNl4o 074298 260375 0016u 065098 00170 071498 
3oe oABOY 00166 oA095e 00160 00139 066398 00169 o 73178 
296 08711 20146 eheuse 259Ru 00155 067748 00169 o7uRoe 
2Ae 04554 0910S oAddos 05 7K9 00119 eBAI29 00174 076608 
27e eh396 2914s ehudie 25593 20123 090158 o0177 o TAR 
208 oot 20180 oForue oh SOR oOMNs 09126% 00170 eA OKS 
ase eAohy Ol Su ohT556 05203 00117 o9Pu2? eO1Al o Ay Hoe 
2ue 07925 e9115 oAbTVe 25007 20095 095578 0175 eAso2e 
ate 07766 oOltu eAGAne o4A2 00098 09454e 0170 085358 
26 07604 e100 eFOALS e461 20N09 095008 00164 eAo9T® 
216 oFu5h eMitlo 091978 e4uPy 20007 295068 e01H0 eARSoe 
ene 07293 20126 095256 o4?26 2058 096198 cols 090058 
196 07130 20075 29unue 24050 20009 0 VHKRe o91u5 0 I1S5U8 
1 fe 00978 00070 eIU7K8 0 SARS 00037 0972be 00130 292808 
176 onkel 200R2 0955e8 23639 0004) 097079 ef NI 00120 oI4008 
lee 26603 09075 090278 0 3444 00025 e9791% ef ,1282 oO1ty 95108 
156 26596 2005) 046 7be 23249 00025 298169 ©1,1650 20099 096098 
146 06348 2005u 47318 23953 00net 096S$7% 01,7019 2o00R6 096958 
136 06494 0003u 297608 22h5P 09025 09BO2% of, SAK 20068 09TH28 
12° 20055 20026 097948 soho? 00022 098648 01,2756 09057 096208 
lle 05AT6 e045 IO S4o e2h4b? 20019 099039 01,3129 00046 Pl 
196 05718 00014 296578 22?72 20029 09932% 01,3494 20040 099068 
98 =o 5561 20036 «= PB9S@ = PNTH =o O12 =o VAGUH 04,3862 60027 499339 
Re ©5405 200? 99 Se 21 AAY 29015 09959% e1,425) 0022 299558 
76 05245 onued 99576 21645 20906 0996S® 01,1599 e007 299729 
66 05086 20034 oI9KGe 21490 00010 09975% ©) ,u96AR 00084 0 ISR SP 
Se 04930 oN0N0 oI97T4H 01295 00007 099618 01,5557 00007 099958 
us e4773 Pr | oI49%e 21099 20010 099919 91,5705 o00NS 2999HF 
je o4615 oNu01 0 II9NO e904 00002 099959 @y Hi 7U en00s 099998 
Qe 24454 o0u0s ot497e on TAR 20008 099999 wt ehudy e900) 1.99008 
1s Pre at} eOD04 Pelvoue eUS13 e0Nu) 1009U0% 01 AAI] 00000 1.n0N0e 


184 


TO HALF THE MEAN RANGE 


1e219 FEET, 


LOW waTER . LOWER LOw WATER 
e 

LOweR FREQ, CUM,® LOWER FREG, Cum, 
LIMIT FREQ o® LIMIT PREQ, 
SOOHHHSSOKHOHEEHST HHH EO HERSKA ET ESSHEH ROTORS 
0001 20001 #, 3553 20001 00001 
00001 200028 =,3685 00003 00003 
20006 200088 -,3818 20000 20000 
20905 000138 29,3950 00007 00016 
000A .0022% @,408¥ ,0001 0018 
e0Mit e00358% 2, 4216 00010 00028 
00013 000468 e,4$48 20025 00053 
200019 000668 ©,448) 2024 00074 
00031 000968 o,4613 200018 20092 
00929 =0126% w,d474o 40016 40108 
20025 00151% ©,4678 20027 00134 
00033 00164% ©5014 00028 e062 
20039 002238 a,5144 0040 20202 
20nuy 200206% 8.5276 2003) 00233 
20939 2093058 ©5409 20027 20260 
090S2 00357% 9,5544 00044 00304 
00Nud 094028 ©,507u 20050 00355 
2004U5 e044 @,5807 20046 00400 
00055 20502 =,5939 20058 00439 
0052 00555% ©,6072 20041 00480 
20055 200609% ©6204 20002 20542 
206A 00677% 2563537 200059 00597 
0 0NBAR 007059 2,6470 20040 00637 
e0N7AR 00AU3e 200065 00702 
20N7U 90917 ©,6735 0077 0776 
oONAT e1004% 946867 20089 20867 
00103 o1107% ©, 7000 20052 00919 
00102 012086% 29,7132 20095 1013 
00107 01315 2.7265 00093 1106 
o0s14 214298 02,7398 09095 ol204 
00126 01555% _0©,7530 201060 1307 
oOttt 016605% 29,7663 20106 oldia 
00125 017909 ©,7795 00106 01520 
00131 o1921% 92,7928 00123 01643 
20151 02072% 9,606} oo13s 01775 
00141 o2215% 29,8195 o0}eu 01900 
00155 e2%o7% ©,8526 00195 02055 
00173 ee540% © ,AU5H 09139 02194 
20100 02706% 2,859} 09189 02585 
o0tol e2Ro7% 20,8728 00149 02532 
00174 oS041% @,8856 00188 o2Ti9 
00177 o3P?18% ©,89A9 eOlbe 02682 
00168 o33H0% 0,921 016) 03045 
00199 03576% ©,9254 90149 03192 
00176 057528 29,9386 00207 03599 
o01A8 239558 09519 20168 03586 
00P24 041588 ©,9052 onela 0 S804 
00192 o43519 ©, 978u 20216 o40l6 
00199 045498 ©, 9917 20168 04185 
00187 047508 01,9009 20222 04406 
e},0014 20194 249508 ©1,0182 20220 04626 
o1.0150 00200 o5150% 01,0315 00186 e4B12 
1.0246 00192 e5522% 91,9447 20343 04996 
1.042 60190 9551 2% ©1,0580 210 45205 
21.0558 00A04 057108 H1,0712 20219 oS4eu 
21.0694 00206 059228 ©1,06845 00186 05010 
°1.0830 e01Ht 06)03% 91,0977 20227 05838 
7100965 00206 63088 91,1110 202)3 06050 
eloiio) 00701 065098 e1eleus 09255 06285 
e1.1237 00210 067208 =1,1375 o0el) 06496 
o101373 00191 eO911% 91,1504 00195 20091 
e1.1509 oO1A7 07098 91,1040 0207 06896 
21,1645 o01KA eTeho® o1,1/73 00219 e717 
e1.1781 00P 11 eTH9T® 91,1906 nei? o7 530 
21.1917 00184 076619 91,203A 00175 07507 
21.2053 20157 o7BSRO 91,2171 00188 o7o9u 
21,2189 o015A o7990% 91,2503 00145 07439 
21.2325 00159 oh14o% e1,2436 20170 0f015 
el ,cuol e013t 08277% 21,2509 00148 ofloe 
21.2597 00155 oAUl2e e1,2704 00146 06309 
0273s 00149 06552% 91,7834 00149 0f458 
21 .2A69 00126 oBO7TN# ©1 42966 0012) 08579 
21.3905 00120 2879R® #3 ,3099 20120 28705 
e1o5141 200105 oh90S8 91,3231 e011S 28620 
e1.sr? 200KR = 469918 ©] 45364 00095 = 8914 
e1,5443 00107 0909S H1,3K97 00105 09019 
21,3549 2049 09192 21,3029 eolle 09131 
e1,360u 20090 o92Al® 91,3762 oN08u 09216 
=1.3A20 20072 295559 91,3094 20093 09509 
21.3956 20070 e9U23e ey ,4ue7 2060 09575 
21,4092 eunAn 294RS® =1,4160 20075 09451 
21,422A 200Tt 095548 & 1 4292 20074 09524 
e1.4304 00052 oe 96078 ©1442 20058 09562 
21.4500 20N52 29O5A% ©} 4557 29056 09058 
21.4656 20044 0970P% ©1,4690 20055 09091 
e1,4772 20956 eOTIN® 1 Ub2y 29030 09724 
°1,490A 20Nu2 e9TRO® ©1,4955 20049 09770 
e1,50uu 000u4 098219 ©1,5084 20034 09804 
21.5180 20928 2 9B49% 1.5220 00041 09645 
21.9316 e0Meu o9K7TS® 91,5355 20028 o9B7$ 
21,5452 20019 e9h928 =) ,54A5 20015 298A6 
@1,55AAR 00925 099108 =1,5018 209019 09905 
165724 = 0021 099578 @1,5751 20030 2995S 
21,5A00 000A1 299588 =1,5KA3 20019 0995u 
71.5996 200A 099668 =1,6016 e00le 29966 
ef,o13? ONS 699bN8 =1,h14H e002 09978 
©1076" eON07 o99KT® ©1,628) 00010 0 9FAB 
21,6u03 20005 299958 ©) 0414 29004 09993 
21,0539 20903 2999 |1,65460 29003 09996 
1.6675 29004 299948 =1,6079 000s 09999 
#1,0A1) e0nnt 1.00008 ©1,661) 20001 1.0000 


“TANAMANKALANARAAMAhAhahahanani 

; TTT ii 
~FuuudatillalileQittdt 
trun 


JANUARY 1963 


Figure B-18a 


185 


WILMINGTON, NORTH CARGLINA 


G8®O0OQHa09 
XXX XxX Kx XX 


xo 
xB 
xO 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER SM x = EAN 


123W¥5678910 l2 64 69 7M 19 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oequneen ® © HAN Loven Xe MINE HUN 


123W¥5678910 12 6Y 69 7M 19 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE « DIURNAL TIDE @ = MEAN TIOE Xe STO DEVIATION 
0.5 
° KK MK ey JEK HK HK EK 
12345676910 12 64 69 7 719 
HONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-18c 


186 


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187 


Table B-18b 


LOWER LIMIT OF ClaSs INTERVAL SHORN, ALL MEJGHTS ARE NORMALIZED WITH RESPECT TO WALF THE MEAN RANGE 2,129 Feer, 
e HIGHER HIGH waTER e HIGH WATER e WOURLY VALUES e LOw waver ® LOWER LOw WATER 
8 ° s ® 
CLASS® LUnER FREQ, CUM.® LOmER FREQ, Cum, LOWER FREQ, Cuh,e 
NO, 8 LlMyT Limi FREQ LIMIT PREQ 
veese Ce groosescesese APT IS OPO rrr iy iri iri yy 
101% 1.5n69 2000) 1.5969 00001 00001% 14,5069 20900 200008 eON0t 
toos 11,4979 20000 1.4908 20000 000018 14,0772 ©0900 e008 © 5770 00N0t 
99m 124RAQ oN004 1,.4A6A 00%01 e002 4,4u7?o 00000 00001 22,5859 20900 
QAe 194799 29005 1.4707 00001 000d 4,4479 00002 200038 ©5948 00001 
978 1.4709 00006 Loadho? 20904 e0007® 4, AAS 0000S 000088 @,6537 e0001 
968 1504419 20009 1.40567 00006 00033 94,3586 20008 e00168 e,6126 00004 
93e 1.4529 Cu i) 1.4466 eonnd o901R® 41,3290 00012 eM02R8 ©6214 00005 
Que 1edut9 20009 1.4306 09n07 e0N25® 14,2995 000J0 = AN4UF = e,otnd 200006 
938 1edyay oN01$ 124265 eN0in 000358 41,2097 20022 0996608 = 2,6392 00%0u 
928 164359 09016 1.4105 00012 e0NUT® 4 ,2u00 00026 090928 e,60UAl 00004 
91s 104,69 e0024K 104065 o9N16 000604 11,2194 00932 0012US @,6570 000N6 
90e 1edn ho e008 1.390u 0022 000859 14,1807 00040 001648 ©,6459 o0NC? 
PQe 125990 Pura ey 1.3404 0002AR oO1NG 4 og5tt 00083 092178 Be,o7UA 0006h 
Aue 1463990 20052 1e37ou 00022 eOtS6® yotetu 00059 0276 e.bAS7 20030 
AY¥s 1.%alo0 20040 Lemos 00014 001508 14,0918 0076 098528 © yn92e o0N07 
Roe 1.3720 00037 eM2AVS 3 ,3Soy 0035 eO1AS® 41,0624 oNVAd oN4dte e715 oOMA 
BSe e340 09045 oNShue 1 ,34H2 00054 0022%F 41,9325 00100 00541 o,7104 00M) 
Aue {e540 eNUdS o0S790 41,5462 e0nun 002008 1,0926 eine 00647 ©,7193 00018 


Lower PREG, 
LIMIT 


Lower FREQ, 


0900) 
2, 7898 00004 
27965 20009 
©6035 200018 
© eAl00 00083 
e.816A = 0015 
© A235 0015 
eo A50y 20ueS 
2/8370 20040 
e,Au3se 40028 
2.8595 = n025 
2.8574 0054 
e,4bun 0046 
©. A70K 20061 
©8775 20052 
peAAu2 0083 
©8910 00061 
2.4977 20uTs 


ase teduSo 2007 00UU8e 4 4%Pbr 00045 oOsnge 29732 e116 097638 ©,77R2 o0Nk7 2.9045 00065 
APs set wav o007%H eOS198 Festoy ak eOSUARe 29436 0129 eOAGV1F ©7471 Pu e,%912 20079 
Bie tetatn oe OURS eNHAN8 Lesnot 00058 e03hoe 09139 00186 010298 we,7ugn e0M1h 2.9180 20076 
Ane 123)80 0069 e9098 = 1,2960 00052 004380 eARGS 0010s el174® ©,75u9 00N29 © ,92U7 00401 
798 1065790 09064 ef7358@ 1 ,2HO0 00051 eOUKAe eAS46 00157 01388 © L763A o0Ne? 2,9315 eOlo 
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one 1ot3he eOA7 S078 1 ,U9S3 001d o23sre rae) 00109 04078 00179 019708 @1,0597 00195 
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CHARLESTON. SOUTH CAROLINA 


FOTABHOHHFOHL290090 
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12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1961) 


HIGH WATER 0 « waxinun © » NEAN HIGHER X = MERN 


uu u 
BHBESE ; 
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u BG 


123U5678910 12 64 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o «ween = MEAN LeweR X= MINIMUM 


12345678910 12 6H 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE = NEANW TICE X= STD DEVIATION 


x x 
x a x Xy XMM KK KKK KKK KK KKK KX 


123456769310 12 6y 69 7u 79 
MONTH OF THE YEAR . YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-19c 


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LOmem LIMIT OF CLaSS IVITFRVaL SHOWN, 


ALL HEIGHTS ARE NOKMALIZED WITH RESPECT TO HALF 


Table B-19b 


THE MEAN RANGE 


2,56u FEET, 


8 MIGHER HIGH waTER ® MIGH WATER 8 HOURLY VALUES 3 LOW WATER ® LOWER (Ow WATER 
s ° s s . 

CLassSs LUnEk FREY, CUM,® LOWER FREU, CUM,® Lower FREQ, CUM,® LOnER PREG, CUM,® LONER FREQ, Cus, 
NO, © LIMIT FREQG@ LIMIT FREG,® LIMIT FREQ,® LIMIT bREGe® LIMIT FREQ, 
SRO ETES HTP ESO EES ESSE SSL OS EEF SHOE SOTEHEEEHEE HOES HESS SEO HE EHH STEHT HGS TSOS SEE TEE EHTS EHO SESE HHSSEH HEHE HSHEHOHHFHHFO TSE SOE H EE EHOHES OOS OES 
1ole® Lebkuy 29004 e0U0}® 1 eoAuy 00001 20001 1,684) 20000 200008 e.4159 20001 20001 #,5495 20001 00004 
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nesc°t eff * eL0ge® 0000° O261°t= w20L0° 8800° 6909°} 248 
eLercl ef * eL0Ec? 0000? 2lelete wnio0e Googe netoet #92 
Cancel #o€ a 2L0¢0° 0000° negl®t= erigo® mnnoe 64t9o°t 268 
gerse?t e0n * eL0g0® 25109 9cabete wosgee eenoe ng¢2get 806 
fnseet etn * eSiboe 0000? w2alete segnt? @600° oyeoet eto 
Bosses een e oSi10° 00u0" Oggt*t= ssef0® 0on0e pniget 826 
fs9E°l wih s oSitce prov? LE9T°l= ecoso® mnooe 6629°S 8£6 
Bude?) ann * eerice nnoo® Sest*t= stg¢go° @690° honget #nb 
£9Le°b wh s eeyuC® 00009 4ESi*t= «€920° mnnoe 6050} #56 
wiee?h #9n * epqcoe nnoo? oenl*t= w6t20° nmpooe n9S9°l £96 
200°) win * ennoo® ocvo0® lnnt?te #gztoe nro? 6199°1 846 
veces’) wan onn09® GOU0®  oEl*t= seelo® mroo® ¢2,90%% #96 
fe68°) eon 8 annvo® onvoe Srgi*te sye00® mnoo® e2L9°1 266 
L4g0n°b 20S * enruo® oouo? Lo2t*te snr00® 0000° €929°t 2001 
Z2o0n°h 21S * ennooe nncoe onzt*te= ennno® rnoo® ecvoel ett 
SASHA THe STH ee EAAA Se eee HTESSAA AEH HAST TASHA SHE K esas ees Sse seae setae eset s tage 
1IwIT) «2 °ON # « °03u4 AIwI7 8 °oaag 1IWIT & °ON 
43"07 sSSV 196 w °HWND °naud uan07 e °RND oles 33"07 s§Sv19 

s s s & s 


@ MILVe ~OF 9On 3W9NLX9 @ BALYS HOTH “On JndulX] s 


°3334 69n°s 


Te8=£961 


FJINVaLNG 


2ONVE NVAn 9HL S1VR OL 1939dS9m HLTH G37 1VHeON Juv 


@ bAaLYM P07 °OW 3W9H1XS & BSLV4 HOTH COW IWwdnLxd & 


BATS 


e0c-a PTITAL 


HYNNVYAYS 


SLH9I39H FIV ONMOHS TWAUIINI SS¥TD 4O ATwIT yam07 


rOlLovnd NOTANeTeisTa 


195 


Table B-20b 


LORER LIMIT OF CLASS INTERVAL SHON, ALL HEIGHTS ARE NORMALIZED WITH REBPECT TU HALP THE MEAN RANGE 3,409 Peet, 


* HIGHER HIGH waTER e HIGH WATER 6 HOURLY VALUES 6 LOW mWATER ) LOWER LOW mayer 
8 ° 6 ° 
LOWER FReG, CUM,® LOXER FREQ, CUMo® LOWER PREG. CuM,® LOWER FREQ, CuUM,® LOWER FREQ, CUM, 
FREQ,® LYRIT FREQ,® LMT FREQ LIMIT FRE LIMdT FREQ, 


SOSH HHOC HO OSSEDE SCCOREOOOEETEEEOOOD 
43o2 00001 000088 o,5453 0000) 00004 
20002 .0003% «,5539 ,0004 0006 
00002 00005 e,56uS 00004 00040 
20000 200098 0,575} 00006 =, 0010 
00001 eV0U7T® ©,58S7 00007 00024 
00002 90009 =,5963 ,001H8 0042 
00006 — g0015S® e,6009 0050 20052 
20006 000218 ©,6175 00%2 20004 
00008 000298 6281 00027 0009) 
00010 000598 2,6587 20018 00109 
00035 60052% ©6493 20082 = 0121 
20080 200028 ©,b599 00015 0136 
20n2n eousee 20050 00166 
00019 e010le 20030 00202 
00ned 001250 ©,0918 20034 00230 
00025 20150® e,7024 ,00Se 0272 
eUOSG = =60185% ©,7130 0057 0310 
00035 002208 a,7236 200050 00539 
e00eu 002448 ep? 3u2 20045 00365 
00035 90279 ©,744H 060 00445 
00050 eG S292 07554 20058 2049 
00nS2 00561 0,7660 000435 20540 
00058 =40438% 2,776 20067 20007 
00066 =p USU4® =o, 7872 20063 00670 
00077 = UH 7976 =,0078 =, 0743 


Seoeessovas SHSHHo SSH PETES OSHS HSS SSeoeesegesdoggesesege 
2000) 20008 14,6838 0001 00001% 41,6838 0000 00008 
20003 60004 4.6708 200002 00003% 14,6509 00000 00008 
20003 o000T® 1.6578 20001 00004 41,6141 00001 00018 
29006 0013 14,6449 .f004 00009* 14,5852 0001 200038 
00007 0002)% 3156319 ec0004 00013% 14,5523 00002 00058 
20006 e0027% 14,6189 00006 00019 34,9194 20004 2000098 
00010 000378 1,60059 euv0us 00025 14,4866 oounT 2001oe 
20007 200458 14,5929 00008 000538 14,4537 00009 00258 
20015 20608 445799 60004 e0037% 34,4208 0012 00378 
20009 20009 1,5669 00013 eOUSIS 14,3879 20016 000538 
20009 000788 1.5539 o00Kt 00002 14,3550 eoual e0UTUe 
20024 001018 465409 00015 00077 14,3222 ©0024 000988 
e0Ulo 201188 3.5279 00016 00093 4 ,2893 00029 o0j278 
20027 e0149e 165149 e00e2 e0L14® 14,2504 00037 e01oue 
0024 e0)0%8 4.592n 00022 0130" 1.2255 000ue oneo7e 
20050 e019Be 14,4890 00029 001059 34,4907 00049 002508 
000383 002318 4,u%oo 00082 00197 41,1578 00061 005178 
eous4 e02ho# 41,4630 00055 002338 1.1249 00072 093908 
00042 e0307@ 444500 0050 00202 14,0920 00uBS 00U739 
0042 005098 164370 00047 00310 1,059) 00096 205090 
20064 eO4L08 Le4eun ev04S 00354 41,0263 00103 006729 
808 1e4o02 20058 e046KS JY ,u1lo 00058 003938 09934 00115 007878 
79@ 106449 60045 205138 1,39H0 00049 =o 0441 09005 60129 = 09108 
78S 104340 00066 205798 =4,3450 00042 004n58 09270 eOldt 010578 
778 104285 20004 eVOUS® 143720 0000) 0054ue A947 00149 of 200e 


Tos 104,77 20u70 e075 1,359 00008 206068 fold 00199 013058 047262 200007 o00UNG e,AVBY 20095 00836 
759 tedo7u 00052 0076S® 1,340} 20009 00675% 28290 00369 015348 ©,7398 008A o0737® 0,819) 00114 00950 
T4e 165904 0075 c0b40e 4,355 00062 00757 47961 0017) «=o 17058 «7515 = g ONE = g MHEG «60,8297 «40099 = 1048 


738) 103657 20064 eOVNUe 1 yS2ut 00076 ovAl4e 07032 oulAs 01887% 247652 200K2 .0911% ©, Au08 00115 oltoy 
Tae 16375) 00094 009958 41,3071 20004 ouaTAe 07304 00178 02005% 04,7749 2ungd 01905® ©,8509 20u9r 2126) 
T1@ tedouu 00009 e104 1,294 00079 0v9S78 06975 001A5 222508 2.7866 00123 olle88 0,8645 00126 01586 
708 103558 00113 e1177® 4 ,2h14 00078 o1029e 06646 00185 024359 07982 00115 e12448 0,672) 00116 of 504 
6% 16Su5) 20079 el250e 1.2684 200087 ol1lo® o6317 oo17d 020088 ©,6099 old) eo} Sb4e 0, 8827 20160 1664 
689 155325 00u9U el35ue 1,255] 00089 elause 25988 00174 e27A{S ©,bA16 00134 015238 0, 8935 00156 01820 
o7e tes21d 00104 014520 162421 00104 01 S098 05060 00167 229488 ©,8333 014A elo7T1® 0,039 00184 02004 
660 105112 0008S e1S478 142294 00115 o1d2ue S531 00158 S108 ©,84u9 eulad 016148 269145 00103 02107 
Se 1eS006 20092 010408 $o2162 00105 01530 5002 00149 63255% ©8566 40153 0619078 0,925) 20142 = 2509 
o4e 122899 20u94 o1734e 1,2032 00109 010598 4073 00139 035958 © ,b6H83 00106 021338 ©,93557 00156 o24oy 
ose 102795 00v88 o18228 161902 012d ot7o2% 04345 00137 035328 ©,8800 00178 o2S118 0, 9463 dele 02077 
62% 1e2bde 00109 0950 145779 e01ao 01 A63% 4016 00136 03670% ©,6917 20181 024928 06,9569 20232 02909 
619 102580 e022 o2USS® 4,1,642 00149 ‘20520 2 S087 00127 037978 ©,9053 00223 02715% @,9676 09235 03143 
608 1e2u75 00128 e2tALe@ 461512 00104 021958 03558 00123 039208 ©,9150 00196 02911 @,9782 00197 o S344 
S98 102367 00157 o2S38e 1,432 00109 o23b4ue 03029 20120 o4040% e.9207 0v204 031158 ©,9668 20203 3544 
566 102260 20136 e2utus 3.1252 20106 025300 22701 00124 041058 |,9384 002138 3328 © ,9994 00250 03794 
S78 102154 00127 020008 jJette2 00192 027229 2372 eOlst 04270% ©,9500 00209 055978 ©1,0100 20235 04029 
See 1ee047 00151 0275)e 12,0992 00166 028b8e 02043 00116 o4$948 ©9617 00249 eo SHUOF 91,9206 20200 04229 
SSe 10194) 00134 o28Bbe 1,862 20 0th9 030788 o1714 00119 245088 ©9734 00214 e4000% 91,0312 02 04440 
Sue 101834 0017S o5S060G 41,0733 00186 oS204ue 01386 00307 040158 ©,9651 00233 042938 01,0418 20235 04675 
S3e 1e172h 00143 32058 1,00u3 00173 054378 01057 0011S 04750% 059968 20259 2455S8 01,0524 e02k1 204886 
S26 leloel e0176 «=o 33798 14,0473 o0tTY o5017% 4O72A 00112 948428 ©},00R4 40257 448098 ©1,0630 .0199 5084 
Sie 101515 20192 PR ee PY | 20165 o37b2¢ 00599 o0140 049528 01,0201 00232 o904U1% e1,07%0 00227 05512 
S08 1e14un9 00225 057978 1.0213 00162 059040 29070 00110 050018 01 U3Ih oV2u6 oS2079 ef ,0642 00209 05524 
49 101302 e0tTo o59735@ 13,0088 00195 04100% ©,0258 00109 051708 of ,0u3S 20229 0551608 ©1,0948 20232 097535 
uBe 101196 00195 041088 09953 002d 043798 0587 00108 o5278% 01,0551 00219 ed7359 91,4050 00397 05950 
u7e 161089 e0e3u o4405o 09425 00205 04584 09,0916 00108 o5307% 21,0668 00215 059508 e{,1}6) 00875 06125 
doe 1,0983 00200 e4oves 09093 200219 o4803% @,124S 00109 054969 =1,U765 00237 eO1B7® 1.1267 o0ee? 00353 
4Se 100476 eve22 .ub2se 295030211 05013% 061574 00109 95695% 91,0902 60215 .6402% #141373 ,0172 96525 
Gude 1.0077U 00215 250408 09454 20229 05242 2,1902 e0lte oS717® ©1.1919 00203 260068 ©1,1479 00378 06705 
u3e {ebe3s 20186 e52200 09304 00255 054778 «2231 00107 oSA2SF ©1,1135 00165 067908 =} 414585 00385 06888 
428 160557 60188 S448 09174 =o D212 ©=— 0 5689 0,256 =e 0110 059338 01,1252 0204 09948 =1,1691 20362 47049 
dis 120450 2018S 055998 e90GU 0043S o59US® 62889 00415 eb60UBF a1,13609 eO1As o7175* 21,1797 20391 e?Zu1 
dos 1e0546 eO173 051720 e494 00193 00098 «3217 e018! 06}00% @1,)4b6 o0lon o7341% 94,1903 00148 27369 
3968 100237 091489 o59bae o8784 00a09 063008 20,3540 Con ie) 0627S% eholho2 00157 074998 @1,2009 00165 01552 
BAe 1,013! 20213 201758 28654 0219 065258 «,3675 00110 063908 of o1719 o0to2e 076608 91,2115 00160 oT712 
376 140024 e020t o63708 08524 20216 00741 o,4204 e012) 06512% 91,1436 200109 o7A29% of 222) 00127 07639 
Jos 09918 ©0200 065708 oh 394 e02i2 00953 09,4533 eolt? 066288 =1,1953 20150 079798 91,2327 e014e 07981 
350 0912 00192 ob76K8 o82ou 00203 e7150% o,4801 o0127 oO750% @1 52070 015A 081579 ©1,2453 00135 OLD i) 
yue 09705 Nery eodKVe 28130 oulba 073589 0,519) eoi2d ebAS08 #162186 00120 ob257% 94,2539 00415 08231 
3he 09599 e017 071548 08005 00148 07520% ©,5519 0012? 070078 ef ,2tu3 ebied 083809 =1,2646 ole? 06558 
yee 09492 00194 075550 079875 00190 o7710% 0, 5848 00139 oT140% @1,2420 001358 065189 91,2752 00102 08460 
sis 09586 00201 075550 07745 200200 07916% 296176 eOlud 07290 @1,2537 20108 086258 01,2458 20329 26588 
sue 09279 00162 o77T370 0701S evils 080878 ©6505 Olu? 074379 162653 e026 087519 91,2964 00102 26690 
296 091735 0916) o7h9Ke 0748S eo17y 08205 a,685u 00151 075898 @1,2770 20095 oAhuUbs 94,3070 20109 08199 
266 0460 20100 o5u588 v735S5 00176 oB440% a, 7163 00163 077528 ©1,2887 e014 089608 e1,5176 0008) 28860 
27s e496u 00161 oKel4e 07225 0017! obol1% ©,7492 ©0162 07914® ef S804 20090 090508 #1 ,3782 O11) 0899) 
2oe ehASS 200155 ohS7Ue 07995 e01%6 067078 0,7420 00166 060808 1,521 oe UNA? oV1 SAO 94,5588 e014 09104 
230 A747 e015 55050 206968 e0loe 069298 so yh{ug 001790 oh250% of, SPS? 200909 292078 91,8494 20095 09197 
246 o464U 00125 ehosue 26435 00183 e981 a ,8478 0017) 084218 ef o$354 20094 oVS01e 21,3600 00uUTo 09278 
23s 0653u 200145 047758 0670S o0isa 09213% ©, A807 00175 oA596% a1, 5471 0u092 o939S® ©1,5706 00070 09344 
220 06u28 oONNS ebKAYS 26576 e0106 09320 0©,9135 00367 087659 2) ,3588 00068 oAM4ol® of, 5812 20078 09424 
2ie oA 524 20109 209978 2 04U6 00107 09426% ©,9464 20166 08929% ef ,3704 20005A 095188 =1,3918 20052 9474 
206 06215 00UBS oFUK Se eb310 00084 095109 20,9793 00153 090828 =] 55821 20062 095608 1.4025 200069 09542 
198 A108 20084 e9looe 26186 20090 090008 ef ,n122 00140 o9221% 0153958 2005) 096518 HF 4134 00067 09010 
186 etute 20072 o%25be 26056 00070 096709 01,045} ©0129 09351" ©} ,4055 00054 096KS% 01,4237 0006) 09074 
176 07895 20090 095278 25926 00055 097239 01,0779 e010 094H7T® ©) ,4571 00050 097359 M1 e4SU5 00043 09714 
168 07789 o0UeT 093948 2579 20046 09768 01,1598 00097 095638 ©) 54088 200U6 097B1% = 1.4449 00040 09755 
156 e7o82 00087 oI4B1e 25606 00043 09h 42% 05,4437 o00A7 09650 ©f .4405 oUN34 09H} 5% ©1,4555 0005) 09786 
146 07576 200006 295408 25536 00034 09845® 01,1766 ©0U74 097258 of 4522 00022 o9A8S8® ©1,406} o004e 09828 
136 27469 20060 290008 05406 00052 o9877® 01,2095 ©0uS8 097839 91,4659 000353 098719 =1,4767 20030 09858 
126 6 7503 =o 0USR 90648 = 527TH «= ONT =o FPRVUF wf ,2423 0005S o9ASO¥ @104755 2002R 29A99% @1,407$ 40025 4988S 
116 27256 29057 97216 05147 200Ned 099288 04,2752 20042 oVATH® ©1,4A72 20019 099108 ©1,4979 20019 09903 
108 67150 o0U4k 97048 05047 20018 09946% a1, 504} 00034 09912% @1,49K9 20015 0993358 94,5065 20015 09918 

98 67043 20037 IK uoe oUhB7 20016 09902 01,3410 20028 099408 2165106 ounid 099UK% =1,5194 20016 09934 

be 06937 20045 oIBS1e 4759 00910 09972% 01,3758 ovat 099018 15222 N11 099598 91,5297 001s 09948 

To 2083) 20046 096978 o4b27 2vour 299B0% of 4067 00045 0997T6% 01,5339 000N1 099709 =4,5405 20024 09972 

oe 00724 20U26 099258 2uug7 00004 09969 0©f 4396 0051 099K78 @1,5456 eons e99HUG ©1,5510 20007 09979 

Se 20618 0033 IIS Be o4367 00006 0999098 01,4725 onu0? 099948 93,5573 00005 o99N98 ©3,5610 20009 09988 

4a 00511 oMvl6 099758 4237 eouud 099939 01,5454 00003 209997% #145690 20004 099938 ©1,5)22 20001 09990 

Se 06405 e0UNS o99B Ke uso? 20004 099988 0f,53582 ©0002 099998 ©1,5800 00004 09997 91,5628 20004 09994 

26 00294 20009 99970 25977 0.60000 0999B® 05,571) eoN001 1,0000% #1,5925 20002 099998 01,5934 20004 09999 

le 00192 00U0S IeDuDUe e3hu7 00002 $00000% &4,6040 20000 1,0000% #1,0040 20001 126000% =1,0040 200001 $0000 


196 


TTANAAAANNAANANVAAAAAAAMAANMAAANL 


tn nT 


Fauna tattlsQOMAAUNL 


sit 


JANUARY 1963 
Figure B-2la 


: SAVANNAH, GEORGIA 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER @ewnnaxinun © © WEAN HIGHER X = MEAN 


123W¥5678910 12 6 69 74 79 
MONTH OF THE YEAR YEAR (1965-1981) 
LOW WATER omeween © = WEAN Leen Xm NENINUN 


12345678910 12 6 69 7U 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © -} owr;nat te @ = NeAN 1108 Xe STD DEVIATION 
0.5 
° XK KKM MK ye HEX KK KK KH 


12345676910 12: 6 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-21c 


198 


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9566° 0000° nagS?t= 29466° 9000° 24tret en e 2@62n? 620° fnerete #lcac® eqtoe @bfget sans 
9906° 0000° 292S°te #9466° mnogo? st2tet as ® 26L9ne 6t20° boer*t= sonic? £920° OofEet 86S 
9S66° 0000° Tn2Stte #21h6° nno0n° aset*h «29 e 20995? 2gtoe OStE*te weqng? 2gtoe gonget 295 
9566° 0000° 661S°S= 29996° 9000° Togtet e4 s e9ect? eteo° atligete elses? Satoe Onnget 24S 
9S66° moo? LSIS° Te 29996° 0000° mnetet ef * 269St? ¢920° 9L08°T= aqutse 900° oanget 29S 
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tee? nroo® ze0S*te 29996° 0000° Zanteb eft YY eofbe® g909° bGo2°te es2an® 2Et0® etoget 219 
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4nee? @q00® eonn®t= »ng26° nn00® 9tteet 292 e ersole nn00? 42ce°t= efor? satoe 202n*t 294 
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secc® sayoe 606f°t= efifa° Sito° tTe9e°t eee e 2hS9g0° @900° L2gl*te sasgo0° nnoo® Lecpet ee 
ents? £920° 49ef°l*® s2028° aa00° ne92°t sof ry 2£920% -gA0n® 9eLto t= antigo? 0000° O2en®t 268 
9999° Satoe S2er°t= enity® nndo® dt4e°t On * eS2t0° nhoo? mnat te entau® geno? 209net 206 
tt49° 6tz0° nmAce®te «008° 9e900° o9gLe°t gin ® g2ctoe nn0o0® 20gt te 29250° 2gtoe SOonet alo 
tong® otzo° 2nae*t= s2964° tos0° foee*tl een 2 29900° 0000° Togt*t= sgego® mnoo® enen?t x26 
2429° seroe OO4E°t? a2594° 9a00° Sneg2°h ef 2 29900° 0000° otot t= stssoe mn00° Toonel £6 
9609° nroo® eS9f°l= snnsl?® sito°® eeae?t enn ry 29an0® 0000° LLSU%te wL0F0° geno? pgoget #6 
is09¢ Sito® £t9gets 29901? 6t20° Tgo2°h eS s 49900° mnoo® 9fGI*T= wetzo® 9@00° £20S°) #96 
649S° £920° 9LSE°Te sontL® 9g00° mLoe*s «9n 2 annode 0000° Pont®?t= s7eto® nnno? O2tset 296 
ntgs® S4ro® mest°t= stonu® eteoe dtog*t ein e anndoe 0000° TGnt ete «qgo0? 0000° fato*t #46 
oins® 6t20° Zonee te #2n99° 9900° O90g*h ear e anngoe 0000° Tint*t= sag00® noo? q02g*s #@6 
etes® 210° Tonf*te encl9° 40£0° fotsg*t eon 2 onnooe 0000° o9E1°t*e enn00° 00n0° on2set 866 
990s° ot2o° 6onc? l= winn9® 2cto° Onteet 09S * anode 0n09° g2gt te «nnno® 00n0° 2625°b 2001 
89yn? 2ctoe 4ogctte s9159° 9900° oats*t ofS * onn00® noo? 992° leo wnnd0® pnnoe megset wtOt 
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199 


s 
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s 


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doe 


ude 
use 
aes 
ais 
aoe 
398 
gas 
376 
joe 
356 
346 
330 
32e 
sis 
308 
298 
286 
278 
2o6 
256 
2ue 
23e 
228 
2is 
206 
1968 
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136 
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116 
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LOMEK LIMIT OF -CLaSS INTERVAL SHOMN, 


HIGHER RIGH WATER 8 
® 

LuweR PREQ, Cun,8 
LINTT PReuge 

SOOT TC OSOEoeLEEEREDD 

105334 20002 2000200 
1eS25) 20000 2000e8 
125108 00003 20005e 
1.5065 20005 200098 
tesove 20006 e007 
104918 00009 e0020% 
104635 00009 200358 
104752 o00Kt 0004Se 
1edoo4 20009 000SGe 
104586 00009 20uose 
124502 00020 evubse 
124419 00021 eOloue 
104336 20u23 001209 
1e4255 00026 oU1Ses 
Lesily 20030 001628 
104080 00050 ovelee 
1e4u03 00039 o0e5ie 
123920 00047 002960 
1o3837 eo0ven 00558 
1.5794 00050 20408 
Loeso70 20050 20uoue 
103567 00US7 00S21¢ 
103504 200050 2005708 
leSuel 20006 o0o3Te 
1.5356 00065 evuToue 
1eseSu 20U5) oUT5\6 
eSi7i 20009 o082uU8 
1.3088 20U62 208Aee 
1s5u05 00062 oU9uus 
102922 00uU72 olO0los 
1.2458 00U98 ellie 
102755 e0UT2 011808 
le2or2 00093 ole7ve 
102589 00099 015708 
1.2500 ule oluves 
ledu2e e0lve olS7us 
102339 00110 olobue 
leéeSe o0}0) 017856 
1o@i7s 00078 olbose 
Leen9o 00095 019568 
1o2u00 00090 o204be 
Lelves 00)23 e2i7ee 
10164u 00119 oeede 
101757 00197 o24u7e 
lolo?u 014g 0259¢e 
16159u 00tS) eeTuee 
101507 00158 029008 
1olu2u 00169 o3uo%e 
Vold4i 00144 o32i3e 
101258 00175 eS3bKo 
Lolita 00209 055970 
101091 00199 037908 
1e1u08 o0172 oS%o7e 
1.00925 20206 o4l Tue 
1e0842 00224 o4S9be 
1007586 ovels o4oise 
1evo75 e02e1a 048518 
120592 00053 oSudue 
1.0509 00197 094619 
1.0420 00224 2550350 
1.0342 00184 050608 
100259 e0e4u? 059550 
1e017o 20208 eO1uie 
160095 e0ee9 oos7TuUe 
1.00010 00206 065768 
oV92o 00175 0o75uUe 
o9HUS 00190 eO94ye 
09700 00152 o7u9e8 
09077 eOLA7 eleTwe 
09594 00195 074718 
09510 00176 oTouve 
09427 00eU6 078590 
0954u 00184 ohusoe 
9201 00149 041858 
0976 00144 45200 
o%U94 eOluy obuobe 
09011 00152 obo0ue 
046426 20leb ab672H0 
24645 00107 ohb3Se 
o670e 00089 ob924u8 
04078 00UAu oIU088 
A595 20086 o9y9be 
08512 00084 oI TRO 
06429 00U90 292048 
06340 00086 o¥b5ue 
ob2c2 20U69 29ueue 
28174 2007S 09U9G0 
ohio 20074 o9STUS 
o4ols 00U06 0FOh08 
e793u 20056 09091 
07645 00USu 097408" 
07763 ob0uy oVTKO® 
o7oby 00087 e96436 
07597 000355 096779 
07514 200026 oVVee 
eTusy 00U36 e99due 
07347 00020 094058 
7204 00015 o99K08 
e714) 00015 oV¥9%6 
o7U98 e0U00 oIIISe 
oTula 20U05 Jelunve 


ALL MEIJGHTG ARE NORMALIZED WITH REBPECT 


Table B-21b 


HIGH WATER ® MOURLY VALUES ® 
° e 
LORER PREU, CUM,® LoweR PREQ. CuM,@ 
LIMIT FREG,S LIMIT ‘i FPREQ,? 
SRCCeaeeeseoseesssasg Seeeeeeone seaoee 
105334 0001 00001% 14,5334 00000 00008 
te52a9 000! 00002% 44,5027 00000 00008 
15124 00002 00003 14,4719 0001 .0001% 
105018 0005 ec0000® 11,4411 00003 00048 
1e4913 60008 0014 34,4103 00003 00088 
104807 00006 00020 43,3795 00008 0U1e% 
1.47v2 20004 ovdoed 4,348? e00se 000288 
1.4597 60008 c0032% 14,3180 c0014 00438 
1.4494 00012 00044 34,2872 10019 00008 
1od3b6 00033 00056% 41,2504 00026 00808 
1042860 «60034 e0071% 34,2256 0003) 201168 
Ye417S 60019 e004 34,1946 00035 01539 
1.4009 eoue2 e019 441040 Qua? 002008 
1o3%ou 20023 001S5® 151535 00056 002558 
103859 60085 =o 0109 141025 00070 205258 
LeS753 0 0053 =o DAVE «440717 00085  ,0u108 
105648 00039 e0242% 14,0409 eosos 005148 
1.3542 00035 00277* 4,030) 00413 00625% 
103437 20059 o0310% ,9793 cO0S21 207408 
1.5332 20048 005598 09486 00135 006818 
103226 00040 00396 ,9178 ec0146 p1ua7e 
odie) 0004) 004598 208870 00355 011628 
105015 00046 004bS% 208562 00162 015458 
102910 60050 005$0% 48254 c0S%6 15218 
1.2804 0062 005974 ,7947 cOL77? 169868 
1.2099 200001 000569 070359 00187 016858 
12594 0009 07279 47551 00186 ©=6, 20728 
1,2468 oou7ra 00 74BO 7023 00168 022598 
1.2363 00060 008788 06715 00184 o24due 
1oe277 00078 00950o 06407 00170 o@olue 
102172 00006 of021% 46100 0167 27818 
102066 00009 eL091e 05792 00160 29438 
101961 00087 «01178 =, 8484 =o 0153 g S948 
101656 60083 =o 201%. 45170 o0139 232558 
101750 c0113 «S748 44808 00126 435618 
1.1045 00lud 0 4eye o450U 0126 054848 
1.1539 00105 01589¢ 042535 00124 o 30138 
Lot4SG 14S =o H7S2% = 394HH = 01 
131329 60116 «01848% 43637 00117 
101223 60391 01999 = ,3529 00118 
101118 00159 o2156% 302} 00114 
101912 00138 c224%6* 2715 00508 
1,0907 0017) 0e4o7e e246 00109 
1.0601 00185 e2652% ,2098 00106 
1.06% 00176 028289 01790 00109 
1.0591 00169 050179 1482 00107 
100485 c0176 o3193% 41174 c0lo2 .u7229 
1.0380 00163 o3576% ,0466 c0102 p,4b2ue 
1.0274 c0183 35598 49559 00195 
1.0160 00186 037458 2025) 00100 03026 
1.0004 0019S 039408 @,0057 e0l0u 51298 
09958 = 0206 =o W140 ©0305 00100 52298 
09653 00176 o4321% @,0075 00103 055308 
oO7U? oOl7h 04492 9,098) 00103 oSus2e 
09642 «60210 =o LPV2® 41288 =o 0104 =o SS S68 
09536 =o 0212 =o HPL KF = 4159 = 0104 = » SS. 
09431 00218 051$2% 0,1904 e01ne 057418 
09326 = 0209 =o BSUS 00099 =, 58408 
09220 90208 o55uue 00304 ,594uSe 
09115 901860 8=n S749 00104 0498 
09009 00212 059509 2010S .615ue 
06904 =0V)95 =o 1 $19 00106 8462608 
04798 =o 0197 =p 0 BHF 00100 8465668 
26695 00170 00498e 00105 064708 
05650B =o 0176 §=— HOT USF 00107 965768 
oh4B2 §=20197 =o 0B 708 e012 966908 
06377 0206 o7077® o,4942 00510 68008 
2027! 00105 e7a4ae 2 00119 = 09198 
08106 «eVI97 «0 74388 e012 070408 
28001 20201 076598 e0lal o7101¢ 
07955) =o 19H =o FUST® 0122 =, 7285 
07650 = 0185 = p HON ¥* 00128 = 74114 
07744 = L189) =o BRUT 00143 475558 
07659 00173 063014 00139 076948 
07533 =o 0193 =o HSS 3% 00151 078458 
27428 =40103 = 80978 00157 ,80028 
07323 00146 obbuse 00165 o6167e 
07217 ovlel 0900Ue 00170 985378 
o7112 0111 oV110% eOlbe « AUDBS 
07006 00199 e¥2oue oo17d 280708 
00901 00106 e93o1% o017G obhuue 
20796 00105 09405e 0016) 09008 
20090 20080 095454 00155 091608 
200565 00070 09015% ef,n216 00143 093028 
06479 o0v0S 0967K® 01,0523 00130 
o6S74 20006 097459 of ,085) 20109 
20208 00060 09BUUF of ,4459 2009) 
eolo3 00044 o9649% 01,1447 60080 
90058 o0ve? 09670% 01,4795 20060 
05952 = 0026 =o HUI wf ,200$ 00053 
05847 20026 0699268 01,2570 c00u5 
oO74) 20048 09946% 01,2078 00038 099158 
05646 00081 09950% 01,2966 00028 099458 
05551 0006 099729 01,3290 °0U2e 099669 
05425 60010 =o 9B 01,4602 00015 499808 
25$20 =o 0005 =o W¥HT4H 04,3910 =o 009 
05214 =6 0004 = on 991% 01,4217 00006 
05109 000ua 09993% 01,4525 ©0002 099988 
05008 20002 099959 o1,UHss 0000) 099998 
e4AYR = 0005 = F9YYF 01 5444 20001 1%,00008 
04793 eVOUL JeV0U0% 01,5449 ©0000 4.00009 


200 


TO HALF THE MBEAN RANGE 


LOW WATER 


e,54ul 
205842 
@,9042 
eo9742 
@,98u2 
2.5942 
©0042 
eobiue 
ero2u2 
eobs42 
@ 0442 
26542 
@,b642 
@,o%u2 
©0842 
@,09U5 
©,704u3 
wo7143 
eo7243 
oo73us 
@o7uud 
207543 
@o76u3 
©o7743 
o,7Auy 
207943 
2 ,40uy 
eob14s 
e,b2us 
e,b3uu 
@,buuu 
©6544 
2.6644 
o,674u 
2 ,6844u 
25944 
e,904u4 


©4,0045 
o1,0148 
00245 
©) ,05u5 
e},0uus 
24.0945 
2400645 
100745 
21,0845 
21,0945 
e},1046 
PlLolide 
el lade 
el.1su6 
elolbuo 
e101546 
eleleoue 
e1,1746 
©1.1846 
1.01946 
°1.2046 
elo.eiuo 
1.2246 
eleesuo 
e1,c44u7 
elecdu7 
eo) ecou7 
el .e747 
°1,c84u7 
elecIu? 
21.5047 
e1o3147 
el .seur 
o1ossu7 
©) ,544u7 
©1.59547 
el ,sou7 
oLosI4uT 
21,3848 
©1,5948 
1 .404A 
1.4148 
21.4248 
ol ,45u8 
e1e.44u8 
21.4548 
el .4ou4 
e1,474u8 
21.4846 


02048 
e1.5148 
e1.9249 
21,5349 
21,9449 


SCOOCOCEO ECOL TEESOG 


3,605 FEET. 
® LOwER LOm water 
s 
PREOQ, Cun,s PREG, 
PRE 
Seoogsseees 
20001 20001% e,6773 40002 
00003 00002 e,646y 20002 
00004 00005% e,0947 20008 
00002 00007 e,7034 20000 
00001 20008 «7120 e0uld 
00003 000118 ©7207 00015 
00008 000359 e,7294 00015 
00007 000228 e,73b} 20024 
00008 00020 o,7467 e00le 
0009 000358 0,755u 00ues 
00034 000498 e,7ou4 20015 
00007 009568 04,7726 00044 
ovoid 2000708 200046 
ovoid 2008ue 20029 
00022 = =660100% e,798b 2005S 
00024 001508 00G44 
00035 001668 20044 
20035 02009 20075 
00055 u2sse 20000 
00039 = =,02748 opus 
e004) ousiue 20067 
00059 003758 20094 
00062 204558 2009S 
00079 205148 00098 
0076 20590 00119 
00075 0066058 00310 
00093 ey Isbe o0M17 
00093 o045ie 00125 
00112 0090se oO147 
00103 ol0o78 00188 
00134 011608 00129 
00137 013178 0015S? 
00155 0} 4528 00164 
0149 016018 20e05 
00172 ol 774e 20386 
O17? of 951% 20204 
0016s ei sue 2oee? 
00182 023308 20185 
00196 o251ee 001d 
oVl9S 0 709% o0est 
00206 oe9iie 20222 
00217 oSsieve 00019 
00254 eddoee 20256 
o02ut 230058 025) 
00259 oSboe8 00197 
00237 040988 0021S 
20242 = ,usuoe 00194 
00235 = 45758 20259 
00258 o4bSS% ©1,0957 20216 
00253 05086% e1,1024 40196 
00253 035399 91,4311 20215 
00262 050038 ef ,1196 00194 
00213 58140 1 ,1ehy 20150 
22) 06055% =f 1571 00197 
ol2i7 e025e% 94,1458 20146 
00209  o4ol® 91,1545 20162 
20212 9007S @4,J032 20198 
00192 soboS® e1,1718 eOl7s 
oO17t 270$0% 91,1805 20152 
00166 o72u2® =1,1892 20193 
ou183 07S$65¢ -1,1979 e007 
00155 = 979408 #342005 00120 
00155 9 7695% =J$ 42152 00152 
oVlol o7656% =4,2259 0145 
00149 08005% e3,2520 200105 
0U145 =o BISI® P14eh12 0114 
00128 oh2798 ©1,2499 ,0U95 ,85h4 
2015) oF410% =1,2586 0012S 08509 
outa eh551% 91,2075 20099 ,8008 
00109 066608 =3,2759 00107 o8liu 
00102 eb7o2e% =1,2b40 20096 28610 
00110 08b72% 12933 oOLld Oh | 
00106 69788 ©3,$02y 200087 09008 
00099 09073% =1,3106 2009S 09105 
20067 e%100% 94,5195 00089 =, 91914 
269 292u9% ©1,3280 200009 09260 
00075 «= 95248 91,3457 40009 69529 
00084 oV4Qb% -1,5u5s 00084 0941 
20072 09400% e1,S54y 200080 09493 
00074 095538 =}, 5027 00009 %56e 
00098 oVOK1% OF 65714 2009S PC) 
00008 96799 ©1,46u0 00042 49656 
ovndst o97$0% ©, StK7 20050 09/06 
00056 o¥7o0® 14,5974 00U48 09754 
0056 098US% $1,400) 20U4e 09796 
2¥040 oVAus® ©) 4347 00055 09629 
0028 eVB70% =) ,4254 20u3S35 o%bbe 
e0ned e9B9S0 91,4504 s0ueu 09686 
00022 o991O% ee, ,uuun e0Uls 09904 
20018 o99SUO © 1 4udu 20018 = 992A 
ev0ll 09940 #1 ,4S6) e00le 09934 
00014 099008 =1,406b6 20006 e994) 
20008 09905% ef ,4755 00017 09956 
00081 oV99TS9 Of ,4b4) oe i | 09908 
00008 099b6S® ©) 4928 0014 0 IIB? 
00009 e9992® ©1,5015 20000 09988 
e000 099908 =1,5102 20008 29995 
20002 299988 ©) ,5188 200028 29997 
20000 099988 @1,5275 20000 09997 
00001 099998 =1,5$b2 20002 29998 
20V001 30000% ©1,54u9 20002 14,0000 


“TAAANAAMAAAAMWAAARAMLATAAWAAAAAL 
UN 


“Lal 
: AANA 


HOURLY TIOE HEIGHTS 
JANUARY 1963 


Figure B-22a 


MAYPORT, FLORIDA 


12345678910 ie 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 
HIGH WATER a « maxinun © © NEAN HIGHER X = MERN 
-Q. 6 
-1.2g,58 7588 
-1.8 
123W¥5678910 12 6H 69 7M 719 
MONTH OF THE YEAR YEAR (19635-1981) 
LOW WATER oa@-=neaw © = WEAN LoKen X= NININUN 
2 5 S| 
oOoaq tu} fu) . nono oCAaD 
3 o ©0000 oo . cu) (u) = 3 4 3 5 ne Fs = oOO00RT0 CQ 


12345678910 12 6u 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © «= DIURNAL TIDE = MEAN TIDE X= STD DEVIATIEN 
OS 
x 
0.0 % nae XKRK KKK KKK KKK KKK KKM 


x xxxXxX “a 


12345676910 1l2 6 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-22c 


202 


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Table B-22b 


LOREM LIMIT OF CLAGB JNTRWVAL BmOUN, ALL WEIJGMTO ARG WORMALSZED wT mM MOBPECT TO ALP IHR mRAN pa GE 2,233 Part, 


HIGHER HIGH waTER e HIGH RATER HOURLY VALUES e LOW WATER LOweR LOw waver 

) 8 ° ) 
LUrER PREQ, CUM,8 LOWER FREQ, CUM,® Lower PReo, CuM,® LOnER FREQ, CURLS LOmER FREQ, Cun, 
Lint PREQ,® LIMIT PREQ.® LMI? FREQ,® LIMIT FREO LIMIT REO, 


Clon oeceeeegeecrecosesenoceeasenecetoeennocesogeaceessconerocooenecencocnencs SCOCSHEOdEO OE EESOD OOFOCOOREEEOOOoR SO RERG 
101% te?u20 00001 000018 1,742 20001 00001" 4, 20000 0000 2124 00001 000019 2933 ,0008 0003 
1ooe 10eF3i1 20000 00001 41,7783 0001 200018 4,707) ©0000 0000 e.2P78 0,000 000018 e379 40004 00004 

988 17201 20006 o0V0T® 1o71bA 00004 00006 1.6722 e0v0l 000018 ey,2u3t 00001 000038 =, 3224 00004 00008 
98e 107091 20012 =o 00198 447009 40004 00010% 146373 0002 40003 ©2885 .0008 ,onode e°,3570 ©0004 40013 
978 1206982 .0004 000248 146472 60005 00016 34,6026 00003 00068 02738 = =40004 = 00128 0.3515 40010 eho2u 
96% 106872 00007 e00S1S 146735 00007 00022% 1,5075 00004 000108 ©2892 00008 20020% e@,3660 09010 00034 
95e@ 106762 dutn 000G2e 146598 00906 60028 145326 00005 .0015% e,3nue ,0007 ,002b8 #3800 .0004 0039 
94a 100652 00009 00518 {eouo4 00007 000308 1,4977 20007 0022 ©,3199 0007 ,003ue 2, 3951 e9019 = §=,0058 
939 106543 0010 s0001® 4.6323 c0nit e00d7® 144628 00010 40032% 23353 40010 40045 ©,4097 002) 00079 
928 1oou33 20016 e0076@ 156186 e0nin 00058 14,4279 e00t2 000448 e556 000A 000038 e,4eue 000135 00092 
Gis 106323 00016 000948 4,009 000u? 000089 34,3930 00017 000618 ©, 3660 00N17 000808 e438 2002) 00113 
908 feerla eN0tR eOl12e 14,5918 o00K4 00070% 1,358} 00026 000878 ©3813 00017 00097 0, 4535 2002) o0LSe 


89a Leo10u e015 001279 345776 00014 00090" 14,4232 00033 001198 ©5907 00031 201288, e,4o79 2002) 0015S 
BBe 165994 00013 eN1408 14,5638 000138 culos 1,2683 20040 001599 e,4y2} 00031 001598 ,462u 20024 00178 
BYs 105AAS o0u16 003508 14,5504 e0nlge eoles® 4 ,a53u 20050 002098 a ,4a7u 00022 001608 = ©,497)) 00016 00395 
Boe 105775 00024 e01798 4 4536u 00nl2 001358 34,2185 00063 002719 © ,4428 00029 00209 94,5115 00039 00253 
658 105665 00018 001978 1.5226 eo0en 00155" 41,1836 ©0U66 003379 0,454) 00031 002418 @,S5e6} 00028 00262 


646 105555 e0us0 002278 1 450A9 00083 00178 4 ,y4A7 00077 o0G14F wo ,4735 00027 002084 =,5406 00027 00288 
B3e 1eSuuo 0002) e0e4Be 14,4959 00016 00194 4,4338 000AR6 o05008 2, 4Abo 00030 002988 ©,5552 0005) 00520 
628 105336 00030 eVATRO 14,4018 00033 00227 «14,0789 00096 2005908 Soua o0NU4 00339% 02,5697 20046 00566 
61e 105226 200027 e03S0S% 1 ,467A 20029 00aS7® y,nudo 00113 007048 $196 00043 003H2® 0, 5hus 20042 00407 
B0e 105417 20036 eOS40e 4.4544 00035 002925 4,009) 00117 00RASe 53u9 ovngs 0042e3# ©5988 200040 o0uu? 
79e@ 120507 2002h 003098 Y,u404 00n4un 003328 09742 00130 00961% @,5503 00036 00461% w,61 34 00059 00486 
788 1.4597 e0USu 004088 344207 e0OUS =e 03758 29393 o0146 01107 5656 00959 = 405208 246279 20052 00538 
778 10478A 00042 e0G4Se yy oulso 00083 004298 09044 00154 ol261% 2.5A10 00068 005B8A% 9.6425 00055 00595 
708 14078 20036 eO4UAL® 34,3992 e00ua 004769 A609 00164 014258 @,5904 00004 006528 02,6570 20055 00648 
758 1045608 20046 005278 14,5855 20062 =o 0S SAS e534 =o 0166 01590 ©6417 00073 = =40725% a,6716 20080 20728 
7T4e 104456 00056 oNSASe 443718 00082 eveene 07997 00179 017098 e,6271 00073 20797% 2,6661 20079 00607 
y3® 104349 00052 e0O3K® 443584 200862 007028 07048 00174 019439 e,042u 20096 008948 @,7007 0007) 00679 
72e 104239 200%} e099 4 osduu 008! 00763¢ 07299 00190 024328 ©,60578 00093 009BO% ©,7152 20079 00957 
718 104329 eOVR2 = oO07A1® 41,3307 ootnt o0b9ue 04950 eOLAS = 28158 aw yhT31 e010 019968 ©7296 40115 01070 
708 e400 00055 06308 143170 00106 e10008 06604 00186 025018 8.68865 00120 o1217% 2,7uus 20086 01157 
69% 1065910 20085 009218 463033 00100 o3100% 06252 e001 7a 026758 0, 7039 e0103 013208 2,7589 200086 eleus 
ohe 153H0U 00106 e1u27e 41,2895 0010S 01205° 05903 0017S 078518 0©,7192 00155 e1454e ©, 773u 00504 ol Su? 
678 10369) 00109 ell3oe 14,2758 Old 013188 0555U 00169 03020% 247340 eVNHt' 615958 =, 7KAY 0014S 01490 
668 105584 00113 oleSue 4.2021 00129 of 4u7e 25205 00360 oSthv0e ©,7499 e011? 017128 ©,8025 e011) e100) 
oSe 1esuth eOlle el3Sh2e j{,2u8u 00129 =o S078 24856 0152 = 3332 ©,7653 0126 416579 ©8174 00137 = =641758 
o4e 15336) 20160 e1S2ee 14,2847 eole? 010900 24507 00149 03481 oe, 7AN® 00159 619978 ©,8316 01357 01875 
ose fe3252 00128 0105U8 162210 0014s 01655e 04158 o0lus 23024 ©7960 00457 o2154@ =, 8ub62 00164 02058 
oPe 1e5142 eO1SS =o THS® 41,2078 00139 19748 23809 eols4 037598 ©8414 00173) =n 23268 =, 8007 20166 02205 
618 totute 018g o19200 144936 00132 eelu7e o346u 00129 03687" 2.6267 00159 e24ho® ©,8752 00185 02587 
608 102923 oO13u e261 1o1798 0130 o223s7e oStt 00129 4017 eo, Burt 00170 026568 »,H696 0014) 02529 
S99 102H13 o0lds 021928 1,160) 00159 02370% o27be e023 041398 ©6574 00165 o2bule 00109 02098 
SAo 102703 eO1TS oP5ShS@ 1541524 00147 025228 02413 e01eu e42o3® 2,A728 00180 30218 00390 02686 
S79 102595 09158 025249 1,1387 00159 02bb1% 22063 e032) oA 3BuS @,ARAt e019A 032198 20165 03053 
Sos fe2uby 00157 o20A08 14,1250 00176 028578 ol7la o01s? 045008 2,935 00183 o3400% ©,9480 00189 ed2ue 
5Se 102374 e01eu o2045e Totly 00164 esuene 01305 00119 o4619% 269189 00200 036028 27,9674 00189 0545) 
54e 102264 00170 o301S8 1.097% 00102 o 31658 of 016 0014 e4733 0, 93u2 00206 03A08% ©9774 00219 03049 
S$e 102155 001% o32108 1,0A39 00180 eS303e 00067 00120 248538 ©9094 00224 o4U33® =,9916 40190 23440 
S2e¢ 102045 00157 035678 {ooToD 00193 035568 00318 00116 049708 @,9hUu9 00709 o42uP% ©) ,N062 20205 o404u5 
Sie 101935 00107 035348 1.0504 00207 03703 o,nu3! 00109 050799 @,9803 00718 24400% ©f,0207 200196 e42u4 
S06 161826 00169 o37038 43,0427 00196 03959% 02,0380 ello 051948 969956 00226 046808 ©1,0553 o0els 04455 
u9e toltle 20100 o3bm3e® 1 ,029N 00190 04149 09,0729 00104 oS30R® o1,0110 00207 e4BGS® 01,0498 0224 24680 
Whe felone e073 e404He 4 ,0153 002048 e4393 |, 1076 00149 054278 e1,0264 e0P24 051109 |4, 0644 00232 e492 
47s 101496 00170 042008 1.0016 e02u9 o4503% o,4427 00119 055408 of 0u17 00239 05556% ©1,07869 00245 05157 
Woe 1013587 00187 043958 29A79 001M 04793" 0.1776 e0118 e566Ue of ,0S71 0023A 055938 ©1,0935 00211 05568 
45 101277 00199 245928 0974P = 0.204 e4957® o,2125 00114 o5782% ©1,0724 20239 o5A55% 91, 10A0 20204 05572 
4ue Jotjo7 00175 = 4708 09608 coal oS171% w,autu e012e 05904% 01,078 00216 =46049% @1,1226 ,0246 45820 
438 101058 eO17A o49uue 0947 e02l2 053849 06,2823 eOl2e 06026" 151031 00218 06266 ef 1371 00190 06010 
42e 109948 00179 oS12se 09330 eo2id 00122 06146% 0161185 00218 e64K4% 01,1557 o0a2es 06233 
4ie 1.038 20212 8.535358 09193 00217 -00327 06275% 151339 20199 .o68S* 21,1662 20201 eousy 
aoe 100729 00227 055028 09056 ooeed 00128 o640U% 3.14092 00186 26869* =1,14C08 20235 96069 
39@ 10e0H19 20200 oS708e 0AN9 00203 00134 06537 elelbue 00195 e706 41,1955 00214 26883 
J8e 1604509 20197 oS96Se o8742 §=6 0218 20140 ebb77® 01,1799 00209 © 4 727U8 @4:,2099 20207 27089 
378 109399 20290 261058 20648 00197 00136 06815® 01,1953 .019K 07472% =1,P244 20208 847297 
Soe 120290 00187 003520 eo ASR 00709 0014S 06960% ©1,2107 00176 076489 ©) ,2390 00174 oat 
358 1001A0 00193 2o5uSe 28371 20200 e0145 =o 7196 ©1,2260 20177 278258 ©1,2535 ,0164 7646 
34s 100070 00200 0b745e 04233 00195 00151 07250" ©1204 00158 07983% ©} ,26A} 01109 = 7804 
330 09964 00225 069708 eHN% 0181 00156 e7Ul2* ef 92507 00149 0813529 91,7620 00150 07955 
320 09A51 00191 o7lo1e 27959 00106 20157 07569% @1,27e} 00135 82078 91,2972 20146 08100 
Bie 09744 oO17S 0753Se 07822 = 0173 00159 =, 77288 @},2A74 00129 0h3958 of ,3117 00146 =, B246 
yne 0% 32 00194 075279 07685 00176 Nou o7BAR® @1,302A 00136 oh5$1% |4, 5205 00157 08 SA3 
298 09522 09190 o77170 07548 00166 001586 e8udo® 01,5182 001348 046508 91,5408 e917 08500 
pie o%ut2 00152 0 7804s 0744 00179 Othe oA209% 01,3335 00103 087559 91,355y 00113 boss 
278 §=69S02 «=o 0173) = g BuU2@ = 727u 01S a 00160 9A369% =1,3489 60102 .HA54® =1,3099 0113 8726 
ane 09593 00194 oAetue e7'36 «00182 00156 = AS25*® &1, 3642 00405 089598 91,3844 20095 =, BB 24 
25e oI0A3 00173 ohunte 26999 20143 0015) 086769 91,3796 200Kd 090448 ©} ,5990 00105 08924 
2ue oAQ7S Olle okS23e obAop 20150 e01u6 eFB22% 91,3949 40n90 91339 ©1,4135 000849 49013 
23s otAbY e014s otools 200728 0015S 0143 089658 af ,uIny 00078 092068 91,428) 00097 09310 
220 A754 e0lde ohb13e oO58A ood? o9107% 01,0152 00127 090918 ©) ,4257 00095 09299% & 1 4426 2 00R0 09190 
215 ehodg e0110 oh923e 0044) 00106 09273% 01,9501 ©0120 092179 a1 ,4uuin 00976 09575% 291 ,4572 20089 09279 
poe A535 00104 e90T18 oO314 ou10u 09377® 01,0840 e0116 093348 @1 ,456u e007t e94uUbe =4,4747 00074 093553 
196 ours 20127 o%iShe e6N77 00N% 09N73% 0141199 00103 Oh ee i 0067 095158 @1,4bos 20062 09416 


{Ae eX¥15 a NlO¥ =p V2 8 06039 §=—60079 695529 a1,154d 00090 495270 ef ,uart 00952 = 9565 ©:,500H 40082 .9496 
17° 24205 eOURB o%Suve 05902 000TH 062A 04 ,1A97 e00A8 e964" m1 e592u 0007 0905°% 91,5154 20077 09575 
10° 04096 o0u6u eIUSse 05708 00073 097019 of 2246 20066 09H Ae S1,517A 00955 e9bA7T® © 14,5294 200061 09646 
15% 07985 4006 =o FU9He = 5628 =o 056 =o PTS7® 0442595 00060 = 741% O1,5352 Oud 497519 -1,544u5 0052 .9686 


149 27A76 200079 09$778 o5u94 20041 00052 097938 ©) ,5NAS 00949 09779® #145590 Lor dt 29736 
138 07767 00064 090390 25354 20035 00043 09B84Sn% 24,5659 20054 ePALU® ©1,5756 09046 097K4 
128 07657 00086 09TNue SPI? o0ve? 090% of, $042 ©0035 oIAT1% 0145792 00055 ePHUVe ©) SHAR] 20042 09826 
lie 07547 00046 097526 eSN BO 20030 09B90% 01,3994 00032 099038 01,5946 000384 oVABUF #1 ,6027 20usu 09856 
109 7438 00057 o9ANIe 04948 00N25 09915% wf ,4u3un nna? 099308 ©) 56099 20029 099108 =1,6172 00034 09890 
98 07328 00045 098548 edhS 00021 099369 ©1,4689 00019 09949% 0{,0253 00019 099298 61,6318 200030 09920 
Be 67716 =o 034 eFORSe = 4UhOA = DOLY =o 9951% 01,5638 00017 699668 @1,6U07  .0017 49940 =1,6463 40010 49930 
TS 67108 = 60025 -o 9V1U8 44531 40019 =o 99094 04,5387 00012 99788 @140560 0010 499578 =1,0009 .0ulo 49952 
68 066999 0033 49943 ,4394U 20011 099619 01,5737 060009 .F9A7% @1eH714 90013 499698 91,6754 20012 49964 
Ss 0 6A59 00021 09548 04757 00007 099679 w1 h0lb 20006 099938 a1 6867 00910 099798 ©1,6900 00010 09975 
ue 206779 Sn ) 199A28 o4ten 00005 09993% @(,6U35 ©0003 099978 1,702) 00008 099878 ©}, 7045 20009 09984 
Yo sbo7o orgs 299976 2393 20004 09996 01,6784 eoone 099998 @1,7174 20007 09994 91,7191 09010 09994 
26 26560) 20004 eVIN96 oo tAue 20003 099998 04,7435 e001 1,9000% @1,732A 0 OO04 o999T# 91,7546 200001 09996 
1° eouSy oN001 1evnous o 370A 00001 fo0vU00% 04,7482 20000 1,0000% @1,74K2 20003 1.00008 =1,74R2 20004 14,0000 


204 


MIAMI HARBOR ENTRANCE, FLORIDA 


12345678910 12 64 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER oe maxinun @ = HEAN HIGHER X = MEAN 


12345678910 12 64 69 7u 19 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER emenean © = MEAN LONER X= MINIMUN 


12345678910 i2 6y 69 74 79 
MONTH GF THE YEAR YEAR (1963-1981) 
RANGE o -} owr_nat tie © = MEAN TIDE X= STD DEVIATION 
x * x 
0.0 speatnn ss X JEXKXXKXKXKKKKXKXKKKXK 
x 
-0.5 Ef 
12345676910 i2 6N 69 7u 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-23c 


206 


0000°t mrnve 9gnert= eQ00U%S rn00? 2f66° «I * « 

956° 0000° 2gr8°le #9566° 9000" ceouehk «2 * w0L0G? gei0® Siin*te= egong? Satoe sesh ses 
9S66° doco? 6929° l= 29566" 0000° mgtoeh «ef « a2Ho2? S4toe Joun*te wouege eqtue ngloes #659 
9566° mnco® Salu®t= *«9960° Govv0® sceoctl en « alone? vqud? 400M? to spastic? ay00? Sa2set ans 
2too° 00009 bote*t= »9566° gud0u" 9Er0°b ¥S * wold? wad? Meor?t= wucoy? S.to® 98fS°l 89S 
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696° Sito* 494L"t2 awalylo® Gouu® Ond0°h 26 * aS2ie® nnvo® Gect*t= wedge? Prod? 0645°b 6S 
nine? nnoo® nagi*t= ale.o® nndvy® Ingo°th edt * alae? mnuve 90GT° Te a6 9ge?® moo? begsetl #09 
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nS26° egto® 4tsd*le #@1So° 000u° qno0ret eet * eS0te* nnuo® Orie te wzyoe? ounoe Covert 22g 
f2to° 8900° eind*l= #aise® v009° mntbeb aft * alone nnud?® 9S5er°t= s2goes nnoue nolo*s) 269 
St06° Sii0° ossd*t= #f1So6° ge00° Gr2t°h ant * «etue® 00uv0" celiac be erase? mrou® Gocdo°t #9 
0999" Szro® 99¢L° t= s05ne° 0o0u" 9ngteb est e eyloe? ecioe wwud?be ennge? bv00¢ 96T9°t 859 
neoe? e120° 2Atd*t= #0¢ne® Aydu® dnni®h «9 * «9981° mnvo® SOug*t= «aunee wHw00? 4oroel #99 
S9ne° bg¢0° boud* t= #2nFo°® 0009° wnSich a#lf a eangt? oteve b2o2°le wy9¢e° wend? 96S9°t 249 
notre? £920° Stud*tl= e2nfo® Satu® ongi*h et a af29t° egiue wfue?l= «lga2e? ectue 66999) #9 
tSad° 40¢0° 2509 l= #19to® mndu® OSdieh wot a vabonte nnou® MGae* le sonte® mnvo® 00g9%T 269 
mnsi® Sito® eneo°t= ef elo® Gdto* bsetth sv2 * edont? nnvd? ba92% be agcte® vuno? Tueces #04 
e9g4° 6t20° S9L9° = sknow® Sato® 2soi*t wt2 « enonte nnoo? dese*te #gute* geno? 200g°b ahd 
ents? 40g0° bag9°te s2uie® wH0u® £S0e°! e222 * e09gT? gud? n0S2°te #Qgioe® mou? Cobeet ved 
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ton9? o120° vend t= s2q6d* Apdu® 9si2°b Se a angtte 240° awSee°te alles? Ooous 9unme?t age 
2429° SLt0* Lni9°t= «569L° nndo® dsne*h #92 ® #iSot? egio® o9ie®te wtidie mn00°® L4oSget wad 
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ntgs° 2cto° Tto9* le e2tnc® oleo* toge’t 20¢ * #20408 nnood® Sivl?lb> agigs? @900° Thoget 20¢ 
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o40n° £920° 4LUS*te= so04ss° obeo® bigc°tl aGn “ #ot20° 0000° Coul*t= sgga0e mnov® b26e°) 206 
9ten° nnoo® neoS*t= «tSEs* Silvo® eLon°! alin * e6120° oco0° 9lon*te ania? ey00? 22ue°h «lo 
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nagog* mnoo* d2onr°t= alfiin® nnvg® niin®tb efh * 2eg ioe @Aud? ond0° t= #Goco® egtoe nedorh 266 
Ongg® mnoo® fran®t= ef69n® Satv® Si2n*t enn a annooe 0000° S990°Te eE920° nn00® S2io°l #76 
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beng? egto°® Zosn®le #9yEn* olev® edsn*tl ein * annoo® o0u0® Stno*te wegto® nnuo® a2%e°h 246 
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oe2c° ganoe Senn*te «Sg0n® 4ufo° Qedn*t son * ennuu® v0u0® o720°b= eggus? mnu0Ue OGvo®s 266 
e02c° nno0? 2ngn*te wg2e2ic® Gdto°® baen?l 60S s annud?® 0008 n9Otuebe eaennji® Joovue VEoo°s 8005 
asic® @900° egen*t= «f4G¢° GH0D* 2yon*h els « annud® nnugo® bQu0%t© enn? mnioe 2g00%2 e104 
TOS SCAES TE Cee ere eH AHS THe Ke AHHH HAH H KECK HHH EH HEHEHE AHS THEA HEHE RV H ARE RK OKAARTHAHT HEHE Tee eee RTE KAHReeAHHKEROHeAK eee 
* “odd ATwIT)  # °0344 tInI1 «© °On « °odyd AlwI] 8 ° 344 AlaI7 © °ON 
@ °wNd *naag 4q"07 # wn) “oan 43407 eSSvije a) *odud a3v01 a 4nd “oqud 43407 asSv1) 

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207 


Table B-23b 


LOMER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED wITN RESPECY TO HALF THE MEAN RANGE 1,258 FEET, 


8 MIGHER HIGH RATER s HIGH WATER to) HOURLY VALUES t) LOW WATER 6 LOmER LOm WATER 
s se s s 
CLasss LUnEgR PREQ, CUs,* LOWER FREQ, CUM,® LOoweR FREQ. LOWER FREO, CUM,® LOWER FREQ, Cum, 
NO, © LIMIT Re LIMIT FREQ,*® LIMIT LITT FREG,® LIMIT 


SSOeSeessF ee eeosesesesessses COSS ee eTe Eee ESEESES SOS eeePeessPeegees Seeeeeesesoesseegesg 
1o1® a@00052 00001 200018 2,003%2 00001 00001% 2,0032 0000 200008 e,04u0 0000! 200018 
100 12@s7o 00005 000048 14,9858 20001 20002% 14,9047 ©0000 000008 e,,v620 00001 200018 

99e 129708 00001 e000 1,968u 20001 0000S 41,9262 20001 090018 ©,0800 20000 200018 
98e 109547 2000t 20007% 1.9510 20001 ©0004 14,8878 20001 290028 @,098N 20001 200038 
OTe 129385 20010 e001B 1.9336 20000 e0010% 14,8493 eoune 200048 e,1160 00006 200098 
Soe 109725 = 20Lu09 00027 1.9162 20004 2000148 41,8108 ©0002 .0000% e,1 340 2v004 000) 58 
958 1e%062 edule 200398 14,8967 20008 ©0022 41,7724 200003 ,0010% ©1520 2un0y 200218 
Que 108900 20010 eOudve 3 ,6413 20003 00025* 34,7339 20005 20014 e,1700 20007 200288 
Ode LeATIS e015 20062 34,4639 20012 e0037* 14,6954 20006 00020% %,1A80 00010 200588 
928 104577 20012 200TKe 1 .hUes 00011 000498 41,6570 o0009 010508 wee2000 euNi4 200528 
Sie 108415 20027 eOLOLe 4 ,R294 20007 20095 34,6185 ©0009 20039% 2.2240 00013 200068 
908 124253 20015 eOli4e 14,8117 00013 e00HAB 4.5809 coos) 20050% e,2u2n eOni2 e00TAF 
B9e 14091 20015 01298 14,7945 29010 00079" 14,5416 20014 20064% &,2600 20017 200958 
RBe 1.7950 o0ul9 e0L44e 447709 20013 00091" 4,505) 00018 200R2% 242780 00021 oUl1oe 
R7e 127708 00012 e010 14,7595 00017 00108 {4,646 00021 001948 2.2960 00016 001520 
Boe 107606 00025 e01BO8 147424 20020 00129 14,4262 e©0u27 oO131% 065140 00023 201568 
QSe fe7uds 00028 202148 43,7247 20018 eOL47#® 443877 onusd 29105 255320 00035 8 =0lvie 
Bue 107283 0002) 002338 447075 20024 eO170% 14,3492 00038 00203 |, 5500 00054 002258 
Ase 1e%121 e0U02u 002598 4 ,0A99 00026 00197" 14,5108 00044 e92N7® 245679 eunun 202098 
B20 14209600 202s e0PRue {,o725 000287 e224 14,2725 00058 oN305F 2, 5A59 00042 e007 
B18 100798 ue | eOS158 1.0551 00025 e0249® 4423538 00065 o0S09® 24059 00053 005608 
80% jebos6 00US3 00$488 1 ,60377 20035 eu2b4e® 14,4954 20070 00439% e,4P19 ol047? e04ube 
798 {eouTds 20025 e0S7TS® {ehend 000S2 e0S16% 14,1569 ©0080 095198 2.4399 00053 o04o1s 
TAs 106313 00025 e0S9K® 4.6029 00019 003355% 94,4164 00091 oMol0® #,4879 09052 oNS1 38 
717e@ = $00151 o0udy e04S98 145855 20038 00373% 14,0400 00105 =, O715% 2 ,4759 20055 005048 
Tes 105990 0009 e047%® 1.5040 00956 00409 41,0415 00108 oOK228 ©4959 00078 eVouee 
7Se 105828 00042 ouS19® 1.5506 00049 00458 34,0050 00119 o094{F 02,5119 20069 oUTLUe 
Tue 1239666 e004 00S5%e 1.5352 00nue e04V9e 29046 e013%e o1073% ©5299 00078 o07TKAe 
7T3e@ 105504 20046 e0oO%e = 1.515R nang 005498 09204 oulue of 215% 2.5479 00085 oe OKTSS 
720 {0534S o0u5S] e06S08 JY ,u%ny 00059 o0h0R% 28b76 ovlus of $638 ©5059 0V079 eu9see 
Tie 10.698} 00uS4 et Tove y,uAin 20062 006708 oA? e162 01525% ©,5839 0 00K9 eloule 
708 1ed019 20068 oU77TH® {,4656 200005 eo7sse 0A107 0172 016978 ©,0019 0099 elas 
698 1te4ASBK 00U06u oNh428 1 eudoe oONKS eub1ee ell2e 001AU elB7o%® ©,6199 oll! o12518 
Ae 1e46% 20107 e0V4Ve 1 ,u2A8 00082 e0%008 27337 00175 20518 2.6379 20108 213598 
67s 104554 e0V82 oo hu$us Jeulia 20085 009859 06953 00191 022428 0©,0559 00409 014668 
668 1.4373 29085 e1115® 14,3940 20099 010648 26508 09185 02427 29,6739 00129 = 15978 
o5e 1e42th 00101 e1210% 1.3766 00060 elioue oh 183 001 AO o26138 &,60919 20116 ol 7150 
64e 1edo4ue 20116 ofS3e" 4.3597 00092 012968 05799 00179 027928 @,7099 20150 216u9e 
o3e 123AAK e0110 elgd28 14,3418 00099 §=61 3558 ould 00180 029728 29,7279 00156 20058 
620 1e3726 00107 o1S49e 4.3244 00110 01405% 25029 00178 031519 © ,7459 00155 221608 
618 105564 oO107 elo5oe 1.3970 00135 015998 0404S 00169 oS32u% o,7638 00175 02335° 
608 te5u03 eO11T o17748 1.24% eO1S4 of 7554 204260 e016) e348} ©, 7A18 010A 025ue® 
S9e 103241 001357 o1%108 1.2722 014d 018778 0387S 00156 03637" ©67998 00175 ecorT® 
She 105079 00149 e20S98 1.2548 200135 e2eles 0 3494 ©0152 e37H9% 417A 00177 e2hSue 
S7e 102917 00155 el2eles 1.2374 00159 021718 03106 e01d2 03951% 29,4358 00211 050058 
Soe 1ea@?5o e014da 023578 142199 00197 023288 e272} 00144 040758 | ,85548 00173 032589 
SSe 102594 00150 e2S13S8 162025 00147 024759 2337 00138 o4214% ©8758 00207 o3u45e 
Sdn 1e2use eulds oP OST 141851 ou173 o2048e 01952 00139 045528 =, 8A9K 00209 050558 
S3e 102271 00177 e2h$ue 1.1677 20178 02h2oe 21567 00138 o4u9)® 2.9078 00214 o SAT 38 
S20 102509 00164 024948 161503 c01To 030058 oN 183 00134 046258 ©,9258 eee? 041008 
Sle 101947 o0174 oSibms 31,1329 00170 o5173¢ 09798 00145 o476O0% @,943AR 022) ousel® 
59 10178 oOl47 o3350% 4545155 00164 o 33579 oN4is 00126 a4BAP® ©,961A 04225 045468 
49a Joloed 00178 o3S34e 440984 00180 035370 0029 00133 050208 ©9798 00254 ouTbue 
48s 101462 e019 oS7248 1.0807 oN 2A 03745% 0,350 00136 e515A% ©,997A 20206 e499 
u7e 401301 e0lo7 eS5918 1.0033 00189 039SU% AH 741 0184 052928 01,0158 20209 051998 #1 ,1095 e0172 04066 
4oo 1o1159 00175 edNboe 1.0459 ©0200 04135% wo1125 00154 054269 21 ,035A 00208 054078 © 141255 e0ee7 24893 
u5e 120977 00169 e4230e 1.0285 e020! 043360" @,1510 00135 055618 ef oNSiA 00238 2564U5*% &3,1414 2018) 05075 
44e@ 160415 00198 e4454e Yautts e210 045460% @,4895 eos 057028 ©) ,Un98 o0Plu 054598 91,1574 20215 25288 
u3@ 1e0e5u 09390 edneue 09937 00204 04750% 92279 eOhul eSKUS® Of OKITA 00210 260698 ef ,1733 2022) 25509 
wee Levude eens eibhes 29703 200215 04965® 2.2664 e0iuo 059AG® 1.1058 00192 eoe2ol? °3,1893 29200 0571S 
uie yenshu 0020S oSuble 0 G5N9 00elA oSIhS® op dd e0lay eO136% e151254 00203 eod4ou® ©},2055 00215 05930 
U0® 1600169 29217 952548 9415 VPLF = HUA «wy FUSS = LUY = BAHHF SLeLUIA = QUIRKE = pHOUUP M1 yPPte = 0e4S = gO PU 
398 Lenn07 20198 2545e8 29244 00214 056168 o,3h16 eu1S? obU4e% of 1597 o02it eOMSS% @1,2572 ur ob4ey 
yas eo FRU 00207 050546 o90H? 00256 05872% w,4e05 004d 065918 O1,1777 00194 o70N9% @4 6°53) Neue 26065 
576 e%ohu e020u oboe oHh9e e02e7? 000998 e587 00152 e674U® 21,1957 001? e72S1% 1,209 20¢28 2hB9S 
tne 09522 202047 ool 09%8 oKTIA 00262 e6302% 04972 90160 06904% 1.2137 00198 074299 §1,7855 tess 7126 
356 oFOu) 00en? ohSioe oA®S4uu 00238 005998 ©5357 0016) 07065% 91,2317 00199 076288 @1,5010 70200 07526 
jus 09199 20208 205248 28370 00255 ooASU% ©5744 0161 o7220% 91,2497 0019) oTH19® e1,517" 20205 01529 
330 09057 e02e5u eoTTKe eh19n 00239 07073% e,h126 20164 073908 el yecbs? o0177 e7990% ©},3529 Olle 07701 
320 08875 00207 oo4ASe 28022 00217 072908 2,651) 0170 07500% 91,2657 20177 oB173e oy, 54A9 20178 0 TBTE 
tle 08714 00285 o7214%8 0 7ARUR 00213 07503% ©,6095 00169 07729 21,5037 00156 eh3e%e 91, $048 20130 2O0tu 
308 08552 20189 o7unTe 207674 200180 07064® 2,72AG oolr2 07901% 91.3717 00150 ohu79@ =} ,3808 09140 e154 
29° oA 39y s0lo2 015098 27599 00146 078708 92,7665 00164 08070" 91,3397 00136 06615% 91,3967 09140 others 
ake 092A 20208 o77778 27326 20198 2000K® 9, AUK 00167 2082378 91,5577 20417 87528 -1,4)27 20121 tuts 
27s oP on7 eOleu 79418 07152 0197 08205 =,Ausu 00164 oh401% 21,5757 oulo8 ebA4)® @1,4PK7 eO1ls 08509 
209 07905 o11f2 oML1 be 26974 00203 06409 2,AB19 09160 eASo1% ©) ,5937 00105 eh9us® =-1,4446 00098 oHoeT 
250 o774S 60189 o*s0e8 eoAla 00170 0565A% 02,9204 00155 oh 7148 91,4117 eungn oV0S48 =] ,4000 20115 flue 
ave o7Sh2 20129 eAatie eb630 20350 08709% 02,9584 e045 2ABSO8 a} ,uaot eunTT 291118 my d7oy 20088 eAddO 
ate 27420 e0lb6d ohS956 26456 =o 0100 089498 02,9973 00137 089968 =1,4u77 00079 = gVLH0% $1 ,4925 0105 o89S3 
228 07258 20129 ehT2ue 26282 00157 0906O% 01,0558 e0le4 09120% ©] ,4657 200K2 092729 $1,505 20090 09025 
els 07097 20150 Pt 2061048 00122 092079 of 0742 00323 oI24U% = 1 ,4AS7 200908 09340 @1,5¢e44 0008) 09105 
206 20955 el2e e028 205934 20124 093528 01,4127 20109 093558 109017 20009 094098 =1,5404 20076 09179 
198 00773 0011S 091158 057H0 e0tol 094$2% 01,5512 00096 o94UU9F 91,5197 20062 e9471% ©1,55635 200K6 e967 
joe ebol2 e912 292278 25586 00099 09531% 01,1696 0009) 095598 H1 55576 0005) 0952e% 91,5723 20088 09555 
178 26450 00107 oIS34e 05415 0008" 096160% ef ,A28) aQ0AS 09624 ©1 45556 eunsa 095708 =}, 5KA2 20007 oF423 
los 2b208 o97 oIGS1e 05°37 00063 ©9078® 21,2606 onu7s 096979 =1,9756 eU0ou 29O4NF 1 6042 09009 e949) 
156 00127 00094 o9SPue 05005 ©0956 09735% 01,505 ©0060 09T50% =105916 osha 09078% M1 ,b2i2 20 006U 0955) 
jue 254965 e0U6S5 09598 e4AKO 00048 09762% w1,3u3S e0uu9d ePRNS® #1,0996 00049 o972H® =1,6501 20UTd e902) 
130 2SHOS 2OUeL 29516 04715 2oouu oVA27® wf, 3H2U) 00039 eIKUUF® ©] ,077d oUNS7 o9705*% &1,6521 00057 09078 
12e 0564) 20U64 097158 e45u4 00057 09405® ef ,u2uu 00034 eIBTY® =) 60456 00059 eG )4® & 1 .b0AN 00005 09140 
116 oSuby 0005) 0976586 e436? 00056 eGAY9® 01 ,U589 29028 29907T% H1e0H46 20046 eVA5S0% ©), 664) 2042 09782 
108 05318 2u037 oIhuee 24193 2002S 099248 wf ,u97u 20022 09929% ©} ,0A16 2002s e9B7He =} ,0999 20076 09058 

cry 05350 20US4 29h soe 04039 20014 099424 ©1,5358 20020 099499 =] ,0996 00046 0992U8 @4,7159 00054 09095 

Ke 04995 20030 29Boos o SKUs eonla 09954® 01,5745 20015 0996048 91,7176 20M? 099UG% @ 14,7519 2003) 09924 

Ts o4K33 20025 eIN91e 0367) 20013 0990B% ©f,6128 00012 09977% ©1,7356 00015 099019 Hf ,747b 00UlY 09943 
6s 04671 o0U36 099278 o 3497 Cd 09962 64,6512 20040 099b6*% =157536 20084 09975® $1, 7656 20025 09909 
Se 64510 022 P4498 = 3323 ONS =o VHT 04,6897 =o UN? = F99S% MH 14/710 6 0NFA =. FHHT@ @Y,7797 = OUI Sn DBA 

ue ed gun efuel e478 03149 20007 09994% 01,7282 20U04 099968 @=1,7A9H 00007 099948 94,7957 20010 09995 

te o41Po D015 eIASe 0975 20002 099969 21,7666 ©0l0e 699998 o1,407h 20003 o999T® HY HIIT 20005 29990 

eo 0425 eOU07 44950 Ln 20002 099998 of KIS] eOCOK FeOuto® =1eb)eso GMa 299498 @ 1 KeT6 20005 09999 

1s estes e0U0T LeNvoue eebe7 e0001 LevHU0F 24,436 20U00 1,0000% #1,tuso eLOC1 be00008 #1 ,5430 00001 120000 


208 


o 


“Taal alll atana 
ill yvyy a / [ [' i i i eae 


= Mall lalallala lah hal ch 
Di wala en i hh |’ /' |’ AVA 


25 
HOURLY TIDE HEIGHTS 
JANUARY 1963 


Figure B-24a 


KEY WEST. FLA- 


Extreme Monthly HW 


Equivalent Te 


Distribution 


Extreme Monthly LW 


ave: = 
O01 Ol -ser  —ee = 10 So 50 G90 20) 30 99.9 99.99 
Mean Range = 1.26 ft 


Figure B-24b 


209 


KEY WEST, FLORIDA 


DOCOGBADOABADAAHDBADA 
XKKXXMXKKKKKKXKKXKKXKXX 


x-o 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER o = waxinun @ = NEAN HIGHER X = MEAN 


uonoooOMDHaaADaA DA M000 


GCHOBooHHOLZOO00O099009D 


123456789810 12 6H 69 
MONTH OF THE YEAR YEAR (1963-1981) 


LOW WATER © = MEAN © = MEAN LOWER X= MINIMUM 


PHOF[HFZ MAG aAAgAmnanad 


2OTO0OHHHOTG9298900 


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MONTH OF THE YEAR YEAR (1963-1981) 
RANGE ® -] owr;nat tive © = MEAN TIDE X= STD DEVIATION 


XKKKKKKKKKKXKKXKXKXXKX 


12345676910 12 6N 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-24c 


210 


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Table B-24b 


LOMDR LIMIT OF CLASS INTERVAL SHOMN, ALL HEIGHTS ARE NORMALIZED mITH RESPECT TO HALF THE MEAN KANGE oos2 FEET, 
® HIGHER mum aaTeR ¢ HIGH matTeR ° HOURLY VALUES O) LUw WATER ® LU@ERK LOW RATER 
e r) 8 8 ° 
CLasSe Lunek pREQ, Cums LOnER FREG, CUM.® LOWER FREQ. CuR,® LOnER FREG, CUMS® -LORER PREG, Cue, 
@ LiayT PREO,S LIRIT FREQ,® LymrT FREQ,8 LIMIT PREG, Q 


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fole 2.8439 00002 200028 28,8139 20001 00001 2,8159 ©0000 200008 25027 0¥00) 
louse 28.7902 00005 000009 28,7798 00003 00004 22,7600 ©0000 2000008 04725 ovo0e 0V0ges 
999 2e7oo4 40002 200048 24,7457 40002 00005% 2.7072 0001 2000018 04422 20004 00008 
980 207427 60003 =o DUILF «2e7116 60004 60009" 2.6539 0001 000028 04420 00006 8=,u0iee 
978 207190 60000 =o 0017 «266775 40004 00013® 246005 0001 e0U03® 4$818 ,0009 ,voele 
908 260952 00006 00023" 22,6434 00008 00020% 22,5472 ©0002 000058 05519 00057 000588 
958 200715 20008 000508 246093 20008 00028* 2,4u95e 00003 000088 S213 ev0ll 000498 
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9$e 2eo2esu 00008 eO0d7® 245414 00011 00051 22,3871 ©0005 000178 026u8 20028 200990 
920 200002 60014 .0060® 255070 .0017? 00068 2,3334 00005 00228 07306 ©=6,v022) = gO 218 
919 205765 v0eo 000808 2,47a9 0013 c0051% 22,2604 .0V07 00298 02003 60035 401508 
908 205527 eOvla 000938 2.4388 00038 00090 2,227) 00009 000588 e170! ev032 001688 
A9e 26529) 00u24 eOlL4S® e2,unu7 e00en eo1L4® = 2,1737 eQule 000518 03399 0V040 e02ebs 
688 20SyS2 Ove) 00335 263706 00920 00153" A,i2u4 eou14 00065e 01096 00040 002068 
67?e 2,4815 e0U24 091504 2.33605 200as 00157* 2,0070 00022 000878 00794 00058 003078 
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008 1eB4Od = =o016S =o 2331% 164158 00133 =o 29008 06266 = 0165 = 2544 47370 86g V2UB = g 30539 01,1950 0914S = 3475 
59e 108106 e0lou o24950 1,5617 00138 0 504U6 25732 00175 027208 a57673 00220 2036738 ©3,2155 20195 03030 
S88 107929 60158 =o 20539 16347 «=o YIU =o S1: 938 05199 00175 = 2H96% 047975 40212 o4066% =1,2580 50170 53605 
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548 300979 00106 oSS4uU 13,2112 00166 038098 23065 ©0205 03672% 02,9165 00178 04855 o1,5200 Oe be) o44so 
538 100744 00168 035060 451774 00127 03950% 22531 0212 036048 o,9ub7 001,80 250359 ©4,5505 00144 04540 
S2e 106504 0156 36038 151430 00194 040908 01998 00216 441008 ©,97869 0161 °1,373) 00149 44729 
S18 106207 60188 6 36538 141069 20154 euzuue o1464 60217 =44317% 01,0092 00179 953768 =3,3956 0370 04099 
Sve 108v29 00159 e4ulese 43,0748 00179 e4ueus 00934 ©0222 o45SB6% OL U3Hu 00160 05555% 01,418) 004s 05044 
49a 105792 e0lou e41708 1.0407 e019! 045748 00597 00215 047535 ©) 0697 00140 4400 0170 e22lh 
uBe 165554 00150 e4$208 45,0006 00183 e47S7® @,0136 0214 049088 01,0999 00103 056389 ©] 463) 00162 0539 
u7o 105317 00185 045108 09725 00194 049519 w,o7u 00210 o5176% of 61301 00145 059638 01,4656 00159 0555 
Goe 165079 20170 240808 09364 00158 o5110% 01203 eves 05591% 153604 e015! 0O135S% &1,5ubj 0010) ooT1S 
u5e 1e4bue2 20173 46530 eFO4¥ = oO1ST =o 52608 ow e1737 =o 0216 = 607% @1519V6 4130 =n 203% &1,5506 20185 45697 
gue Ledou" 00152 050058 o67u2 00109 05430% @,2270° 0212 05B19% 2162209 00152 064558 91,5551 00170 06007 
GS 104307 69145 51478 28364 00176 =o 612% «©, 2804 00214 = 60538 e1ee511 oU1Gd = 905598 §1,5757 0165 po232 
u2e 104429 e0144 o5e9%ee 28020 00190 058U2% 02,3537 00224 06257% ef o2A\3 00151 eO71U% &1,5962 00150 063866 
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379 Leevue e014? eo0bl1e 06515 00175 06714 756005 00249 07354% e1 4325 evled 07395@ =1,7307 20)50 07250 
3o@ 102705 c0147 yoe2ve 05974 20106 =696681% ©,6538 00211 07505% e104628 8 201uU0 =o 7555% O1,7532 6018S 2 74U0 
3$® Jo2u67 016} 205K90 05653 = =00173 =o 7054% 6,707 cV1A6 o67750% 0104930 0140 07075% 9167557 10189 47029 
348 Je2e40 00105 = 969558 = 45242 =o 017% =o 721% 047605 60178 6 7929% 145232 013A 07813% 9147/82 40162 7010 
330 101992 00150 067058 04951 0017s 07404 w,AL39 ©0166 080958 #1 ,5555 00129 07942% ©{,800b 00198 07968 
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308 foletu 00140 071558 03928 00176 079004 00,9739 00133 08520% el ,o4u2 00142 e6321% 91,8085 0014S 08586 
298 tol045 00158 o75130 03567 0017a 060799 01,0273 00128 ef6ube ©) ,074U 0150 64519 ©1,6906 00109 08515 
269 1.0805 e017] oTubue a 32uo 00157 08250% 01,0606 00117 o4766% 91,7047 09125 065708 91,9133 00095 28609 
278 100508 e0lou o704uBe 02905 00170 e84U0% 01,1340 00110 08870% 91,7349 00127 o6705S% ©) ,9558 00089 06098 
zoe 100330 00346 077940 02504 00172 06578% 01,1873 eul04 089808 01,7651 00134 ,6837% &1,9583 0010 08016 
259 (160093 40108 =o 79628 = 2223 01 SH = 712% 0142407 00105 49084 ©1,7954 0109 .69u0% #4,9406 40305 A423 
2ue 69655 20202 o8lbue 21662 oles 08B8S5% 01,2940 00098 09185$% ©} 4256 0108 09055% &2,0054 00105 09028 
ese 04018 00150 ebS1u8 0154) 00195 00940F of ,347u 00091 09274% 2446559 o00bu 091588 92,0259 00069 0911? 
220 o9Shu 003354 ob4ube 21200 00130 091208 73,4007 00087 o9361% e181 24096 092358 ©2,0484 20092, 69209 
218 0914S 00555 oBDASS 20AS9 00044 09214% 01,454) 200079 094398 0169103 00005 093008 ©2,0709 00060 09286 
208 68905 120 B1048 = 49518 =o 9099 =o 912% 15074 007K =. PS1U® 01,9466 40074 = 93734 ©2,0934 000% 49357 
198 966608 0143 ,60u78 00009 693b1*% ©1,5608 00069 9542 0169708 0069 o9442% #241159 40005 e%u22 
146 oAudu 00129 259708 00060 o9441F 01,614) ©0060 096499 ©2,0070 00075 09517% 92,1584 20080 0950) 
17s 06145 00129 091098 20006 095U7* ©1,6675 00056 097078 a260373 20060 095778 =2,1609 00009 e971 
16° «1950 Oo i) 092198 09056 09503* 01,7206 00053 09760% 22,0675 o0M2 696598 ©2,1654 00056 09626 
15® 07716 0107? AS52208 ©0047 096109 ey,774e2 0049 ou04u 096648 ©2,2059 40059 69685 
14e e746) 00095 YUN 7e 00049 99659 ef,A27S5 00037 0V0U3 = V727% &2,2285 40053 49737 
139 =67243 gO 10 0IS208 00093 o09712% ©1,8609 0032 00052:  -g ¥779® =2,2510 2004) A778 
12ae 07000 20092 oFO168 0090S) 0970U% 01 ,935e 00027 20043 oVheee © 242745 20055 9812 
; 706 0008) 090908 00034 09797# &3,9876 00022 00033 09655% =2,2460 00044 09656 
106 e053) 00068 =o Y7o78 00033 = =69651% ©2,0409 0019 00052 498674 =2,5165 40056 49892 
90 06295 20062 e9624e 20044 09874% 02,0943 ©0016 099619 2252792 20026 099154 92,5410 20032 09923 
66 06056 10039 »9Bobs 00050 = 9906" @2,4476 00012 o9974% 2.45094 40026 09959% @2,5655 ,0024 49947 
Te 05618 00ude e991 U8 200e2 099289 »2,2010 20010 099839 02,5397 00022 099o1% 92,3860 ofS 09965 
oe 05561 00033 oI9U38 ©0022 099508 02,2543 20007 099908 2263699 00016 09977% 92,4085 ° 
Se 05344 00017 099590 200486 099084 02,3077 ©0006 09995% 22,4001 00009 o99HO® 72,4514 00006 09986 
ue 05100 0002) 09908 00015 699638 22,3610 00003 099989 w2,43504 00008 09995% @2,4536 20008 09994 
te 24609 20008 oI9Rbe 20006 09909% e2,u,au 00001 09999% 22,4606 200ud 099978 22,4764 00005 09997 
ae o4o3} s0u08 099958 000u8 099979 e2,uo7? 20000 1500008 22,4909 00002 09999% a2 4986 00002 09998 
le o434u 20005 Jeune 0000S Jo00U0* o2,42)1 80000 169000% =2eS5eyi 0¥001 150000% 2,521} 00002 14,0000 


212 


wv 

e-} 

~ 
° 


St. Marks River Entrance 


HOURLY TIME HEIGHTS 
APLES, FLA. JANUARY 1963 
EFERENCE STATION: ST. MARKS RIVER ENTRANCE, FLA. 


Figure B-25a 


MSL 


Equivalent Gaussian 
Distribution 


-0 
MLW 


MLLW 
-20 
Extreme Monthly LW 


Noples, Fla } 
-30 | ———— Reference Station: St.Marks River Entrance 


0.01 0.1-30 -20 10 -o 50 090 eo 30 99.9 99.99 
Diurnal Range = 2.99 ft 


Figure B-25b 


213 


NAPLES, FLORIOA 


oo fu] 
a 98g00 "p729%p,o 000 


C®oaoTPGaKROODAVOABDAADO 
XMM KM KM KKK KK KX 


12345678910 1e 6Y 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER @ © WAXIHUN @ o EAN HIGHER X @ MEAN 


1235678910 12 6 69 7 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER owenen © @ HeAN Loxen Xo MINIMUM 
2. 
BMA 9 9g, g® COOF®FHO8GOH HAA Anaad 


L.JFoc®e gogo Heg SHH HA HHHLHHOLHCHCE 


1239W¥S5678910 i2 64 69 74 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE © = mead T10€ Xe STO OEVIATION 
0.5 
x x 
0.0 xxx™ i HEX KM KK KK KKK KKK KOK 
-0.5 EX %4 
12345678910 le 6 69 7M 719 
MONTH OF THE YEAR. YEAR (1963-1981) 


MEAN SEA LEVEL 
Figure B-25c 


214 


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MILVM MOD SOW FIM LK9 8 HTLV HOTH °OW AWIHLND & 


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NOITLINAS NOTANUTaLlsta 


215 


e 
s 
Cla LOwgR FREG, 
N LIM? 
oe SSSSHS eS HSSESSSSgesssss 
101% %05370 20001 
$008 10042 20003 
9% 164915 00006 
988 124784 20007 
O7%e 104656 00013 
Gos 104527 00019 
95s 104396 20021 
948 104270 00022 
Q3e 10d y oy 00913 
G2e 104012 00036 
Gis 103884 20036 
908 103755 20049 
89— 1ed020 10045 
BBe 105498 00045 
87e 103309 e0ude 
Boe 103240 00055 
BSes 103,12 20003 
Bus 1.2983 00S) 
63s -102854 00067 
62% je2726 00046 
Bie 408597 0079 
808 1e2ye8 00072 
79 102340 00085 
76e {ed@2ii 00076 
778 je2082 0009} 
Jos 101954 000% 
758 101825 00084 
74% 116% 00047 
73% 101568 00096 
72% {01439 200118 
71s $01310 00103 
70s 101482 eOlta 
6% 101033 00130 
68s 1009246 00318 
o%s 100796 00139 
60% 1006007 0440 
oSe 100538 OU ted | 
o4s 100410 00170 
ose 100264 o0SO1 
2° 100352 0172 
o1e 100024 00190 
08 09895 00172 
598 09767 00179 
580 0%%38 00469 
57e 69509 0103 
Soo 0938) 00173 
5S0 09252 00164 
Sue 09123 00173 
S3e 08995 00105 
S2e 08860 00176 
Sis 06737 00182 
S06 08009 00217 
49s 28480 00175 
ube 06551 00173 
uve 08223 00197 
ues 06094 00166 
use 07965 00173 
ues 07037 00195 
use 07708 00176 
ues 07579 =o 03.87 
ais o7uSh oOLAy 
40s oT322 00179 
398 07193 O17 
380 07065 0194 
37s 06930 00137 
Joe 06807 00179 
358 00679 00164 
gue 06550 00139 
330 e642) 00152 
3ae 00293 00148 
318 oejou 00139 
Joe 00035 00145 
298 69907 0126 
289 09778 .011u 
276 05049 o01a7 
208 05521 00114 
25¢ 03392 10088 
2ue 05265 00064 
ese 03435 ©0100 
226 0$006 00007 
aie 04877 = 0082 
20¢ 04749 40087 
19% 4620 00057 
1896 o4u9y 0005) 
178 04563 00072 
169 04234 0004s 
158 04105 00057 
jus 03977 00042 
13° 03A46 = 0039 
128 03719 = 0043 
lis 0359 00042 
108 e402 8 8=, 0025 
98 03333 00024 
66 ©3205 00022 
7s e070 20016 
os 02947 00016 
Se 02619 00010 
as 026090 00009 
Je 0256) 00013 
2e o2us3 20004 
1s 0a3ou 20001 


® 
Cun,e 
FREQ,8 


000018 
000048 
000108 
200188 
000318 
000S1e 
200782 
200948 
001086 
o014se 
001798 
002298 
002736 
03160 
e03s0ue 
004156 
o047Be 
00S299 
005908 
200428 
o0%2ee 
o07dse 
008708 
009598 
o104oe 
oll4ys 
ei2ess 
oljiaes 
ol4o7e 
0152s 
ole29e 
017420 
ol87be 
019908 
o213Se 
022709 
024200 
025979 
o27SBe 
029300 
oSi20¢ 
oSe91e 
oSd71e 
osouoe 
o3b028 
039708 
041370 
o4 S100 
o4b7Se 
040518 
48350 
050508 
e520 
053960 
05595e 
oSTo1e 
039550 
061276 
063080 
004928 
0667358 
0085e8 
970298 
o7eloe 
073738 
075530 
o7VI79 
078508 
080088 
of15o0e 
oSa9se 
o84u00 
08S09e 
o80bae 
05609 
969258 
o90119 
0909Se 
091950 
0920208 
oF SUue 
o9U310 
094888 
095380 
090108 
090538 
090910 
097350 
o97710 
096158 
096578 
9 I0R28 
099008 
o992Ke 
099458 
699618 
099726 
o99B19 
099948 
299998 
1.00008 


HIGH WATER C) HOURLY VALUES 
8 
LOnER FReO, CUM,® LOWER PREG, 
LIMIT FREG.® LMIT 
POSE HK ORS ESSE TOO ESESORROSERG 
305170 00001 000018 1.9170 00000 
1.4993 200003 00004 4,4810 00008 
1.4816 00005 00009 41,4450 00008 
1.4037 00008 000378 14,4089 00003 
124400 00012 00089 14,3729 00000 
104262 00018 o0047% 14,3368 00009 
2e4iud e0082 00059% 14,3008 00041 
103926 00026 00005% 14,2048 0016 
1.3740 00031 e01168 41,2287 00019 
103571 00032 00148 441927 00026 
103393 000e? 00175 451566 ° 0029 
to3216 00043 00218% 441200 00037 
1.3038 00040 00258% 14,0646 eouuds 
1.2860 00046 003uS® 54,0485 00050 
4026083 00044 o0347® 4oni25 00003 
102505 00055 c0403® ,9764 0075 
1o@32? 00058 004o1e 09404 ©0080 
402149 00069 0530% ,9044 00090 
101972 e007! 00601% 28653 00098 
101794 00007 006098 94323 oOssd 
101016 coor! 007K0% 07903 00118 
101439 00068 0062e7e 07002 00127 
1e12o! 00092 009198 07242 0014! 
1.10683 00100 010198 06884 00153 
120906 00108 olieue 06521 0016) 
1.0728 00106 o12350° 0610) 00373 
1.0550 00139 013498 25800 00188 
1,0372 00140 014098 0S440 00199 
100195 00124 016358 05079 00204 
1.0017 00197 017708 04719 00219 
09839 =o 0141 019128 04359 = 0 0227 
09662 00144 02056% 03998 00au0 
09484 =o 0147 =o 2048 23038 8 §=002auS 
09306 00147 o2351% 03277 00246 
09128 00158 025099 e297 e02a2uu 
08954 00153 020029 02537 eoeui 
08773 00189 02821? 021% 00236 
08595 00180 030018 01830 00229 
06448 00178 031798 01475 00222 
08240 o01?2 o3352e o111S o02@23 
060602 00171 o3S22¢ 00755 = 0217 
07885 00178 =o 37008 00394 00217 
07707 00189 o JAB98 00034 00ei7 
07529 00205 04094 e,0527 00213 
o 7351 00190 042648 @,0087 002@15 
07174 00173 o4US7S wof047 e02i2 
206996 00201 040599 @,1h408 00206 
06418 00204 048628 09,1768 0019) 
26644 00203 050059 0,2129 00187 
26463 0200 05205% ©,2489 00576 
06285) ©=— 0217 05462% ©,2849 00164 
0610? 00226 057089 e,3210 00154 
05930 00229 059379 ©,3570 00153 
05752 00201 06159 09,3931 00139 
05574 0221 06359 o,u2% 00134 
05397 00209 065089 6,463} 00126 
05219 00208 00776% o,5012 00325 
05041 00215 06991 02,5372 00122 
o4Aou 00208 07199" 02,5732 00819 
04686 00205 07405% 02,6093 00119 
04508 20222 07626 06453 00109 
04330 00200 078208 0,6814 00109 
04453 00194 080209 o,7174 00100 
03975 00196 08210% o,75354 00095 
03797 «=o 0177) «=o B393%® 2, 7H95 00094 
23620 00166 085008 ©,8255 00090 
o344R 00147 087068 aAblo 00087 
o320u 0147 08853% e,A976 00083 
03087 c01a4 089778 0,9330 00079 
02909 00098 090759 0,96097 00076 
o2731 00085 09159% 01,0057 00073 
22593 =o 0091 092508 ©f,0418 0072 
02376 «= 0079 «=o PEABY 01,0778 0067 
02198 90070 093999 01,1138 00065 
02020 00001 09400% 01,1499 00062 
21643 0047 499079 01,1859 0058 
01665 60949 995579 ot,2220 00054 
01487 «60039 0954%6% 01,2580 0005) 
01309 0041 09037 01,2940 0040 
o1132 00044 09601% of, 3501 00044 
009Su 00050 o9711% 01,300) 0004) 
00776 ©=— 0 0031 09742 of ,4022 00038 
00599 0003S 097789 of use 00033 
00424 00028 «66 9806% e1,4742 00028 
00243 00027 098359 01,5103 00025 
20006 00028 09662% 01,5463 002) 
eo0112 00024 09665% 01,5624 00019 
2 ,029n 00016 099019 ef 96184 00016 
2.0408 00018 099199 04,6544 00013 
© 50648 00022 099419 01,6905 00041 
2.0823 00030 099519 01,7205 00010 
2,100! 00011 09963 @1,7620 09007 
eol17B 8.0011 099749 01,7986 00006 
2.1356 20010 099848 01 A346 00005 
oo1534 00003 099679 01,8707 00003 
eolTi1 20005 09993% 01,9067 0001 
2.1489 00003 099969 01,9427 00002 
ee2007 0001 099978 29786 0001 
2.2245 20001 099988 02,0148 00003 
2.2422 0004 099999 02,0509 0000 
222600 60901 100000% 2,869 +0000 


Table B-25b 


LOWER LIMIT OF CLABS INTERVAL SHOWN, ALL HEIGHTO® ARE NORMALIZED BY HALF THE DIURNAL RANGE 
WIGHER HIGH HATER e 


216 


8 
CuM,¢ 
PREG,® 


SoeeHesoogeseosoesgs 


LOW WATER 


LOWER 
LIMIT 


04409 
04156 
03908 
03051 
03398 
03145 
02892 
02040 
02387 
eeisu 
oS A81 
01629 
ol S76 
oli2s 
00870 
00017 
00365 
o01t2 
e014) 
©,0394 
©,00u7 
©0899 
e,l1se 
@01405 
©1658 
@,l9s0 
2.2163 
@o2416 
@02669 
@,2922 
eoS174 
© .3u27 
©,5080 
o,3933 
2.4185 
04438 
204091 
e,49uu 
©5197 
eo54u9 
2.5702 
2.5955 
2.0208 
© 046) 
2.0713 
206906 
©.7ai9 
©,7472 
eo7veu 
007977 
2.8230 
©,duey 
©6756 
22,8988 
©,924) 
©,9494 
©,9747 
2.9999 
©} ,0252 
©1,0505 
01.0758 


101516 
2101709 
e1,2n22 
e1.2r74 
o1o2527 
©10e760 
e1oS033 
2105286 
o1.353A 
1.3791 
e1.4044 
21,4297 
21.4550 
21.4802 
21,5055 
e1253048 
e1.55o1 
e1,5A13 
@106066 
2100319 
e1.0572 
©1,0825 
e1e7077 
o1o73350 
°1,7583 
e1e7A3So 
©1,6086 
e1,83u1 
©) ,6594 
o1,6A4u7 
21.9100 
ele3s2 
21.9605 
1.9858 
e2.0ist 
e2,0304 
©2.0616 
©2,0869 


PREO, 


SESS HoSESESSERee 


00001 
00005 
00007 
00010 
00014 
00017 
00040 
00032 
00030 
00033 
000408 
00044 
00051 
00048 
0007S 
00070 
00056 
00084 
00099 
00118 
o01ead 
00166 
00162 
00186 
00176 
00177 
00208 
00216 
00190 
00187 
00196 
00170 
00105 
00154 
00156 
00135 
00145 
oOtad 
00150 
00151 
00140 
00150 
oblol 
o014u 
00158 
00141 
eOlol 
015d 
00144 
00119 
00143 
00136 
00139 
00142 
00951 
00135 
oOlel 
00119 
00120 
00127 
e014! 
ola 
00128 
00153 
001S7 
00145 
00123 
00114 
00113 
00154 
0011? 
00116 
00107 
00120 
00125 
001148 
Ou 
00075 
00062 
00071 
00083 
00007 
00058 
00056 
00055 
00046 
00044 
00033 
00032 
00039 
00025 
00021 
00014 
00010 
00015 
00006 
00007 
00002 
00004 
00001 
00001 


10495 Peer, 


s LOWER LOW WATER 


LOFER 

LIMIT 

weeese 
00001% e,335}) 
2000008 e,3520 
000338 a,370) 
00023 a,3b70 
2000378 0,405} 
200558 4227 
00095® e,44u02 
001278 @,4577 
201S7® ©4752 
001908 «,4927 
2002388 ©5103 
20282 02,5276 
003538 ©,5453 
0057609 e©,5028 
204Sle 25805 
00521 ©,5978 
00579 o,6154 
20663 ©,6329 
200702% ©,6504 
200808 @,6079 
01904 ©,6654 
27030 
2,7205 
01538 06,7580 
o1714@ @,7555 
oh 8918 ©,7730 
020998 02,7906 
o2315e 06084 
025088 o,8250 
02095 0,843) 
028948 22,8000 
030039 0,878) 
032298 0,6957 
033839 20,9132 
035398 09307 
30749 0, 94R2 
oSAL9S 0, 9057 
03905 © ,9033 
o4113e ©1,0008 
o42648 01,0183 
o4404S 01,0558 
045538 01,0533 
047148 01,0708 
248S8% 1,084 
049908 01,1059 
051379 ef ,hesu 
052988 01,1409 
054528 o1,356u 
05590% 01,1760 
057159 01,1955 
05858% 01,2110 
05990% 01,2285 
001309 ef ,2400 
062738 ef ,2035 
064249 01,281) 
00558% 01,2960 
060798 01,316) 
067988 01,5536 
069368 of ,3511 
27045® ©, 3087 
o7180% 01,3662 
073279 01,4057 


07725% ©1,4562 
07670% of 4736 
079938 01,4913 
061078 01,5088 
©1,5263 


25458 
e8471% ef Solu 
065679 01,5789 
9609U8 ef ,5¥6u 
06615% @1,6139 
08959 ef ,6314 
©1,0489 
06665 
©1,06u0 
093098 e1,7015 
093608 01,7190 
094039 ©1,7565 
095508 ef, 7544 
095688 ©1,7716 
eVOUU® 01,7091 
090998 01,8066 
e97U4® 01,8244 
09760® 01,6417 
098219 23,8592 
098538 01,8707 
098929 01 8942 
299588 1,917 
099598 01,9292 
299538 ©, 9408 
099038 ef ,90U3 
099788 of ,9818 
099648 01,9995 
099908 ©2,0168 
099938 ©2,05uu 
099978 02,0519 
099998 02,0694 
1,0000% 02,0669 


FREQ, Cum, 
FREQ, 
sooeceegnncees 
00004 00005 
20003 = +,0004 
20006 000 
00003 00013 
00004 00018 
00013 0003) 
0002) 00052 
00024 0007e 
o00Sk 00308 
20039 00147 
00000 00206 
20000 00274 
00082 003535 
00097 00450 
200868 00536 
e00T79 00018 
000% 0707 
00335 00844 
00120 00900 
oles 01063 
00127 i210 
00139 01549 
20156 01467 
20458 elo2u 
60459 of 73 
00148 ol 9th 
wo 0S18 02030 
00150 02360 
00142 02302 
00145 o24u7 
00193 02599 
00129 02728 
00150 02664q 
00160 o3oug 
0938) 3225 
20353 o 3377 
00127 03504 
00441 03045 
20342 03787 
00159 03920 
005) o4077 
0147 o4e2u 
0017S 94599 
00158 04553 
oONTd o47e3y 
00103 §=—, 4886 
00178 =, 5004 
00168 09255 
00370 05429 
00375 205604 
00187 S794 
0087) 09462 
00147 00308 
00170 06285 
0035) 06430 
00166 e6003 
20187 20790 
20153 06945 
o01es 07100 
00157 o%2o3 
00133 07390 
00175 07570 
00188 07758 
0170 07934 
20150 04090 
0014) e625) 
00116 06349 
29090 08445 
00124 08509 
200099 208007 
00117 08784 
00311 06095 
20105 28998 
00URe 09060 
00079 09159 
00076 09237 
00075 09512 
00079 =. 9594, 
00072 99463 
0006) 09524 
00004 09589 
20037 9026 
2005) 09077 
00045 09720 
20049 49770 
20040 09010 
00037 0 90U7 
00027 09874 
00024 29898 
20015 §=,9912 
00033 09925 
2002) oIV4e 
20038 09904 
200007 09972 
00U0T 09979 
90004 09984 
00001 09985 
20009 29994 
2000S 49997 
90004 09999 
0000) $20000 


MHHW 
MHW 


MSL NSL 


MLW 
MLLW 


HGURLY TIDE HEIGHTS 
ST- PETERSBURG. FLA- JANUARY 1963 


Figure B-26a 


Extreme Monthly HW 


Equivalent Gaussian 
Distribution 


Extreme Monthly LW 


0.01 0.1 -30 -20 10 -o 50 o 90 20 30 99.9 99.99 
Diurnal Range = 2.19 ft 


Figure B-26b 


217 


Slo PEVEHSAVNG. PLO 


o 
BPO, BAO 


o,o2oO0m8 


lasso vee) vel de . Bt 69 74 79 
MONTH OF THE YEAR YEAR (1965-1981) 


HIGH WATER oa « waxieun @ « NEAN HIGHER X = MERN 


(A395 HSS 7) lel ada Bl 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


LOW WATER oe=ween © = MEAN LOWER X= MINIMUN 


123085678910 je 6yY 69 74M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE oo -~ owr;nat Tie © = MEAN TIDE Xe STO DEVIATION 


XK KKK KK KK KKK KKK KKK 


12345678910 12 6u 69 7U 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA REVEL 


Figure B-26c 


218 


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9@00° 
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s.to° 
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Sito® 
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Teee° 900° 
068° 0000° 
700e° mn00° 
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e6tlL® 9900° 


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02fo° 2 efot2e 0000° Otse°te egzuc? £920° €sen*t en9 
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LtSe° * 2gto2® geg0d0®  ns22°te efeng® ag00° tsmnes 299 
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f4t2° sen * ann00® 0000° tege°= enmnoo® 0000° LOL4°S 206 
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219 


LOner 
LINyT 


107904 
107755 
1e%o0o 
1o7uS? 
1e7308 
107459 
1eTolo 
100862 
1eo7is 
100564 
feeuis 
106266 
Leoyi? 
105908 
105819 
105070 
10952) 
1oS372 
105223 
1oSo74 
104925 
104776 
104627 
1o0u78 
104329 
104189 
104031 
105842 
103735 
1035564 
1o3u35 
1e3286 
103,37 
108986 
102839 
102690 
10254) 
1068392 
Lok2us 
1o2o9u 
101945 
101790 
101048 
101499 
101350 
40120) 
1oloS2 
100905 
1.0754 
100605 
100456 
100307 
100358 
100009 
0%860 
09714 
0%So2 
Vals 
o%20u 
0915 
08966 
08817 
0466 
04519 
08370 
822) 
080%2 
07925 
07774 
oTe25 
o7u%o 
o73a7 
07176 
o7029 
06880 
0073) 
0658@ 
06434 
06285 
e610 
05987 
03838 
05689 
05540 
05391 
05242 
03093 
04944 
04795 
04646 
04497 
04348 
04499 
04050 
03901 
05752 
056003 
oSuSu 
03305 
03150 
03007 


FREQ, Cum,e 
PREQ 
00008 000080 
00000 000086 
20000 000088 
00002 000058 
00012 000198 
00005 000208 
20008 e002e7e 
00000 000538 
20003 000308 
00006 e004ee 
00023 200098 
000086 0007s 
0002) 200940 
0002) e011Se 
0002) 001 3oe 
00025 001586 
00027 oUlboe 
00055 02208 
0004) o0doks 
00044 003040 
00044 003496 
00046 003978 
00uS7 206540 
00066 e0d21e 
00056 008778 
00065 o0o4uje 
00089 o073U8 
00065 007958 
000% 00888 
00094 009796 
00310 010998 
00100 011 69e 
00098 o1267e 
00310 015986 
00086 ol 4Abe 
00404 019896 
00301 010900 
o0l4y olBSuo 
00115 ol%ube 
00110 020590 
00128 o2@l Aue 
00146 o2@s$oe 
00337 o24o8e 
00365 o@osae 
00330 o2Toas 
00148 029108 
00149 030540 
00lb6 o3e2Se 
00358 oSsGu0 
00156 oS5one 
o0lla oST41e 
Oly 054180 
00109 o4087e 
0016u o4a719 
00205 o447o0e 
00190 e4oooe 
00169 048356 
e0loy 0499be 
00219 oSei7e 
00184 Oe 
00184 055809 
poles 057558 
0018u =, 5¥37d 
00360 oOl17e 
00152 OO 
00186 004556 
061060 obo218 
00225 00808 
00152 0699Be 
00198 071578 
00160 o7d178 
00172 074890 
00185 oTo7\e 
00358 o7B3ue 
00325 079556 
001¢2 oA097e 
00365 ob2o1e 
00154 084156 
00346 o4Soege 
06166 087298 
00325 068SSe 
00119 089740 
00125 090998 
00124 o922U6 
00109 o9S2Be 
©0109 o94378 
00106 o95use 
00100 o9ougs 
00074 oI7156 
00055 097008 
00066 o9B3ae 
00053 098858 
00024 099008 
o0use 099580 
00018 099508 
00020 099709 
00006 099828 
06006 o99Rb8 
00009 099978 
00002 299980 
00002 14200008 


HIGH WATER 
LOWER PREG, 
MIT 
Seeggeesssees 
1.7900 00001 
107006 00000 
1.7474 00001 
107285 00008 
307038 00006 
1.0822 00003 
120605 00004 
1.0388 00033 
100172 00033 
1.5955 00036 
105739 20038 
1.9522 000d) 
105306 000S2 
1250890 00053 
1.4672 40032 
124656 0040 
104439 00093 
1.4223 00087 
1.4006 0003 
103790 = 0006 
103573 20070 
1.3397 00003 
103140 0007S 
1.2923 00079 
1.2707 00083 
102490 00095 
1.2274 20008 
1.2087 0009) 
101843 00115 
1.1624 00133 
101407 o01a8 
oti o0sl2 
10097u 0011e 
1,0758 00137 
400541 00149 
1.0325 00138 
100108 001357 
09892 00160 
09075 0016 
09458 00188 
09242 00102 
09028 00138 
08809 001 sd 
08592 =n 0198 
08 STO 00139 
08159 00150 
07944 00179 
07720 00146 
07509 ,01d8 
07293 00105 
07076 00176 
206860 ©6014 
06043 o0los 
00427 e01ol 
06210 00176 
05995 00170 
S779 00159 
05560 00149 
05344 001S4 
05127 0017s 
e494 o0lod 
04694 0017) 
04478 00107 
o4201 00188 
o4044 00175 
03828 00202 
oSOi1 00179 
03395 00105 
o3178 00193 
02962 00203 
274s 00167 
02528 20200 
o23ia 00108 
02095 00178 
01879 0015! 
01662 00126 
01446 200109 
01229 00090 
01013 e0lla 
00796 = 0 0098 
00579 §= 0004 
00363 00093 
00146 00102 
2.0070 00086 
©.0267 00084 
©0503 000358 
2.0720 00056 
200936 00040 
©o1153 00040 
©1370 000353 
©1586 00022 
©1803 00023 
2.2019 00081 
2.2236 00021 
©2452 00018 
© 02669 00019 
©.2A86 840011 
©3108 00008 
o.5319 00007 
2.3535 00006 
eo575a 00003 


Table B-26b 


LOWER LIMIT OF CLABS INTERVAL BHOWN, ALL HEIGHT® ARE NORMALIZED BY ALP THE DSURNAL RANGE 
HIGHER HIGH WATER 9 ri 


1.00) PERT, 
6 


oe WOURLY VALUEO 8 LOw WATER — LOWER LOm WATER 
8 8 

CUM,® Lower FREQ, Cum,@ LOWER FREQ, CUM.® LOWER PREG, Cum, 
BR ® LyMiy PR LIMIT FREQ,® ‘LIMIT PREQ, 
SOSOSSHSEOSSOOSOHOOSSSSHE OHO SOOHSCOT SS SOO OH EOSOTH HOO TSO OSESOOSEDOSOOOOR OODLES 
000088 1,790 00000 00008 485% 40001 0001 a,ib6S 0002 0002 
000019 $7520 00000 900008 oH611 20002 900028 e,1848 0002 40003 
00002 43,7147 00001 200019  c4303 20004  »0007% o,2030 20002 0005 
00009 41,6709 060003 e0002® 04115 40000 900128 e,2213 0005 0000 
e0085% 140390 00002 00048 43867 40008 90021 e259 0000 0015 
00018 4,0032 00003 00078 3019 40008 40029 ,2579 0008 0023 
00023 41,5033 00005 00128 oS371 c0022 900820 a,270) 40020 0043 
00030 1,5255 00000 00108 5123 00039 400918 0,204 0017 0059 
00048 44477 200009 000278 02075 000UA 001398 o,3327 00020 00085 
00004 $,4498 60013 ,00408 2627 ,0077 40217 ©3310 ,0032 O17 
00083 43,4120 00016 400868 2379 40093 90330 ©,3493 0027 0145 
e003 1,374) 00021 oO077® o2131 o012t eO4319 ,3075 40032 00177 
0013S 143303 00025 901028 918863 00152 905638 ©,3858 0033 v0eho 
00108 442984 00030 032% o1035 O13? 20720 ©,404) 004i 40254 
001998 4426000 00034 201608 of387 .0153 2086548 o,4224 0050 030) 
e0245® 442227 00039 .0205® S159 o01U9 010038 ©,4406 40059 0304 
00R98® 4,4849 060046 002519 40893 c0147 01149 ©,4589 40004 0425 
e0344S 451470 00054 0305 0043 10156 043058 o,4772 10085 0510 
00408 441092 00058 03638 40395 40120 o14258 ©,4955 ,008) 40594 
0474s 41,0713 000d cO1U7 §=90448 915738 @,5538 20082 0073 
005448 440335 00076 005008 o,010! 00149 o17228 e,53520 00075 00747 
006F0% ,9956 0077 077% 60349 60130 918528 25503 40100 ,0b4u8 
eOTII® =, 957H 00087 906048 220597 20146 919908 0,5086 0317 »0965 
00790% §=649399 00091 07558 02,0845 2.0135 oa133 0©,5669 40099 41004 
e0e7ue 08624 00100 1093 40133 e22008 2,605) eOSI7F =o h 884 
00%O7% ,8443 0107 1341 00120 ©= gp 2BGO8 = e,o234 01 = KAA 
01005 8064 00407 1969 00135 25219 o,6417 ,0s'4 y1400 
o3155% 47086 §=—o 0494 00150 926718 ef6600 ,0114 3524 
03209 §=,7307 0125 00126 «=o@7970 0.0783 =, 0348 = 4008 
of Soye 06929 00134 00124 e29218 0,698 00155 0625 
015308 46550 0138 cO117? §«oS037S o,7,GH 90142 41965 
eloee? 06172 00a? o01ed oSiole 00035 02128 
o1741% 45793 00149 00134 932908 e0120 92254 
o1877% 45415 00150 00130 odu2ee 00825 =o 2579 
o20e79 05030 00168 021968 @,3574 00107 eS5550 00487 02560 
e2165% 4658 001480 00120 «= » 30550 00101 =n 2728 
e2302* 4279 40198 0122 9 ST748 20345 =, 2072 
e2462® 4390) 0205 00130 439048 00325 =o 2997 
020199 43522 cde22e 20122 940208 00357 =o S354 
e2747e® =, 3344 =o AU? 00130 «6g UI S08 00390 = SSUG 
02909% = 42705 004887 00112 «= 2008 00375 = S549 
030668 ,2387 .0a7e 00125 «=, 4d 0Re 00355 = 9 3074 
oS201% 42008 00276 00143 ,4SS08 00390 «=, 3805 
03558% = =,1030 0 0479 00132 »4ooee 00180 40a 
034976 = 1252 0260 o0l2@1 47898 o0S72 G21 
030476 = §=40675 0 0489 00130 00545 = gh S04 
058278 0049S =o 0US 00833 c 00363 4520 
059728 e01l0 c0aue 00148 ©1,0255 0210 4734 
o4id0e 00235 00137 21,0438 .0198 4932 
0420se 00218 00104 1,002) 00398 = 54.29 
o4u7ye 00219 .60118 ©7542 40435 @4,08604 40346 5277 
edosae 00200 00139 01,0987 0174 o5uS4 
o4y7ue 00197 e01ua ©1,1169 00218 5008 
o4035e 00183 00127 2101552 0180 5848 
oSII1% 2.2535 00170 00119 963519 ©1,1555 0185 46030 
052815 «2932 c01?2 00137 101718 40189 46219 
05441 ©,3290 0162 20140 21,1901 ,02)0 6435 
05590% o,3069 00152 00135 1.2083 .0187 6623 
eod7448 64047 ocOlus 073938 0©,9526 oulue 81,2260 §8=—6019S = gs OBIT 
oS917E w,4U20 00140 479398 o,9774 yOLN7 1.2449 ,0383 47000 
000798 00144 476838 ef,0022 0129 e1,2o32 0183 7183 
062508 00335 o7B17% e1,0270 40445 Pyo2b1d ,0192 _T3TU 
oous7e 00128 =o F9US® 01,0518 0142 P2570 01,2997 40583 47557 
00004e eO127 «=. BO72® O1,0766 00128 673809 94,5180 20348 47705 
007798 00123 = B19S® ofo1014 00139 275259 ef,3403 0140 47645 
000618 00316 «=oB313% eloei2o2 0191 1.5540 20400 28015 
07100% 00118 064319 01510 00930 e1,3728 0045¢ 0F163 
073508 00400 .85379 0151758 0157 P1391) 20542 8308 
o7Su98 00108 086U5® 01,2006 00342 081099 01,4094 00326 05429 
o7Ysae 00104 ,8749% efo2254 20447 82500 01,4277 044s 8572 
079508 00403 988529 efo2502 ,01U2 ,85988 04,4459 40519 , 8094 
081588 00108 069538 of 02750 2013S ,8533% ef, 40u2 0123 6814 
083008 00088 =—6 9041 01,2998 0137 480098 o1,4825 40520 8935 
obubue 00080 © §=—6 op NAT OLoSBUG 40107 oUTT7® 01,5008 0147 9052 
o8o3ue 00084 = 92118 $3094 40110 .8891% 01,519) 40008 9120 
087008 0008S «492948 of,5742 40117 190089 01,5373 0104 p922u 
06870° 00079 «=, 9STE% 453990 60101 091098 01,5556 ,0087 o9315 
289008 00076 994498 01,4238 10106 9215% 01,5739 .0058 9508 
09071% of, 617 00068 oFS17® ofp UUbb 00086 «493009 04,5922 00088 09454 
091699 04,4995 00070 095878 wf U7SU 00108 2106104 00082 09555 
09253% wf ,2373 00089 096468 of 4982 00002 00207 00064 09594 
093409 01,2752 00050 697018 efoS251 00055 2100470 »005¢ 9045 
09448 01,3150 00008 97508 01.5479 0079 ®1,0033 ,0029 907K 
095348 04,3509 0042 997928 of,5%27 00U2 ®1,0836 ,0047 972) 
09618% 01,3887 0037 498299 01.5975 0002 1.7038 ,0027 9749 
096765 ©f$,4266 00035 098048 of ,0223 00053 ©1,7201 20044 09793 
09732% e{,4044 00030 »98958 00035 e1,7384 ,0032 9829 
09772 0f,5023 00023 99179 of50719 0024 o7507 ,0017 9642 
09812% 01,540) 00019 99308 o1,6907 002d ®1.7780 .0038 9880 
09844 01,5780 00014 499508 wf.7a15 0033 21,79$2 .0038 9698 
09806 0146158 00014 999658 ef.7463 0021 1.8415 ,0032 9910 
09868% 01,6537 00009 o997US wh e7TI1 00019 099308 01,8298 00017 09927 
09909% 01,6915 00008 199828 04.7959 0015 199450 01,8485 ,0012 9939 
099309 of, 7294 00006 2099878 of,8207 20008 099538 0f 6063 00014 09953 
09907 147072 00004 999919 0158455 0012 499658 01,8646 0015 49960 
099678 01,8054 00003 099948 01,8703 00082 099788 01,9020 20000 09970 
09977% o1,8429 00002 699978 01,8951 0007 599858 01,9212 0006 49960 
099859 01,8607 00002 499988 01.9199 0004 499698 01,9395  ,0000 49986 
099925 01,9186 00008 099998 01 .94u7 20005 099908 at ,9577 00000 09992 
099979 01,9564 00003 150000% ©1,9695 10004  .9998% 01,9760 0006 9996 
$00000% 01,9943} 00000 1.0000% ©1,9943 40002 420000% 01,9943  ,0002 14,0000 


220 


ai AVIWIViViWs¥/ xv AN ALA Aa AANA AA 
ake a a es 


21 26 
HOURLY TIDE HEIGHTS 
6T. MARKS RIVER ENTRANCE. FLA- JANUARY 1963 


Figure B-27a 


MSL 
Equivalent Gaussian 
Le Distribution 
MLW 
MLLW 
-20 


0.01 01-30 -20 10 -o 50 o 90 20 30 99.9 99.99 
Diurnal Range = 3.37 ft 
Figure B-27b 


22\ 


ST. MARKS RIVER ENTAANCE. BEA 


0 
eF%9,0 Jaa 


egnoanougnovogaau OOD 
x 


Ves Si 7 Ghee) We at 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER o « waxinun @ © WEAN HIGHER X = MERN 


Bo0aTTAGgaHonoaoTM Of AMA a2TD 


®ODTHGAHOHOHHoHF9P999 CH 


12345678910 ile 6 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o@ = ween © = WEAN LOWER X= NINIMUN 
2 2 


Ono OF Ogg eo” PHOTeTe Fee eeeooeo 


1.3 P92 GMO g MOUS HHM FHHOFHHHHHHHHTH0O9R 008 


12345678910 ie 64 69 7u 79 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE © -@ owrnat toe = MEAN TIDE X= STD DEVIATION 
s 5 


x Mie KKK KKKKKKKKKKKK KKK 


123456786910 te 6 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-27c 


(4 (22 


0000°t nmnoo® 95£0°22 20000°S n00° fots? at ry P . 
9566° prod? 6n20°2= 29¢466° 0000° 9424° a2 a 29ter? 9900° bogn°’te= 22999° 0000° dnntet 22s 
Zto6* mn00® Tnt0%2e 29G66° 0000° 654° of a ee24r° 2eto° {San°te 24999° ecto? OgSt*s gS 
9996° @e@00° ££00°2* 29966° nnd0o° fnne° en a 296Sf* SLlt0e 9nan®*te #6fG69° nn0o® Ct9tes ans 
beL6° Hoo? S266°t® 22166° 0000° 9254° aS e ebent? ze1o° @lgn°t= along? 2ctoe 4o9t°t 26S 
4fL6° 0000° Btao°te #2166" 0000° 0194° “9 a eoecr? e@sto° Ofnn?te s09¢9° 6120° Ogdtet 29S 
446° 0000° Ofdo® te e2}66° mn00° {694° ad e egstr® ge00° 22in°t= sdntg?® noo? n9etet #45 
4€16° 8900° 2096°T® 29996° nn00® CORRS Pt) ® e0406° nud? Sten°te 49609° 8800? 4not?s 99S 
6n96° nno00® nono®le 25296° 0000° 09e4° 6 a 29206° egto° 40tn* te 060098 0000° te02*s 26S 
$096° @900° 4afe*te ss296° 00° in6a° 20t * . 95682° 2e10° o665°%* 26009° noo? ntbeet 209 
else? mn00° 6lz26°t= atuio® nndo° 42098° alt 2 ef942° siioe Foat°te 06965° eqtoe doteart . 219 
nano? 00008 bito°te siglo’ ge00° orte® e2t e eanse? npnoo?® naca°te sgfas? 2gtoe teeeet 229 
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s s 2 8 6 2 
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CLasse 
NO, 8 
S885 
fois 
1008 
99% 
980 
7s 
Gos 
95s 
ods 
93s 
920 
oie 
908 
B99 
86s 
Chay 
860 
aSe 
64ue 
B36 
bas 
61s 
608 
798 
788 
778 
768 
738 
748 
738 
Tas 
Tie 
70¢ 
698 
68s 
679 
668 
oSe 
ue 
ols 
o2@s 
els 
606 
$98 
58s 
578 
Soe 
5Se 
Sue 
S3e 
S28 
sie 
Sos 
ude 
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uve 
uos 
4uSe 
uae 
q3e 
u2e 
aie 
4oe 
39s 
3ae 
378 
Joo 
35° 
jue 
33s 
32e 
jie 
308 
29e 
2bs 
278 
260 
256 
24s 
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228 
ais 
208 
196 
166 
1%6 
joe 
156 
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136 
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108 
9s 
6s 
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26 


1e 


HIGHER HIGM WATER ° 
s 
LOweR PREQ, Cun,e 
Lay? FREQ,® 
SSCP SSSSOSO SHOTS SSHSSOSS 

1e$534 = 0001 20001 
1e3u02 20000 200008 
105270 20006 e001ke 
109139 60009 0021s 
105007 200015 2003ee 
104a7s 00013 200408 
1o@745 00018 200678 
LeSoi) 20022 000896 
1e4u8y 00022 201118 
104548 00039 001508 
Led2ie 20037 o0187e 
109984 0025 02128 
103952 000350 o0edee 
103821 00046 60286 
103689 20059 0034Be 
103557 00048 2039Se 
feSu25 0082 04778 
103293 20070 00SuTe 
103162 00068 ,001$e 
1o3030 00076 200918 
102898 00083 oO774e 
1okTbo 200089 208638 
1e2634 00129 = 09938 
102503 00098 10918 
102371 00128 ol2ibe 
to2d2s¥ 20122 oljuoe 
1eByo7 00117 014588 
101975 cli o1S775 
101844 o0lb62a 017386 
Lel7l2 00319 of 8578 
101580 20153 = e20108 
foluus 00165 021750 
fel3i6 00180 023550 
1ot185 00128 24830 
101053 00 du e2027¢ 
100921 00168 027990 
100789 0152 29470 
109658 00109 oSitoe 
10520 00174 odeate 
100394 00184 o3uobe 
e022 00159 30278 
100130 00105 37928 
09999 60168 39608 
09867 «e022 «=o HOB a8 
09735 00346 o422te 
09605 00174 o4u0ie 
29u7) 00135 4S$oe 
09340 00158 0460 
09208 00156 048508 
09076 00178 050288 
04944 00155 oSlALO 
o8Ale e01ds oS3iue 
0868) 00356 054708 
08549 00366 o5o3be 
08417 00132 057088 
08285 e014u o591e8 
08153 =o 0144 060558 
28022 «=o 0122 =e #788 
07690 00160 063368 
07758 00138 ebu7ue 
07626 00140 obo{ue 
o7u%u 00337 007508 
07363 0144 208928 
e725) 00137 070288 
07099 0122 071508 
06967 00107 o7a57¢ 
06835 00129 073Boe 
06704 00147 075330 
06572 00150 o7o8us 
e0U40 00147 076318 
063596 00123 079546 
06176 0122 080768 
2604S 0340 o8e15¢ 
05913 00155 oF 37U8 
23781 20128 o649ue 
03649 060103 286008 
09516 00113 obT1b0 
23386 00100 o8B1be 
03254 60107 489208 
05422 eOllt 090318 
04990 20069 86491 2u% 
04859 oO11d 092550 
04727 00108 eee 
04595 00092 .943Se 
o4uey 00046 094830 
04534 2006u o95UTe 
204200 60056 696058 
04068 §=40052 49655 
03930 20059 097158 
03804 00043 097588 
e372 00045 098048 
03541 20036 096576 
03409 0003) 0 9BOBe 
03277 = 0025 = 9H DS ® 
03445 20022 099158 
e3013  =60025 «= 99418 
02682 20010 099578 
02750 200018 099756 
02616 2Cuo0u 099798 
22ubo eOulu 099908 
02354 e0U1U te00008 


Table B-27b 


LORER LIMIT OF CLASS INTERVAL SHOWN, ALL HEJGHTS ARE NORMALIZED BY HALP THE DIURNAL RANGE 


$003 FEET, 


HIGH WATER 8 HOURLY VALUES CU) LOW WATER 8 LOWER LOW WATER 
8 8 ) 
LOWER FREQ. CUM,® LOWER PREG. CuM,@ LOnER FREQ, CUM,® LOWER FREQ, CUM, 
LIMIT FREQ,® LIMIT FREG,® LIMIT FREQ,® LIMIT PREQ, 
SSHSSHSSSH SSS SSSSSTSSSF TOSSES HSHSOSS SSSTSS EHTS SSE ST SSH TESS H TSE HSSSH CSTE HESHES HSE EES HOESESEEEER 
1.5534 0000) 00001 1,5534 ©0000 200008 09115 0000! 000018 e,2514 2000) 00004 
105353 00003 00004% 14,5175 00000 00008 04860 = 0001 0000R8 e,2692 ,0000 0004 
1o5172 200004  00008% 43,4816 0002 00028 04605 0004 60006 «267 00008 20003 
1,499} 00031 000198 41,4457 00003 000058 o4351 0000U 000108 0000) 00004 
104841 20011 00031 4,40098 00005 000108 04096 00030 000198 00000 00004 
1.4630 00013 000438 14,3739 00007 200188 Saul 20020 200408 00007 0012 
104449 40014 060058% 34,3380 0011 00028% 45586 0016  .0055% 20012 ,0024 
104208 000ek8 00086% 14,3022 ©0015 000458 o3332 00019 o007Ke 200010 o0uSu 
1.4087 000281 eOL07® 41,2665 0002) o0060ue 03077 00025 000998 60025 20060 
1.3907 00020 00127 41,2506 ©0024 200688 02822 00029 ovlebe 0001S 00075 
13726 = 0041 00109 141945 oc0u3d 01228 02568 0046 01740 20028 «40103 
1.3545 00035 002048 141586 00039 011% 02313 00040 e0ei4e 000485 oOLu7 
1o33ou 00083 00257 43,3227 00046 002098 02058 051 002058 20054 00204 
103183 000409 e03U6% 14,0665 ©0055 o0264u9 01803 00001 003208 00007 00268 
103003 00056 o00362% 14,0509 00065 203298 01549 =,006F =» 03938 0007S = OSUS 
102822 00058 00420 1,035¢ 00072 004018 o129u 00078 oOUTLe 0005) 00594 
1.264) 00082 ©05u28 09794 00080 004828 01039 000K6 005578 2,539 200085 00480 
102400 00uT4 005778 09433 0008u 005668 00785 00094 20651% ©,55u7 00082 00562 
1.2279 00089 006064 09074 00096 006628 00098 007498 0.5726 e0sle 00074 
102099 0090 00756 ~,A715 00099 407618 00107 60856% e,590u 20100 9078) 
101918 00106 08029 08356 = 0115 = 08 768 00127 90984 o,60K42 40105 20684 
101737 009d 009578 07997 00310 009928 o0%id 010988 o,6264 200086 00973 
1.21556 00130 010678 07638 00126 01120% e015! 012298 e,6439 201e? 01100 
101375 eoied ol2ie4 07279 00336 012588 00153 015628) 2,6616 00132 olese 
101195 =o 0118 =o 1329® = 92H =o OL UK = gs KH E 00154 = 9 535% 0,679 60115 o1S47 
1.01014 00118 oldure 06561 00163 015698 00152 016668 «©,6975 20115 01463 
1.0833 00147 o159ue 26202 00171 017408 00185 018738 ©7155 20165 ole28 
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224 


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HOURLY TIDE HEIOHTS 
PENSACOLA. FLA- JANUARY 1963 


Figure B-28a 


Extreme Monthly HW 


MSL = 
| 

MLW quivalent Gaussian 

MLLW SO 


-30 
O00 OL =3er =2e7 110 =e 50 o 90 20 30 99.9 99.99 
Diurnal Range = |.30 ft 


Figure B-28b 


229 


PENSACUEA GEeGinn ne 


n®O nog 


15 Uh 1) i r so ° oo oo” 
5 nO 
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123-45678910 ie 64 69 74 719 

MONTH OF THE YEAR YEAR (1969-1981) 
HIGH WATER 0 = waximun ® « HEAN HIGHER X = MEAN 
BSS8RR 


BBggungegeee 


xxx XX xy 
x 


ly rs SeGie708n 8) Lope eel 69 7U 719 
MONTH OF THE YEAR YEAR (1963-1961) 


LOW WATER o «=ueen © = MEAN LOWER Xe MINIMUM 


1235678910 ile 64 69 74 719 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE ©® -] ovwrnatc Tie © - MEAN TIDE Xe STO DEVIATION 
5 x 
0 XXX KKKKKKKKKKKK KX 


SN) SiGe r7mel 9) LON Stee Gu 69 7U 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-28c 


226 


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Ses 100625 09179 o48736 0990U 00199 o476uUe 01271 oNel1s 044508 e,765u 00192 
558 100345 00181 e505ue 209608 00185 049498 09783 =e 0209 04659% ©,7980 00199 
S4e 1.0065 09163 oSei7a o73il 6otss 2St1us 0295 00213 otB72% 2.8366 00172 
Ste 097485 091R2 oSunue 09915 017A 052928 2.01938 e02at 050938 ©,8632 0017 
See 09504 e011 oSS718 eA719 00182 eS47U® 2,681 20216 e531Ne =, 8958 eOf7G 
Sis 09224 00179 057508 08424 0017) 05645® 3,1169 00228 oSS3B% 29,9283 0184 
Soe oAQ4uu 00178 oS5I2b0 08'26 00199 S844 06,1657 00223 oS7TO1% = 49609 018A 
u9e oF®obu 00195 061238 07439 e0trt 06015% 2,2146 o02Al 0S59A28 =,9935 002145 
uae oA 3Ru 00195 eb3ide 27534 00198 06213" o,2o03u 00213 0O195% =1.0761 00186 
a7e 08103 ef2ta 065326 27237 00105 06378 20,3122 202n8 06UN38 ©) 40587 00195 
doe 07323 00173 oo7NSe 06944 00159 065378 a, totc onen2 266058 91,9913 20159 
uSe 07543 09195 069058 20h 00149 066878 62,4098 00197 068038 91,1258 o01At 
ude 07263 00154 070548 2063409 00164 06859% 9.4540 00197 069998 9141564 00168 
ass 06982 09168 o72228 206952 0075S 070258 045974 e0197 07196% 01,1890 00172 
das 06792 09125 o7Su78 05756 00157 e7182% 2,5502 ©0168 oT3AUF m1 ,2c216 20182 
gis 06422 eOl4du 074918 05d0n 001358 07320% ©,6050 00194 075788 ©} .25u2 00198 
ans 06142 00179 o70708 05164 00114 074308 9.6539 00179 07758 ©1 42868 00172 
398 SAL oN1u3 o7Al 36 04567 204A 07582 2.7027 20166 o79A2U® 01,3193 00167 
38a 05581 o9144 079548 e457 0137 077188 06,7515 00159 0F®0A3% 91,3519 00169 
378 0530) eMle2 eA0Toe 0427S 00149 e7A6A® 6 A003 00154 082378 21 ,3ARUS 00152 
you 05921 eN1t3 ofl Ave 03978 o014u oBN12% |e Aur oot) eASTAS m1 4171 o01AQ 
358 04 74y) oO132 oAs2ie 2 3682 00149 eB8101% 2,A979 00137 eAS1ue ©} 4ug7 00130 
yds o4ub69 011% eAb27e 03 3R6 e142 083038 26,9467 oO135 oAO47® 91 ,4A23 oOluy 
338 od %O e119 ehS ioe 03790 00137 0B 4408 62,9955 09124 oPFTI1% 91 ,514AR 00122 
y2e 05970 e124 eFo74e 02793 eON1S 08555% ef grudg only? eRBAT® ©1,5474u e162 
ie o3nt9 e135 o5779Q- e297 oM1l2 oBbo8e 0f 66932 e110 2AQGAS 01,5900 eC1eu 
yoe 05599 0) 92 oMMT1S eee eu 94 eATm2® my y1420 0102 eo FINITE SL entean e122 
298 03°59 oA oAGHI6 01995 e073 ot t5Ue oy 61998 201nu 092908 9146452 00117 
eas 02779 0 73 Ie el hoa 20080 oBIL4F ©) 2595 00995 eF929UF @f ,O77H eotag 
ave 02494 eM oIlP se eo fSiti2 eooat 089954 01 24Au oN Au oFSTRE HL 471945 20904 
268 0P21h Peal) o92°48 ell 1h e048 0 9OBSF 01,3572 oNCTSE 094568 =1,7429 20102 
256 of D5 01°59 e9enTe oh T19 00903 09145% @f tHHn 39970 eP5ARE @ 1775S eVOBA 
Que 01654 ete 9 eIS37e eh 42h e00b4 092078 ef gusse 00764 0 F590 |] ATAL oN 198 
ase 01378 0D62 093746 ete? 00004 092718 1 ,Ud57 00958 096498 ef pAUn? 20099 
228 01097 04176 094758 940169 00090 093O1% 01,5325 0053 097028 21,4734 00Neu 
aie oOKIT 0003 095396 00957 eFULA® 2) SAIS enuu7 097498 @1,995A 2006 
Py 00537 057 095908 005) 09d09% =] KH 504 enndd 097908 ©] ,95RG 09746 
1%e 09257 ong 0F6c58 2095R 095278 01H 749 00037 ePWAPH® 91,9710 2040 
14e@ e624 2% So eI 8 e0Nut 095098 0{, 7277 00933 0 FP8598 02,0756 odNSuU 
178 65304 oD do oI7ine 00958 eFH1 78 01,7765 0A%28 eDBATE @2,0tbA2 0046 
168 069544 21°32 097788 00745 ©9000 @{,A25$ 00025 099158 ©2460 6A 002M 
198 e.0anu Ouran 29b0A8 20047 o97UTE wf ATU 00918 099508 @2,1018 00928 
148 61:45 een) oI he 00950 097418 01,9239 00915 09945% ©2,1359 009 
13e eo 32 Fb Te 0000S e97TmUe 01,9714 Ol ie} 0995979 22,1665 eNNta 
126 oF 33 099558 00n tn o979UF® @3,4206 e012 099798 =2,1991 e017 
jie 00° 24 99778 2orse e9A2U® o2,n69u ot )n7 099778 =2,e317 00016 
198 e6A?ho 00295 IIS 28 eo0et © PANS® oP,1152 00005 0 99A28 2 PHU? 00909 
96 eeAS46 od tb 099A v7e 009548 oIAAS® or 1679 onunu eIGDRTS @2,295A 0 U009 
Fe 252K 26 00. OR 0997 ne onnel 09915% 02,2158 00204 0 I9991% =2,5294 00°CD 
7a 203! 6 ote oI9Aoe 00016 099208 02,7646 ©0003 099948 @2,5HAn 00018 
oe 9633°7 o9019 099958 00M2U 0994U8 09,3154 ©0002 099969 =2,39Un 20009 
Se es3or7 of le 99978 00013 099578 =>, 3623 0002 099988 92,4972 e0Nnd 
de 0,35947 NUN? oI9I9Ke 20017 099748 od,u111 000M 099998 @2,4597 20009 
Se 642277 0000 oIIIAG e0nin 099K4® 09,4599 ennnt 1.90008 =2,4923 e0nnt 
26 061597 0999 99988 20906 099908 =2,5087 20000 1.00908 ©2,52u9 20003 
18 064788 09092 1.00008 00910 100000 #2,5575 ©0u00 1,0000% =2,5575 00001 


Table B-28b 


228 


09998 


e651 FEET, 
Us LO=ER (Oa waTER 
s 
CUM,® LORER FRED, 
FREQ LIMIT 
oe Seoeotegeosseoy 
e00ule 04121 00002 
000068 2 362u 20005 
eCO1ue 03527 200235 
eucsie otesn 00034 
000568 0933 09060 
o0NKle 22bt6 00039 
eolnte 22339 09060 
e0lee e2042 oNCUT 
091558 el7us 01040 
201628 elGuA 20140 
of 2018 o!15) 29059 
002558 00654 OCT 
203ene 20557 20049 
095908 00260 20068 
004578 = @ 0037 000S2 
005548 © ,938u 20058 
005858 =,063} 00047 
006308 2,998 0007) 
007008 @,1225 20075 
007618 22,4522 200To 
e0A1$@ © ,{h19 000A) 
008848 22115 2007S 
009668 |@,2u12 00097 
e1S468 262749 00194 
011198 2,306 00107 
o12308 |, 3505 ote 
13488 ©, 3000 00105 
el4718 ©, 3497 00089 
016008 24394 00169 
01755 2,449] 00118 
e18A78 | ,U7A8 001 3y 
029288 = ,5085 20154 
021798 =,55R2 09160 
of 310% =,5079 0012S 
o244he® =,5976 00146 
025948 ©6273 00185 
27428 0570 00170 
of A998 = hBh7 09168 
oS9AS® ©7164 oOl7d 
052598 oe, 7ubt 00147 
034378 ©,7758 0162 
036308 ©,8055 00164 
oSA¥AS 248552 001483 
a4 348 ©, 8ouB 00365 
e4218% |,8945 40180 
044108 ©,92u2 40185 
046098 29,9539 00199 
oU7TB2% = 49836 20214 
049529 =$,9133 00219 
05126% -3,0430 M172 
053108 91,0727 200214 
054978 @1 1924 20156 
oS715% 94,1324 00190 
059038 $1 ,1618 209185 
060988 91,1915 20188 
06257 =1,2212 0018) 
eO4SAG © 62599 00217 
26606% °$1,2806 00178 
067788 91,3193 00181 
269608 91,3400 00194 
071588 21,3697 00151 
073308 94,3994 09162 
074978 21,4294 00190 
07666% ©1,4588 o0134 
078188 ©1,4885 200152 
o80UR] 9$41,51A2 20128 
oF137% 91,5078 20165 
e82A48 ©1,5775 00125 
ohUC6® ©] ,6072 09120 
ot504® =1,6369 00130 
oFhYP8 |=] -anbh eO1l7 
eFHL SO SL yninsy 01999 
oh9216 21,7240 len | 
e9258 01,7557 00109 
eM1h® =1,7655u ° mr Bg 
092198 91 ,A151 oO1le 
095078 ©] AUB oICAT 
ePdV9e ©1 SATUS oNGbe 
eVURI® | 1 9742 20065 
095558 91,9539 00049 
0 IHL 4F 91,9636 20036 
296H7% 91,9455 0906S 
e97CNG @2,0239 290538 
097548 92,0577 009Se 
097998 92,9424 20032 
eFA2AS 92,1121 00023 
e9A5O% 22,1418 20023 
eGATH® ©2,1715 09016 
e9ANIE =P,2n12 ,N018 
099° 78 92,7308 40019 
099238 29,2595 onnes 
099458 © 72,2902 09010 
2099578 =2,3199 29008 
099698 92,4496 e011 
2099738 22,3793 29010 
e99R1E ©2,4090 00008 
299A6S =P USAT 29005 
2994U8 =2,46AUu 20008 
0999K8 =2,4984 20003 
299998 ©2,5278 20002 
1.90008 92,5575 20002 


1.0000 


MHHW 
MHW 


MSL MSL 


MLW 
MLLW 


17 ei 26 2 
HOURLY TICE HEIGHTS 
MOBILE. ALA. JANUARY 1963 


Figure B-29a 


Extreme Monthly HW 


OF Equivalent Gaussian 
MLW Distribution 
MLLW pes 


Extreme Monthly LW 


-30 


0.01 0.1 -30 -20 10 -oO 50 o 90 20 30 99.9 99.99 
Diurnal Range = |. 44 ft 


Figure B-29b 


229 


MOBILE. ALABAMA 


Ga 
30,9 ogo 


ru) 
oF0G gq 


12345678910 le 64 69 TY 719 
MONTH OF THE YEAR YEAR (1969-1961) 
HIGH WATER © = MAXIMON @ © WEAN HIGHER X « MERN 

,08 


: 8 
u 
98 B98 
8 B 


12345678910 1l2 6u 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER = MEAN = MEAN LOWER Xo MINT HUN 


5 
12345678910 ie 64 69 74u 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE @ -@© DIURNAL TIDE @ @ MEAN TICE Xo STD CEVIATI GN 
0.5 


xxx xX 
x % x 


0.0 § 
-0.5 


x XMM K KKM KKK KKK KM KK 


2345678910 12 6 69 7u 79 
MONTH OF TH YEAR (1963-1981) 


E YEAR 
MEAN SEA LEVEL 


Figure B-29c 


230 


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S2go° 0000° fotS°2e 29906" 0000° 6ot0°t an a 26045° ea00° @409°be e0finn® £920° 6024°t ans 
S2e6° mn00® }t0S°2e 29996° 800° orro*t ws a #204S° g900° SowS*te wi9tn® ee00° enie*t #95 
teze° mn00® 62en*2= steie® nn00° 6.n0°t #9 s ant9se £920" §t4S°te secon? egtoe eane*s 29S 
{16° poo? 9n9n?*2e alglo° Sito° or90°b ad ® etSes? 2g1o° 1€55°T= eines? #g00° o29e°) 94S 
£696° mn00° nonn®2e e19S6° mnoo® 0940°S «@ a 2612S° eteo° wrgs*te enga¢g? 40¢0° O4de°s 29S 
696° 00009 za2n*2e satso° fn0o° Coe0°t 26 * 2000S° erto° 991S°Te essse® Sato? Oto4*s 26S 
on96° moo? 660N°2e sAino® 2cto° Onorets Ot e 2e9gn? 9a00° ngen’te seese? 8e00° 0s0g*t 209 
$096° pn00® L¥6f°22 a2nge® ee00° Ogtres wht ® ebaan?® S2to° VOun’te aogeg? Ca Nolearh #19 
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NSze° pr00® S0OL*2* alt2o° n00® Teatet 9% a andes? 2¢10° Vout te aly2e° 2gtoe beepers 299 
bt20° eno? f292°2* eL9to° nnoo® teoe*t wzt Py #24409 sLt0° L0Lf°t2 wonie® S4to® Te0e°s 049 
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{216° S.toe 6Sn2°2] S506° nnoo® 2oce*t eot Py efcrr? 2gso° IMET°b= eOges® egoos Z21fo°s 2609 
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be2a? ge00° O¢9e°t= 20959° 2eto® 9n25°t 0P ry 22gn0® 0000° ntso°e els¢o® geno? 9gc2°2 4806 
forts? 0000° @nna*te e9229° £920° 99fS°t ath 2 22an0® npo0* €ff6°2 2f920° @eno° 9ef2°e ato 
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2ngo? fnoo® 99Sh°te 2565S° ge00° 4909°S 9h 2 e6t20° 00008 Ogne®*e e2gt0® 0000° L60G°2 296 
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9tg9° £920° n299*te elgin® Sato° 9e949°s eIS PY ennoo? nn00® 00SL°= anno0o® nog? aodge2 att 
eteesaesese ATHT AT HSKSKH eee ee eee ee esas eee eat sedeseseK eee eshargassegaeteseeHaseeeee assed eoseeeeetteateseeanteneteeeteas 
e °o3u4 AtwId) 909 °Odu4d 1IwId) 2 °ON @ e °O49nd AIwl) 98 °mang 1IWId) = @ °ON 
a °Whd *maad 43am04 @ ‘wd "Ody 89407 eSSVv1je Tal) °ajad Ce om) e °Hnd "ondad yamno4d #gSv19 
2 e a 8 a 
@ M3LVM A041 OW 3n9ULX9 s@ HILVM HOTH °OW JwdeLX9 » * @ S9LVM 407 “OW 3W39NLN9 @ BILv™ HOT POW JwaalKd @ 
"1334 otL® J9ONVY TWNANTO JHL 41VH AG@ GIZIVVWHON Juv SLHOTGH JIV 8NMOHS TVAMBINI 9S¥19 4o LIWI 4 aK07 
teec9al viv 311900" NOTLINNG VNOTANGIHLsTa 


b6c-d PTIPL 


231 


8 HIGHER HIGH RATER ¢ HIGH WATER 8 HOURLY VALUES J LOW WATER 
s s s s 
CLagee LuReR pReQ, CUM,® LORER FREO, Cun,® Lower PREO, Cum.® Lower PREO, 
NO, @ LIMIT PREQ,® LIMIT PREQ,® LIMIT PREO, LIMIT 
SPSHCSHES THOS HSHSSHOHSHSOSS TOTO OSOSHS OSHS ESTSSSSHHSOGTOSOHS HE HSER SHSOTSE OHHH OH ESO HSSHOSTHOO THOSE ES HOSSHTHOHESEEOESOBED 
Joie 2.3798 00008 00008 32,3796 00008 000018 32,3798 200000 000008 05022 00008 
1008 2.3533 20002 200038 B8,348u 00008 00005% 22,3303 00000 200008 0471S 00003 
99s ao3200 20005 000008 B,3170 20004 00007 22,2807 00001 000018 04407 00010 
986 223005 2000S 000118 82,2856 000038 000308 22,2312 00003 000028 04099 00010 
9%e 202738 40002 .0013® 2.2542 0001 eOOL1* 2,1817 00002  .0004® 43792 40026 
Gee 202u73 00002 000148 38,2228 00007 00018 22,1321 00002 000068 03484 00035 
958 202208 20008 e0ULk® 2,194 00019 00037 2,0826 00004 000108 e317? 00020 
gue 2e1945 e0ueu e004S@ a,1000 000)3 00048 2,0531 00005 000158 02869 00026 
O38 201078 20008 00050 2.1286 00017 00005% 4,0835 00000 000218 o@Sol 00048 
Q2e 2e1uis e0uld e000} 22,0972 00015 00808 1.9340 00008 000298 02254 0005! 
Q1e 201148 40019 .0082 2.0658 10088 001089 14,8844 00009  ,0038% 1946 0029 
90e 2.0883 re e010U8 @,034a 00049 e0le7® 41,8349 00015 200538 01638 00044 
B98 20018 .0U28 2.01298 2,093n 40030 00858 4,78654 00017 ,00708 41331 20069 
B8e 2.0353 e0Ul6 evldae 41,9716 20030 001884 14,7558 00022 000928 oto23 00057 
B7e 2.0088 00034 o0170@ 14,9402 000350 00219 14,6863 00027 oO1lee 00716 00009 
Bee 129885 00u20 001908 4.9087 00048 00207 14,6307 e003) 001508 200808 00094 
85s 129558 00035 002298 41,8775 00054 e0S21% 43,5872 00039 005688 00100 0013! 
Bus 109295 20038 002678 1,8459 00097 oOS78G 84,5377 00046 002348 e,0207 00128 
B3e 109028 00045 oOS128 43,8145 00004 0044S 4 ,4H84 00050 002848 00515 00140 
B2e 1eS763 20056 eVSo4¥e 1,7A54 00080 00521 14,4380 00059 003439 ©,0823 00152 
B18 104498 .0vS2 c04208 4,75)7 c00B4 00606% 34,3895 00068 .0410% eof130 0122 
B0e 108258 00052 .0472® 31,7203 00100 c0705® 34,3595 00073 00WB}S of1438 ,01uG 
798 1e7968 200069 005418 41,6889 20008 208038 34,2900 00082 0056388 eff 74S 00143 
788 107703 009% 000578 4.6575 00108 e011 $52404 00186 .0649% |,2053 0093 
770 Letudb 00u7Ss 00712 Je6201 Ol | 010226 34,3909 00089 e073BS ep23oi 00133 
Tose 107173 00400 e08les 43,5949 00129 ob1S1% goyuia 00303 008418 e,26608 00138 
758 100908 00U%] o090SS 41,5633 00133 o1263% 14,0918 Olle 009538 e,2976 00116 
748 1006043 60114 010159 165319 0152 o01455% 1,423 c0112 610068 e,3784 40120 
73e@ 100376 00088 010998 4.5005 00149 015858 09927 00320 081918 053591 00140 
728) LoG1tS 00138 el2sue 14,4694 00164 ot 7ooe 09432 00129 013208 @,5899 e0172 
Yie 109848 00118 o1$52e) 4 ,4377 00148 o1914% A959 00138 014588 e,4206 00134 
709 105585 20116 014088 34,4005 001%! 0210s? buds eolud of602% o,4514 00158 
o9s 165318 00154 ol0219 11,3749 00103 022088 07946 o01u4 017468 e,4h22 00106 
688 105053 0014) o1763$8 31,3435 00100 024289 07454 00354 019008 255129 0107 
o7e 104788 00169 o1%$2e 1,3121 00176 0260048 06955 eOlol 020618 o,54357 0014S 
66% 164525 00149 020818 452806 10185 027898 6400 o0166 22279 ©,5745 0172 
OS® 164258 60165 o22408 142492 60195 029849 45964 01167 423948 ©,6052 40143 
o4e 163993 20179 624248 342178 2018S 051799 45469 00180 425748 ©,6360 00181 
ose 1263728 00168 0259d8 341804 00191 033708 04974 09188 o2702% o,6667 0018) 
628 1e3uos 00146 o2@73h8 143550 00181 035518 04478 0397 02959 0,0975 o0177 
ole 1034598 00180 e291 341236 00209 037008 93983 00206 o31648 ©7283 00184 
60° 102933 0157 o3U7S® 440922 00225 °° o59b0e 03487 «00222 «= 83868 = ,7590 0253 
S98 102666 00182 032579 $,0608 00196 041629 92992 00217 03603% 00,7898 20202 
SBe 1e240$ 00193 o345U@ 34,0294 0216 43988 2497 00230 938338 2.8206 0237 
S7s 10281356 00167 030578 09980 00231 046298 92005 00227 040618 ©8513 00210 
Soe 101A7S 40185 ,382e0 209666 8=6o 0184 =o HB SF 01506 00230 442978 0,882) 0221 
S5¢ 1016098 017) 259920 09352 =o 0185 =p KONBF = 4011 eveds 045388 02,9128 0259 
S4e 101343 40182 -4l7us 09038 00220 «05218 «40535 o0dS@ 447948 ©,9456 0214 
S3e 101078 022} 0435958 ob7ad 00236 895454 8 0020 00264 5058 e.,9744 40196 
S2e 100813 e0eet o4017e 06410 00169 056025% @,0476 00850 053088 01,0051 00165 
S18 100548 .01609 47808 04096 =o 0162 =o STHS® = , 0974 202u0 055488 01,0359 0217 
50e 100263 0215 50018 27782 = 0180 059605 02,1466 00228 657768 91,0667 0209 
49@ 100018 0283) o5esie 07408 =n Q1 01 06146% 051962 10225 460008 ©f,0974 0174 
ubs 09752 00163 055948 o719a 00194 063398 02457 0222 062228 1.1282 00194 
aye o9uAR7 0020) 0959958 26840 00173 06532% 02,2953 00215 064378 01,1589 00177 
uoe 09222 00390 057858 0658S 00166 060708 wo, 3u46 0215 066529 01,1897 00170 
uSe 04997 20205 »599Ne oO? ti 00101 2008598 65,3943 c0213 .6865% 91,2205 0173 
aus 08692 00212 e6202e8 0 SHOP 00136 00996 ©4439 00204 0706098 o1,2512 0014) 
ase 08427 =, 0180 063826 45583 60177 o7175% 0.4934 00196 47265% ©1,2820 0174 
uas 081028 00168 2055U8 052609 00152 07327 05429 00189 o745u% 01,5128 00154 
aie 0797 00169 007198 04955 00105 o7491% 06,5925 00176 076308 of .5u5S e01to 
woe 07e32 00177 000978 e4but 00173 07604 «,6420 00177 076078 of S748 0012? 
398 =o 7H07 = O17, 270088 04327 =o 0186 =o FBLOF =o, 6916 =o 0.179 «=. 79B7® 9444050 0149 
yee 07102 00174 o72uee e405 00159 079808 o,74u1} e0lbe 06148% 01,4358 00109 
370 00637) =o 0171 074150 03099 =o 0531 8111 ©,7906 00364  o8312% o1,4666 0126 
Joo 06572 00152 0756058 03585 00148 082599 2, A402 00157 084708 o1,4975 00100 
358 00307 un a) o77290 3074 o0lad 083638 ©8897 e01G3 086138 01,528) 00083 
gus e6042 00109 076996 02757 00109 064939 07,9395 00139 ob751% 05589 00094 
336 03777 00152 e5u51e e24uy 00140 086328 »,9888 00123 086759 of ,S896 00070 
32e 05512 00152 062050 02129 00109 06742" 01,0383 00117 069928 01,6204 00098 
31s 03247 00127 o5S500 01415 00091 066539 01,0879 00107 090998 ef 6511 00077 
300 04982 8 =,0143 8=—, BUT SB 01504 20097 = 8950% 04,4574 00097 49196% 01,0819 0080 
298 o4717 00122 258956 01187 20001 090218 01,1669 00089 092858 o7127 00075 
28s 04452 00108 057058 00875 00095 091108 01,2565 00079 09S05% a1, 7434 00079 
27s 04187 00327 066508 00559 00109 09A226% 01,2860 00074 094S9% of ,77U2 00075 
2ee 63922 40111 o89uge 00244 =o C122 =o P3U7% ©1,3356 00065 49505% 91,6050 00079 
256 056097 §=66 0085 = 90268 02,0070 40087 694348 01,3451 00060 99564% ef ,6357 40050 
2ue 03392 = 0091 eF91178 wy 3bu 200080 9 9515% 01,4346 00054 496189 24665 0061 
2se 03127 =, 0088 =o FADS 40698 =« g 00008 §=«_f PHHA% @4,4B42 60052 96708 01,6972 40053 
22e 02Bb62 00066 092718 wo3012 00055 096389 01,5537 0004a 097128 01,9280 00057 
2ie 02597 =o 0075 «=o PSUS = giSd—6 «= 0039 =n FTHF 04,5858 00039 497529 01,9588  .0040 
206 02332 00072 o941B8 ©,1640 00046 09722% o1,6528 00038 097898 of ,9899 00047 
196 02007 00053 e94728 0©,4954 00050 09772% 01,6823 00032 098219 00703 00037 
188 61802 = OU 44 e991d% 042208 60044 o9610% 01,7319 00029 98509 e2,0511 00040 
176 015357 00039 «= 94528 «42562 «= 008K «=o PFRUD® 04,7814 60027 4 9877% ©2,08618 0025 
166 01272 = 003K «=o VSAY® «= g289H = 0028 §=«_ 0 987% ©1,8309 60022 98999 e2o1126 0032 
156 01007 00044 190308 0,5210 200037 09905% ©{,8805 ©0020 099199 e2,)433 00015 
{de e0742 00U56 090058 o,3524 00025 099299 01,9300 00017 099309 2,174) 00030 
13° 00477 00058 297208 o,3838 00026 09956% 01,9795 00044 099508 02,2049 00022 
12s 00212 «=6 0052 =n PITTS «44152 40008 o9964% 2.0294 0008) 099019 2.23956 0022 
116 020053 20042 09B2U8 o,4466 20018 699829 02,0786 00009 099708 e2,266u 00054 
108 0318 oouse 096578 ©,4780 20006 09966% 02,1262 ©0U07 09977% a2,2972 00031 
Ge 0505835 00usa 09898 ©5094 00004 099929 22,1777 00007 099848 22,3279 20010 
Be 060848 40024 099159 ©,5408 40004 09996% 02,2272 00005 ,9989% 22,5567 0017 
Te eol{13 60025 099408 ©,5722 60000 09996% 02,2766 60004 .9992% e2,5894 40007 
68 061378 00011 099518 @,6037 00001 09997% wA,3203 ©0003 099959 o2,4202 00004 
Se eolo43 .0U17 699698 «©,6351 20000 099979 02,3759 00002 499979 02,4510 00008 
de 051908 00016 699b4U8 = @,06605 20000 09997% o2,Ue54 00002 099988 22,4817 00000 
Be e273 = 0011 299988 0.6979 40001 09999% 02,4749 0003 099998 02,5125 0004 
ae 06243R = =40U0S =n FYFBS = 4729S = 0000 =n PHYV9F &P,5245 00000 1,0000% 22,5433 0003 
1e 2627903 60002 1200008 ©,7607 .0001 $00000% 2.5749 00000 1,0000% 2.5740 20000 


Table B-29b 


LOREM LIPIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED OY HALF THE DIURNAL RANGE 


(Ri 


710 FEET, 
8 


Co) 
CuR,® Lower 
PREO,® LIMIT 


000018 23300 
000038 01035 
0001e8 00705 
0022s 00494 
000400 00224 
0006048 02,0046 
000918 @,0317 
o01t80 «,0587 
001598 «,0856 
002108 0,1126 
202398 051399 
002848 0,1069 
203538 ©1940 
004408 w,2240 
004798 o,2u84 
005738 0,275) 
007048 e,3022 
208298 «3292 
2009688 ,5562 
of121% ©,358633 
ol2uee 0/4103 
013808 o,4sTu 
015008 e444 
015928 0/4915 
e1?25° ©,5185 
018438 02,5456 
01959% ©,5726 
020798 05997 
022198 o,6267 
o2391% 00,6536 
025258 0,6808 
020658 0,7078 
02849 o,75u9 
e50f08 ©,7019 
o3161% 2,7690 
033558 0,8400 
234758 ©, 8u34 
2030579 ©8701 
2038388 0, 8972 
040159 ©, 9242 
041999 0, 9543 
44328 @,9783 
046148 01,0654 
248518 ©f,0524 
050669 01,0594 
092089 01,0465 
055068 94,1135 
od7al® ef ,140o 
oS9178 C1,1076 
061038 01,1947 
003208 ©} ,22\7 
00529 ©] ,2488 
o6703% 01,2758 
068979 01,3029 
070748 01,3299 
072448 01,3569 
74179 ©} ,3640 
075589 ©3,4110 
077328 ©1438} 
0786079 21,4651 
079838 01,4922 
081108 04,5392 
062299 m1 ,5465 
063380 01,5733 
0bUO4® ©1,60004 
085604 ef 6274 
86478 ©1 ,65u5 
o87419 ©1,6815 
08817¢ 01,7085 
28915 01,7550 
2089938 ef,7026 
09075% 01,7097 
e9148O of Blo? 
292279 01,8436 
095019 01,8708 
293808 ©1,8979 
294308 04,9249 
o949le 29520 
095438 64,9790 
096008 ©2,000)4 
096408 02,033) 
290879 ©2,0001 
097258 o2,0872 
097058 92,4442 
097908 e2,1U13 
298228 22,1085 
298578 22,1954 
298078 e2eeu 
298698 ©2,2u9 
299119 2.2705 
099259 22,5036 
299309 02,5500 
299408 02,3577 
299038 ©2,35007 
099708 22,4117 
099748 02,4588 
099828 02,4058 
1299688 =2,4929 
099920 0D199 
299948 22,5470 
4.00008 ©2,5740 


LOWER LOw WATER 


PRee, Cum, 
a, 
otecsodessg 
200003 00003 
00035 00018 
00032 20050 
20029 «0079 
200039 00338 
00053 0017) 
200050 0022) 
00065 00507 
90085 00392 
2007d 20466 
20102 00568 
20092 00060 
20087 oO7U? 
00063 00810 
00813 00923 
00077 01000 
00105 of103 
00097 01200 
00410 oidi0 
oO St olduy 
00123 01565 
20330 01073 
002d 0179S 
00106 01%0a 
00338 02079 
00459 02218 
20150 02575 
e0130 92510 
00148 = 2058 
0080) 02620 
20$08 2968 
00187 o3I75 
00389 o3303 
200200 035603 
00879 = 3743 
20208 4395} 
20210 4107 
20205 94372 
00218 04589 
o02ly 04604 
0225 09025 
00394 o92k7 
00389 §=45406 
00223 05628 
0021S 05843 
00180 00027 
00284 Oy | 
00186 063% 
00200 065% 
0173 «=p 0709 
20309 00938 
00353 07094 
00168 07299 
00340 07400 
0032) o75a) 
00327 070u8 
20139 07787 
00316 0790S 
oOkls 08017 
20340 8158 
Oe | 08209 
00082 08354 
20087 ,8u36 
20098 8537 
20085 05622 
200095 05718 
0008) 28798 
70089 6887 
00073 08960 
20090 09055 
20074 9127 
00074 09201 
00065 o%2bo 
20068 09534 
0007) 09402 
00047 09448 
20098 49506 
00047 29553 
20055 29008 
20048 09050 
000354 09067 
20035 09723 
20035 =, 9758 
200027 09785 
00088 09603 
20ve7 0963) 
0003) 2 9H04 
2002) 09082 
0002) 09903 
20013 09916 
20085 09929 
20010 299359 
20018 29956 
20008 09965 
00005 09908 
20000 09974 
20008 ,99ba 
20000 29989 
20008 09990 
00005 09994 
00006 4$,0000 


17 a 26 
HOURLY TIOE HEIGHTS 
GALVESTON. TEX- JANUARY 1963 


Figure B-30a 


20 
Extreme Monthly HW 
MHHW 
o 
MHW 
MSL 
MLW Equivalent Gaussian 
-0 Distribution 


MLLW 
-20 


Extreme Monthly LW 


SOF 


0.01 0.1-30 -20 10 -o 50 o 90 20 30 99.9 99.99 
Diurnal Range = |.42 ft 


Figure B-30b 


233 


GALVESTON, TEXAS 


12345678910 le 6Y 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER a « naxinox @ © HEAN HIGHER % = MERN 


123W5678910 j2 6N 69 74 719 
HONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o@ «nea @ © HeAN Laven Xo MINI NUM 


KKM KK KK KK se 


123WU5678910 jie e6y 69 TY 19 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE o -@ owarnat tive @ = NEA TI0e Me STO DEVIATION 


x * 


x 


KKK KK KKK KKK KKK KK KK 


345676910 12 6i 69 70 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-30c 


234 


0000°% 
9566° 
9S66° 
Cy 
8996° 
9996° 
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S2e6° 
4€46° 
{696° 
t966° 
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enge® 
9626° 
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49t6° 
6406° 
teee? 


e °e3ud 
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2¢10° 
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2149°22 22560° nn00° 160S° en a 2@2de°? S.toe O904°T= wthL9¢ nnno® o9btet ans 
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2955°22 sAtS6° 2cto® 2n6s® ett s o£942° 0000° OteS° te wf265° ¢920° o2%ert. 29 
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Z19@°T® annSd® mn00® 96t0%t e9n 8 #9900 0000 6968°© #s€920° fmnn0e ngcort 296 
etme’ts 200S4° 9000° @teo°t ean * #99008 0000° 94L8°= e6t20° 0000° Gotoet 246 
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engd®te sents? Sato° moroes «fs 8 ann700° mno0® S008°* «Ay00° @e00° 2a7roet sf 0t 
SSS ES Se eS ee sees ss Se esses eee ease ege ees oeaesseese ee leaeeeseeeeseHegoeeaeseeetaartgesseheneeeesseesecegestaesregesea aeateestise 
LIwl 0 °O2Nd LTtwtt e e °O3ud ttn) e °Nan4 10 C0 oa) e °ON 
43Mot @ °und °o3ud 43eo1 eSSvije « °WN9 °adad 43m07 e °Hnd °alud a3annd *8Sv19 
s e & * 2 s 


@ BILVM MOD 9OW 3W9ddN9 2 HILVM HOTH “OW BWdHLK? © 


°1a34 otee 


teef9et 


JONVe TNYNTG 341 d1VH AS GAZTTVHHON Juv 


* 


x31 NOLS3A109 
e0€-a PTIFL 


MILVM MOT °OW BW3MLKF © HILVH HOTH SOW Awdeixd # 
SAHOT3H TVW ONMOHS TVAaaINI SEV19 40 LTWI7 m3m01 


NOLLINNY NOTING MLSTa 


235 


Table B-30b 


LOPER LIMIT OF CLASS INTERVAL BHOHN, ALL HEIGHTS ARE NORMALIZED BY HALP THE DIURNAL RANGE o710 PRET, 
8 MIQHER MIum WATER ° HIGH WATER 8 HOURLY VALUES @ LOwW WATER ° LOmER LOw waveR 
® e s e 9 

Classe = LuUneR PREQ, CUM,® LOWER PREQ, CUM.® LOWER FREQ. CuM,® LOWER FREQ, CUM.® LOWER FREQ, Cum, 
NO, © LIMyT bREU,® LEMIT FREG,e LMT PREO,® LIMIT PREQG.® LIMIT RGe, 
FFOECOTSOSO GO OSEHOOOTOSEOSSOROGEOE SETS OEEO HOO SOOO TOTS HOSES OH OSOESOS POSE POS ECOO TORO OH OT OTOOHOSE OOOOH HO ESOOOO DOOR RSOOHETSOORREOTOD 
lole tebase 20003 000038 4.6862 000028 00002" 14,6682 ©0000 000008 Lea@T¥a 00001 000018 00087 00008 000028 
100% 106693 0003 200008 1.0671 20002 00003® 44,6440 0001 000018 162334 10002 200038 03407 020000 .0v0a 
998 = Leegud 00000 c0018® {e644 youd 00007 41,5996 00008 000038 301933 00003 200078 00068 0.0000 00002 
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236 


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26 
HOURLY TIDE HEIGHTS 
SAN JUAN, P.R. JANUARY 1963 


Figure B-31a 


Extreme Monthly HW 


Equivalent Gaussian 
o Distribution 


J 
0.01 0.1 -30 -20 10 -o 50 0690 2 30 99.9 99.99 
Mean Range =: 1.15 ft 


Figure B-31b 


237 


SAN JUAN, PUERTG RICO 


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MONTH OF THE YEAR YEAR (1963-1981) 


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239 


Table B-31b 


5 Gt 575 Feet 
mem LIMIT UF CLASS INTERVAL SMORN, ALL HEJUHTS ARE NORMALIZED wITH RESPECT TO HALE THE MEAN RAN 0 5 
° red GnER HIGH WATER . HIGH WATER * HOURLY VALUES * LOm waTER ° LUWER LOW, WATER 
. s ° 
- R FREQ Cum 
k R OnER FREQ CUM,® Lower FREQ. CUuR,® LOWER FREQ, CUM.® LDrE . 0 
ech BSR DEAT ; FREU,? LIMIT . FREQ,® LIMIT FREQ,® LIMIT FREQ, 


SCECH SS SSHESSESSESESS SOOO OH OHO ESOS EE ESEES EERE T TEESE HTHOO OS OREO OSE HOO OOOH GOSH OOOH HE REEDORE 
208977 00001 00001 22,8977 20000 200008 05639 00001 once arises eee eee 
S524 00003 20002 oa, e ° 
Oe 208718 ovos 0000S 2,860) 20002 2000S 2,843) ©0000 200008 . 

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958 2e7u23 ooiL 090298 2.0719 00010 e00S4® 245699 20003 000 e 000! ° ee ° o 
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Sus eesys 000338 e0191 ©,4107 0026 0016) 

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240 


AW 


“ll li Hh tad AAA AA Mitt 
henner yy 


a1 
HOURLY TIOE “HETOHTS 
SAN OFEGO. CALIF. JANUARY 1973 


MLL 


Figure B-32a 


Equivalent Gaussian 
Distribution 


Hourly 


Extreme Monthly LW 


SH 
0.0! 0.1 -30 =2G, 10 <@ 50 o 90 20 30 99.9 99.99 
Diurnal Range =: 5.96 ft 


Figure B-32b 


241 


SAN DIEGO, CALIFORNIA 


12345678910 1e 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 = maximum @ © HEAN HIGHER X = MERN 


H2o0uwgoOanO7DFCMOfFwFAa PATO 8 


12345678910 12 6N 69 7M 79 
MONTH OF THE YEAR TEAR (1963-1981) 


LOW WATER © = MEAN = HEAN LOWER X= MINIMUM 
poOMU09S2FPFFH FA Amanoea 


GC®ovTHQHTHHOROODCGNGO 


KX KF KK KK KKK KK KK K 
12345678910 il2 64 69 74M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © =|} owrnac tHe © = MEAN TIDE X= STD DEVIATION 
55) 
° Kx KKK MK KK HEX KK KKK KKK KK KX KK KX 
' 12345676910 i2 64 69 7M 79 


MONTH OF THE YEAR YEAR (1963-1981) 
ean) Sielg) Lie Wall 


Figure B-32c 


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D06"° 40g0° Seen*’l= e99sL° guuu® 9u2t°) sun 2 annud?® vouo® esitele esautyu® Bul ue 6519%) ey6 
965%" ggud? 22en°t= elyec® Salu® So9eu°) son « ennude vouo? voul te aygdu® Vudu® @ieo%s 866 
609%" ecio® votn® te eSula® duuy® meer®h eS e ennud® vdu0® L2ub te syudu® moe 4429") 8004 
4cec° Szto° Loon t= aSulc® mnue? Tece°s wis a annud® mnvd® 19007%S@ anndu® Amnou? 9Gf9°b whOt 
s PES EP EUCTOUSCL SCOOT OCSCCTOCCTCO SOC OCCCCTOSCOTOCOCV OCCT COCSCCTCOCTCL TC CC TCC CVS CTC PCULOCeCeSOCOCCTVICTCCOLCTCT ToT ee Cee ee eee se ff 
@ “oud ital @ °O3u4 AIWLT « °ON @ sw °OJy4 atwll s °O3a4 wld e ? 
@ °aNd "oga4 64r07 ¢ "wild "udad o4a*o7 eSSvija a °WNg °o3u4 o4and7 e Paid “olud Santee eeewna 
s s 2 2 a 
@ 43LVH 907 °On 4WddLXS © HFLVM HOTH °OW In qULAD 0 * e Y9LYM MOT On Jndhand © Hdavy 494 SUN Jndaixd 2 


°14334 o40°2 


be=c9et 


JONVY TVNYNTO deta 31veH AO O9ZI1VRH0N Jaw 


VINYOSIIV9 


ece-ad PTIeL 


Ss49OIaH Viv 


*o99TU avs 


®NMUNS IWAMSiNI Ssv19 


40 aTwil7 44m01 
wOLkInid 


VOT Nelalsta 


243 


Table B-32b 


LOWER LIMIT OF CLASS INTERVAL SHON, ALL HEIGHTS ARE NORMALIZED BY HALF THE DIURNAL RANGE 2.979 FEET, 


° HIGHER HIGH WATER 8 HIGH PATER ° HOURLY VALUES ° LOW WATER s LOWER LOW WATER 
s s . ° 
LOWER PREG, CUH,® LOKER PREG, CUN,® LOWER FREQ. CuM,® LOWER FREQ, CUM,® LOWER FREQ, Cum, 
LIMIT FREQ,® LIMIT FREG LIMIT FREO,® LIMIT FREQ,® LIMIT FREQ, 


SSCS OTSSSOS OSLO TESS SOSH SE HERE E THEE TH THESE ROSE Seeeseseneocespsseves SRSCCoe EERE Ree eseEoETS 
1o633o 21001 000018 1.6356 00001 ©0001 4.6336 20000 200008 22646 20001 000018 ©,2573 20002 00002 
106209 0003 e0004S 41,6155 e0N04 00005 41,4090 00000 00008 e24uT 00nd 20905% =,2720 20000 00002 
1e60%2 20006 000108 41,5975 20909 000108 3.5664 00002 000028 027uB 20002 00907 e,2866 20003 00095 
105955 e0ul2 oN022% 34,5794 eoolt 00n2n® 34,5529 00003 20005% 02049 20005 eoN{1e® = 3013 29000 20005 
10528 00013 oN030e 11,5614 e916 000368 34,4998 200095 290108 o1AS1 00919 000218 ©3159 +» ,0002 000M 
105791 20025 o00618 145450 00018 00054 14,4057 00007 00178 0165? 00011 200328 0,3306 200002 09008 
105574 2002u e008S® 14,5253 20nd 000788 34,4322 20010 290208 ef 453 20014 200046 a, tu5§ 20014 09021 
1eSuu7 20022 eO10Te® 145078 e0nes e0101% 1,3986 20012 000598 015d 00019 200005e ©,3599 20011 00032 
103320 e903 001408 1 ,4A90 20ned eO1S1*® 41,4050 e001e 000518 01NS6 00019 00N63% @ tuo 2001) 00042 
109193 00030 eOl?oe y,u712 00030 00103% 43,3815 eN0(6 21668 00A57 00024 e007 #,3892 00014 20056 
125066 0033 enende 14,4534 e0ns} e019 91,2979 00020 o00R68 20 0h5A e0O3A 00146S %,4039 09055 00071 
104939 eons? eN2doe 1,435) 00032 002248 14,2043 00024 oO1t0e 200459 00046 001928 2418S 20082 00083 
1e4Ale e005, eN29e 4 ,417H 000582 202768 1,2308 ©0027 001378 20?6) 00046 007378 @,4332 20029 cd 
1edokS 00037 eO53S@ 14,3990 20040 oOS15% 441972 00032 001698 2062 00M64 003018 =, 4u7A 017 00126 
104558 00045 eO3S7T7@ 4 ,3RIA 20044 008098 41,4637 00039 o020BF 04,0137 20959 093018 ©4625 0082 00159 
1edud] 004s eO4208 14,3629 20nuy 004028 14,4501 enous 00252 2.0336 20N66 00427 wo ,47I2 00047 202 
1o44nu e0U56 eNutoe 4,3uua 20956 e045SA® 41,9965 e0051 o9303% ©0554 0 0NKRA 005098 ©,4918 09029 20234 
Vo4177 oN071 005488 1,37 0A 00049 e05U7T® {1.630 00054 003578 ©9754 0 0NAS 005918 ©5065 20030 00264 
104150 Pe} efol2e 1,3nAA 20956 005038 41,7294 oN0b2 004198 2@,09%32 00110 2007028 =,5211 20062 09326 
103925 00054 096658 31,2907 00071 006358 29958 20068 00487 9,113! 20106 o080R® 2.5358 20055 00378 
1037% 09063 eOT2Ke 14,2727 00073 007078 09023 00069 005568 ©,1329 e0let 009298 ©5504 09048 00426 
1e3oe9 00063 097908 = 1,25u7 e0n74 007b2e 09287 00077 20633 ©6152A eo0NNt 01940% 0,565} 29053 00477 
1etSu2 20077 e08HA® 1.2306 00076 00 AS8e oAQSL e00AY 2071G% ©1727 20128 011688 ©,5798 20051 00528 
YetulS 2A06u eN9¥ee 1y21hh 20080 o09SAS oAolo 00092 29B06® 041926 20126 012948 = ,59uu 20071 20599 
1032hh e063 eN99ue 14,2005 20099 el057e eAeho 0097 o99N3® = @,212u 00159 014538 86094 29062 20660 


YoStol 200A2 = 10768 = 141A25 009A 011358 07944 =o 104 o1007® e,2423 40141 01594@ ©,6237 08) 00744 
Vetnta oN0A4 ofl6oe 4,644 00119 o125ue 07009 e107 elffuS 2.2522 00102 el7S6@ ©6584 09044 208625 
e297 = 901Mu eleoue 1,1464 0126 of $608 o727$ =o O17 = NH PS1%® 27 20159 619148 ©,65%30 29093 =, 0918 
1ePT7Ry of1ng otS72e 1,5783 00107 014878 ob 937 00116 o1346% 29,2919 0017 029868 0 ,6677 20117 01035 


10053 o01Me el477e 464103 ontin 015978 0fb02 00128 o1474® oo ,3118 0015? o2P3A® ec ,6KPu oMitO! = 4f145 
1027526 09089 o1S60e 1.0923 20125 017238 26260 e039 016139 255317 00156 023948 2.6970 09128 elere 
1202399 0122 FORK 440742 00143 01 A658 05930 00139 017528 #63516 e016 025559 @71I7 200077 01349 
102272 oA100 ol 7AFS 1.0502 o0t4dn 020058 205595 oNiue 018988 =.3715 20154 027098 @,7263 oN1ba 01493 
10245 o01n7 01695e 4 —n384 00104 021098 05259 00154 020528 03913 00143 028519 @,7410 20108 elo} 
102c16 Os al 020538 41,0701 0013) 022h0e 04923 00164 e2216% e,4112 00152 230038 ©,7556 0013) 0173 
Voth] e122 021758 1,002n 014) eo sete o4SAB =o OHA =n 23.79% = 411 00153 631509 o,7708 0149 41880 
VelTeu Oia ed | oP S30 2 9RUn 0st e25iee 04252 0174 025538 2.4510 00950 23306% ©,7850 OSS ee20tl 
Yetos7 onto 025nSe Pa) 00132 ee2buue 03916 eO1T7? o2730% 244708 00163 034098 27996 00553 02164 
101510 09158 oPoose 29479 0014t 02785e 0 3541 00186 e2916% 02,4907 015A 036078 eo, Asus 00179 02342 
Lol 3AB one oP6uee 29299 00d) 029168 03245 00193 031098 9.5106 00142 03749 02,8289 00161 02503 
1et2So ole oe%hue a9tiA 00133 0 3Nb98 22909 00195 033048 ©,5305 00150 238998 @ Auto 00155 02657 
Yo!t29 oAt74 oti tbe AOR 00152 9 32018 02574 09208 = 3513% ©,5503 60133 e4N3e# ©,8582 0179 42636 
Yetnne e067 osSsne8 oATST 00154 0 33598 02238 0029 037028 ©5702 0015! 04163 ©,8729 00192 03028 
1e9RTS 401k =, SUR 2O577 00105 35244 01903 00205 939278 =,5901 200123 44287 ©,8475 40180 2326 
10748 09176 etoose 283% 0013S! 036958 01567 09209 e4}3o% 2.6100 00140 244268 ©,9022 200158 03365 
10%?) eN2ns 0 5$6698 Pb 00155 o3SAL08 of!251 00225 043599 2 ,679A 00437 04563% =,9169 200200 03565 
1e0u9y oO1S3 e4uees oANS6 200168 oSOTA® oN b% 00278 o45A7% @,6U97 00417 04680% 22,9515 00182 03746 
100 $h7 e015 041550 27955 =o 0158 = os WN ST 20560 00270 o4B807% ©6496 40954 e4A34® ©9462 40197 23943 
1ee4g eleS = USI 08 27675 60146 =o H2BSS = gP24 0 e215 = g S022% 2,6A95 0154 e49BA® ©,9698 40225 W168 
Vert 00142 e4500e o749u 0077 o4460% o,Ail) e0e17 05239% c,7N9F 00129 051148 ©9755 00197 04565 
294RO 09170 eloroe 27314 20150 046199 90447 00241 oS451% 267292 00156 05P73% ©9904 20176 04540 
04RS9 0155 4 Que 27'33 90153 eb4704# ©,978$ 0205 .5655% #7491 00144 = 5417% ©1,0048 .O177? o47I7 
09732 = 0164 = UDA 26953 =o 0165 =o W929F wo 1118 =o 02NG = g SBH2PE 0 eTH90 = ng OHU2 = g 55598 ©1,0195 40192 44909 
09695 001fo oS)74ue 26773 00148 059778 61454 00210 060728 ©,7ABA 00138 e5697F 01, A544 oN2e5S 05134 
09478 oO173 oS3u7e 20592 00173 052598 01790 °02N0 206272% @,8NB7 00168 25860% ©1,04A8 200195 205329 
29351 0149 = 6 5U908 20412 =o 0176 =o 5H26F 7125) M195 = HUH = 4872KH6 = g 0153 = «g HNL 2% ©1,0034 49209 45538 
09224 eNldo oSoues eoeSt e170 0559h% 6,246} 00179 26045% #,8uB5 001456 061488 ©4078) 20168 09706 
09097) Alba 256050 2095) 00177 «=o S7T73® 47797 =o 0169 =) 6B 15% = HHT 00157 —6306% 91,0927 213 65919 
oPG%) = M178 =o SHIHO 25870 =o 0156 =o 929% o,3132 = 011 71 069R6% @,8RK2 40154 264008 91,1074 0290 00119 
ofnasy 09140 e615he 25690 20180 06109% «2, 3468 00170 o7156% 2.9981 20140 06599% 91,122) 09188 06306 
oF716 =o M17$ op OSB10 25509 = 0179 =o HP BAS 43804 = 0157 = g 73138 2g 9780 20146 =,6745% ©1,1367 0182 »6488 
eo ASAY oM1To ehSNoe 29329 20166 064548 ©4139 09155 o7T46B® @,9U7A 20459 26A959 Hy ,151u 20200 06687 
ofuhe ol 4y ohoge 25149 00155 066108 @,4u75 00147 07615% @,9677 00175 070708 =1,1660 90173 06860 
oASS5 29150 eO4NNe o49OR 20160 067908 @uBlt 20146 o77T61% 2,9A76 0126 e7197% 14,1807 00215 07074 
420K o%loe 2O9nes 247HA 00176 06906 e,5146 oO1t4 07895% 01,0975 e01uA o73u5% ©41,1953 00189 07263 
Palatal | 0156 oT{1he adhn? 00102 o7128% «,54A2 09129 oA02ue 01,0773 00147 074928 ©4,2100 00173 07436 
0795u 00155 o7275e pale? 20162 07291% 02,5818 09129 oA153% @1,0477 00445 076379 @1,P2u7 old o7607 
27428 = 6152 a T4256 247246 = 016A =o FUS9F® wo 6153 ON A 282748 of ,0671 20142 67779% =1,2393 40174 477AL 
07794 00147 275728 24006 =o 0159 =o 7618 2.6489 =o 0123 = g B397% @1,0A70 40137 79168 ©4,2540 00147 =. 7928 
07574 e014o o771b0 23h BG 00162 07800% 0.6825 o0}?t oAS1B® e1 106A 00140 08055" ={,26R6 00149 08077 
07447 e014? 07868 23705 00162 079628 02,7160 00115 oAb33" ol ol 267 00134 206190% 4 ,7833 09140 8216 
©7320 =f du eAutoe 25525 0 0151 08113 6.7496 00108 o8741% 101466 20126 8316% =§,2979 0122 8338 
07493 09131 oAluje 3344 200167 082808 06,7834 00108 088508 01.1665 20122 o843R% =1,3126 00140 08477 
e%nho =o ALIS «=o A2558 23iou 20104 eBUUUS ©,A167 09105 68955% wJoiAoS 0132 48570% =1,3272 0084 48561 
06939 O14 obSToe 22984 20s4n 08585% «A503 00096 09051*% $2062 00933 087039 94,3419 oOLl7 04678 
e612 = 9106 oAuRee e2A03 e0144 56729% ©8838 60095 ,9146* ©1.226} 00119 28823 ©1,3566 0114 8792 
ebo45 = ol b2 eHouue 22623 00134 e8AO2® 06,9174 200A6 49233% ©1,2460 20114 .4937% ©1,3712 .0095 yAKAT 
27558 2000R8 oAT308 924ur 001d! 089948 ©,9510 00064 093178 ©1,2658 20097 290348 01,3659 20077 28963 


oust o01I0 eABave 92262 00105 090998 6.9845 ©0080 093978 ©1,2A57 00069 091239 91,4005 20090 09053 
Ae ur) oNl2u oP 96ue 20h) o0N1t 092109 01,0181 00072 09469% ©1,5956 200086 092099 ef ,4352 20089 09142 
oO\77 Up ae} oF0778 21901 20094 09S$04% 01,0517 00069 09558% ©1,3755 206A 09276% ©},4298 09086 09227 


06050 OU wal | 091780 1720 200979 09383 04,0852 000635 oF6N1F of ,3453 20090 095079 91 ,44US 00071 09298 
05925 oN0Ry o%2h20 21540 20nbe 09405% 01,1148 00056 09659% 9155652 200059 094258 ©1,4592 29066 29364 
25790 oNudS 093578 21359 20NK9 09558 64,4524 00052 oF7T11% OL, 3A51 200959 oP4AUF @1 4748 09071 0943a 
23669 20UAn o9uuse al'79 200077 096319 m1 ,1h59 ©0048 o9759® of ,unSN 2006? 29540% @1,4BAS 20054 2 9UA8 
05542 90U82 094u9Se 29999 00956 09666% 01.7195 20041 09B00% ©} ,4P2uAR 00NS6 096028 91,5031 20053 09544 
e5ut5 20076 095710 eOARIA 20058 097TH4% o1,753) 20036 098368 of duu? 20053 096558 —9,5178 09075 0961p 
oS QkB enudo oFoile oNbSA 00N4n o9764% 01,2466 00030 eFAhb® e1 e4hub oON4A 097094 &1,5574 09056 0967 

oSi61 oNS) sYoh2e e045? 20058 oF9AL9® wy ,32N2 00026 09A92% ©1,4AU5 00N5A o9742% ©1547) 20042 e913 
5034 0074 97 Sue 077 00035 oFASUF 01,4538 00022 099148 25044 20035 o9777% 91,5618 20042 09755 
oN9o7 oNUSA 097928 Puy 2 093Sh eVAING of, FATS enn? e99V18 91,5742 00049 aPA2h8 01 ,57h4 20053 09806 
Pe LD) oN04ue oFB3$@ © ,0NbU 20023 099139 {209 00057 c9GUAE Of 544) 00044 o9AS9® ©1,59$4 20033 Pe he 
04653 00035 096608 = wy0264 00916 09929% 01,4545 ©0013 09961% 91,5640 20926 298868 =1,6057 09029 09869 
04526 oNPP 296938 «,0us 00926 099549 01, u8AO 00051 09972% =1,5A59 2008 299178 ©1624 e004) 09910 
e4say of0Pu 99178 240625 20ne0 0997U% 01,5216 00009 099A2® @1,6037 e0Net o993A® #1 ,6350 20023 09932 
e4ate onuel 099478 = w,080h 00909 09963% 01,5552 00007 o99DAD® 94,6756 00023 09961% 91,6497 00001 09955 
04,45 09U22 09968 = 2,09KK 00908 099908 01 ,58A7 20005 099948 ©f,6435 00M15 099768 @}, 6644 20001 09974 
24018 On | s99738 o,4107 20004 09990% ©) -h223 00003 09997% 01.6634 e011 09980% ©1,6790 20009 09983 
0 SHO 0010 099K50 041347 00908 09997% 01,6559 00002 099998 ©1,6A3? 00006 099928 =1,6937 20009 09992 
o37hu e00N2 299979 641528 20902 0999R® ©f 6894 00001 1,0000% #1,7031 20006 2999R8 @1,70A3 200005 09997 
03037 eNOS FeMONUS wed TUR 20902 400000% 01,7230 20000 169000% #1,7730 20002 1.000098 ©1,7230 20003 11,0000 


244 


Hal alate l. 
rire ry ey 


lal deat 


reer ey i 


HOURLY TIOE HEIGHTS 
LOS ANGELES (OUTER HARBOR) CALIF. JANUARY 1973 


Figure B-33a 


Equivalent Gaussian 
Distribution 


Extreme Monthly LW 
0.01 0.1 -30 -20 10 -o 50 o 90 20 
Diurnal Range = 5.45 ft 


30 99.9 99.99 
Figure B-33b 


245 


LOS ANGELES. CALIFORNIA 


t 
a0,0278 9 m"®Q0 ) 


COTFABHOCHABHHOGERD 


XMRKK MK KK KK KK XK KK XX 


1234867898910 12 64 69 74 
MONTH OF THE YEAR YEAR (1963-1961) 


HIGH WATER @enaxinon O wEON HIGHER §«=© X @ NEAN 


9 
123W¥s678910 12 6 69 7 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o@enew @ © KEAN Lenen Xo WINTMUN 


eHn@eceae ceooneag Boceqa 


Coeecaeavnaegcaeanvaoecaed 


123U¥Us5678910 il2 64 69 70 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE @ -} owrnat tw @ = NEA Troe X= STO DEVIATION 
° xX KKK MMR FEM HK KKK KX 


123456768 79 
F 


910 12 6 69 7u 
MONTH OF THE YEAR (1963-1981) 
M 


TEAR 
EAN SEA LEVEL 


Figure B-33c 


246 


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2 2 8 ry o 8 
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teefoet vVINHOdI IVI 689939NV S01 NOTLINAS NOTANGlassta 


eee-d PTI L 


247 


Table B-33b 


LOWER LIRIT OP CLASS INTERVAL BHOMN, ALL HEIGHTS ARE NORMALIZED BY HALF THE DIURNAL RANGE 20727 FEET, 


ene 
Cums 
PREQ,® 


000018 
2000008 
e0010e 
000198 
000308 
0005Se 
e0077Ts 
e0107e 
001290 
0016Se 
001 %oe 
e0asbe 
02758 
oOsiTe 
003546 
204008 
004588 
008138 
005810 
2000UBe 
0009u8 
0075be 
006298 
o0BRoe 
200628 
o104Se 
oll076 
011990 
o13oSe 
ol42e2e, 
o1d23e 
010098 
oi728e 
2iBuue 
019Bue 
o2sise 
022966 
024280 
025830 
o27See 
029i de 
o304ao 
os204e 
033708 
o5SSASo 
e37oue 
o39uGe 
040970 
042590 
o4uiTe 
048978 
047576 
049280 
051008 
oSe7ue 
054366 
050090 
0S7708 
Oe 
obla7e 
e629ue 
046008 
e00USe 
067938 
0095)86 
070908 
o72eSue 
074280 
075868 
077508 
o 76738 
0F0188 
obj,ure 
o82ASe 
084140 
28Suye 
oFe7oe 
087938 
289008 
090229 
0915Ue 
92300 
093098 
29598 
094779 
099Sue 
oFOUb9 
240698 
097108 
097770 
oI9b23e 
0965ue 
096926 
o993U8 
o99UTe 
o9Voue 
099756 
099908 
999948 
299900 


HIGHER MIGH WATER @ 
LOwgR PREG, 
LanqT 
SOHe HH TESR OOo eHeSORDE 
Lose} =o 0001 
tee235 .000u 
1e0j06 20004 
15977 00009 
105809 20016 
109720 20019 
16359 00022 
1eSu63 20030 
1oS33a 00022 
105205 20036 
105076 0003) 
104948 00042 
1e4A19 20030 
104690 00045 
104562 00037 
1o4us3 00052 
1o4304 20052 
104476 20055 
104047 00068 
105918 00067 
103790 00046 
fo3ool 00064 
1o3s32 00074 
1o3u03 200086 
103275 00076 
1o3146 00085 
1o3017 00062 
102689 00092 
LokTou 00100 
1o2o3} qoll7 
102503 00304 
LoRy7u 00086 
1e2245 = a 0416 
foaii? 00119 
101988 = 40140 
101859 =o 0334 
10173) 001835 
lotoed2e oOtS1 
1ola7s 00355 
folydu 20169 
folate e0le2 
101087 00128 
100958 00sbe2 
100830 00166 
100701 00213 
100572 00184 
1o0uuu 0018u 
100315 00149 
100480 e0lo2 
100058 00158 
09929 00180 
09600 00160 
0972 00171 
09545 00172 
e%uld 00169 
09285 00168 
09457 0037) 
09028 00368 
04899 00169 
08774 00184 
o8ede e0)o6 
08513 00166 
oAyeS 90185 
08250 00150 
04427 00158 
07999 00340 
07870 00165 
oT7U4 Oo at 
o7o13 00165 
o?u8u 00162 
07395 001235 
0F220 00144 
07096 00129 
06969 00136 
00640 00134 
e712 00128 
00585 = 20125 
o6uSu 00123 
00320 00307 
06497 00122 
06008 =40128 
05940 00086 
oS6ll 00073 
25582 20085 
055535 0084 
05425 00077 
05296 20053 
05167 20064 
oSy39 0042 
09910 20067 
0478) 00046 
04653 00S) 
o4Sau 00037 
04395 00039 
04207 20016 
041,36 00013 
04009 00015 
o3ABy 00015 
03752 ©0004 
5023 20090 
o349u 20008 


1.000u8 


WIGH WATER 
LOWER PREG, 
LIMIT 

Seeceece 
1.630§ 00001 
400180 00004 
109999 20008 
105013 00018 
1.5630 00017 
105449 00017 
1.5263 00022 
1.5060 00022 
4.4897 00088 
104713 000249 
104530 00026 
1o43u7 00038 
104103 0040 
103980 =. 0083 
103797 00035 
1o3oiu 00046 
103430 00046 
103247 200056 
1.300u 00052 
102880 ©=« 0 0008 
1026097 00079 
1.2514 00074 
12330 00009 
1o2i47 00084 
10194 = 0103 
101760 00100 
101597 00105 
Yoi4ta o0la! 
101250 001i8 
101047 00100 
100864 o01k2 
1.0660 00187 
1.0497 e01s2 
1.0314 01280 
120130 00123 
09947 00139 
09704 =o 0130 
09580 01st 
09397 00135 
o92iu 00140 
09031 00140 
06647 8 §=n 0147 
28604 0160 
06484 00163 
08297 00142 
08114 0014S 
07934 00104 
07747 00172 
07504 0017S 
07384 00140 
o7197 e017! 
7014 0140 
00831 00178 
oO6U7 00156 
e04ou 00170 
0628) Or 
06097 00173 
oS91G 00175 
oS731 01S? 
05547 00109 
25304 00106 
0518} 00182 
04997 90178 
04814 00170 
4631 o0172a 
o44uR 00103 
0420u 00174 
04084 00189 
03698 00175 
o371G =o 0147 
0353) 00170 
03348 00172 
oSiod e0i7?2 
02984 00170 
02798 = O17 
o@014 00134 
02431 00133 
02248 00120 
02004 00120 
01884 00131 
21698 0089 
01514 00007 
013351 20079 
01148 =o 081 
009%6u 00001 
07h) 00093 
2059R 40047 
00414 00044 
0023) 00058 
00048 00021 
2.0135 0002S 
©0319 00029 
2.0502 00017 
2.0065 00009 
220869 00019 
2.1052 00004 
©1235 00003 
201419 0002 
©1602 20002 
201785 0001 
251969 00001 


HOURLY VALUES e LOW WATER s LOwER Low WATER 


8 

LOWER PREO, CUN,@ LOWER PREQ, LOWER FREQ, Cum, 
LIMIT FREO LIMty LIMyy PREG, 
COOOCC HER OSEOOOODOTEHOOREDOOOESHOOOEOSO0O SCopveoseooeoooes 


yoy 00000 000008 oddso 00003 000019 000028 00002 
1.0025 ©0000 000008 3227 0000! 00002 e,2834 20000 00002 
1.9686 20002 200028 03018 20002 00003 2,2982 20000' ,0002 
1.5348 00003 2000058 02809 00004 00007% o,3329 20005 00000 
1.5010 00005 000108 02599 00003 00030% e,3277 00000 00012 
104071 00000 400168 12390 0009 00398 ©,3425 ,0012 0024 
1.4533 00006 000259 0218) 00007 00020 e,3573 00003 00027 
103994 c0012 00378 03972 §=40014 ,0040® o,3724 20011 20038 
1.3656 00014 000508 o1To3 00058 2000588 o,3669 00025 20060 
1533517 00010 000068 01554 00024 00079% e401? e00k2 20072 
1.2979 00017 200838 ol3aa 00026 00105% ©,4465 20037 20089 
1.2640 00023 001008 01135 20027 eO13S® w,4313 20020 00108 
1.2302 00027 001338 00926 00044 00174® @,4d64 20029 o0NS7 
101964 00033 001608 00717 09060 002548 ©4609 20024 20164 
$ot025 c0037 402028 10508 0053 ,0266% ©,4757 0039 40200 
1.1287 0004uS 002478 00299 000603 00349% 02,4905 00030 00230 
1.0948 00047 0029u8 00089 00069 004368 0,5053 20044 00273 
1.9610 00055 003508 ©,0120 00067 0050S% ©,520} 0004) o0Sh4 
1.0271 00062 0412 @,0329 60078 .0582% ©,534% 4005) 00305 
09933 00067 004798 050538 00148 00700% e,3497 00054 00419 
09594 =o 007A =o 0.551% @e07K7 40158 50818 ©5045 ,0047 y046S 
09250 o0oTd 00625 20,0956 00139 00957 ©5793 20060 00525 
08918 =o 0084 = 0709% =e3166 = 0142 = ng. 10988 2,594, 40000 40594 
08579 00090 007988 051375 OS! 01229¢ ©,6089 00065 00054 
0824) 00303 2008998 0/1584 00142 «el 371% @,6237 0071 00725 
07902 00103 o1001% 51793 00150 91521 o,638u 20086 «40810 
07564 00109 elf10% e,2n02 00159 01080% c,6532 00310 00920 
o72e5 00314 of2248 e212 00176 018569 00,6680 00102 ol022 
206687 00120 013498 ep2euat 00100 02019% 00,6826 200% oltte 
06548 =o 0128 = g KU77T® @o2630 86 0190 =p 22US® 0,697 = g OF 0H g 22 
06210 00135 ef612% e,2A39 00152 023578 a,7124 00319 o1340 
035872 «00344 61756% e,304R 0151 025088 e,7272 0125 41463 
05533 00145 = 1901% 055257 60152 92000% 2.7420 40120 91583 
0519S 00157 020588 e,suo7 00141 028018 e,7568 00343 01725 
04656 00365 e2?2248 a,3676 00152 029558 o,7716 00355 01860 
04518 00170 o2394% o,3885 0141 230948 20129 = 1989 
04379 00376 o2570% ©,4094 0163 432578 20129 «= 24s8 
0 3644 0018) 027522 e,4303 00149 oS4078 001d 022%) 
03502 «=o 0189 = g 2941 054512 20152 935598 0010) =n 2454 
S104 00199 031408 e,4%22 o01Sa e371 38 20488 02639 
02826 e02ie 03352 0,493) 00116 0583518 00188 02620 
02487 800243 2 3506% 00132 039038 00177 03003 
2349 00225 o S798 00153 040968 e047 03150 
01810 e0223 040 hue 0012) oh217e 00174 o3s2u 
o1472 0225 8 ,4asos 00133 =943508 20180 23504 
of 13S 00228 o44boe 00123 044738 ©,95uu oON7S 3077 
0079S 00227 o469us 00125 045988 00,9492 e0ceu 03900 
00450 00237 049308 ©,0395 00142 04740 ©,9639 o02elo o4116 
00118 00224 051548 2.0604 00136 o48760% 0,9787 00392 04506 
@,0220 00223 oS377% 20813 o01u2 050178 20,9935 00206 o451u 
20,0559 00213 095908 e,7022 00137 05154 01,0083 201865 04098 
0.0897 00214 058048 e,7232 0147 055019 Of ,02e34 00191 04689 
1230 0212 260168 00137 o5Uzbe 00379 0038S 05074 
S7a 003199 = g 82158 00142 95581% 01,0527 0194 5267 
1913 00190 064U5% 00143 057249 ©1,0075 2020) 05408 
e,2251 00192 65978 00150 934748 01,0623 0203 S07) 
2.2590 00376 007758 00144 060189 03,0974 00189 05660 
©,2928 00165 069408 00153 061738 1,119 o02el3s 06073 
@,32660 00160 071008 00160 oO3519 OL ,1eo7 00180 06259 
@,3605 00154 072540 00150 eO4O1% ef ,1u1s 00373 0643S) 
2.3943 00348 874028 00150 .6611% ef,1563 ,01086 46599 
04282 00146 07550% e045) o67o2° e1,171) 20200 06799 
© .4620 0045 070948 eOlol 009239 01,1859 0020) 07000 
2,4959 c0134 78268 00163 o7080% 81,2007 017 47475 
©5297 001326 079548 00145 072319 01,2155 00162 07557 
0.5036 o0k25 of07Ke 00144 o7375% #142503 00176 o7532 
@,5974 00327 082048 03,0369 00143 07516% ©3,245} 00174 07706 
e .bsie 0012) 083269 01,0578 0014 070059 91,2599 00)0} 07867 
0005) 00116 o8U41® o1f,0788 00130 o7801% e1,e/u7 00144 208011 
2.6989 e015 04550% 01,0997 e01S2 079538 of ,2094 00129 08140 
©,7328 00109 08666% ef51200 00159 0809S ef, 50de 00156 06290 
©,7066 00107 o8772% fous 00129 20622)% 91,3190 e0lee O47 
24005 00108 o8BA0F ef ,le2u 00130 08552% 01,3558 00106 08525 
©4545 00101 089619 ef ,1453 00139 064909 @1,3486 00117 o8oue 
©4082 00095 090768 ef oc0ud e0N5Se2 obb22% &1,3634 00098 08740 
©9020 00089 69165% ef,2252 0122 ob7H48 21,3762 ,0098 6837 
2.9558 00087 092518 el ecuol 012d o6BO7% ©1,3930 20089 08926 
299097 00083 09334 ©1,2670 00112 089798 01,4078 00084 09030 
21.0035 00078 94128 0152879 40090 49070% 23,4226 0096 ,9107 
e1,9374 00070 09482% of, 5088 00103 091739 01,4374 20072 09179 
e1,07ia 00066 095488 01,5298 00078 09250% af 4522 00084 09260 
1,105! 000635 096115 2503507 0008) 093319 ©) ,4070 00060 09520 
21.1389 00057 209608" o1,5716 00009 094908 01,4818 00008 09594 
2101728 00052 69720% 2453925 0063 o94b4% 01,4960 007) 0946 
©1,2066 e00ud 0976US of 4134 00068 09551% oy ,5114 20047 o95Kh 
e1.,2404 00u) 098059 1 e4343 60052 495638 ©1,5262 ,0047 49557 
01,2743 00036 094419 ef .4553 00057 09641% ©1,5410 20069 09026 
1,308) 00029 99B870% w1e4%o2 60049 »49690% ©1,5554 0065 »9694 
21,3420 00025 .9A9SS of ,4971 c00UR 697388 ©1,5706 ,0050 e972) 
2153758 00021 99168 0155160 .0035 97738 01,5854 40045 29760 
2104097 00016 499358 91453869 0040 098158 21,0002 ,0047F 9812 
©1,4435 00015 099508 01,5599 00042 098558 01,0149 20035 AY 
©1,4774 ©0013 099639 ©1.58U8 00029 ©1,6297 90036 09684 
e1.5112 e00t1 09973% 01.0017 00027 ©1,0445 e0US2 PLT 
2105450 00009 .99R2% ef,6226 .UN26 21,0593 0016 9934 
05759 00007 099899 ©] ,6U35 00023 e1,0744 00038 09952 
06127 00005 099948 of .b6uu 00nd 21,0089 00020 09974 
©1,6466 ©0003 099978 21,0854 00011 21,7037 00012 09983 
21,6604 ©0002 099998 01,7003 0000" 21,7185 00Y08 = 9994 
1.7343 ©0003 %$,0000% ©1,7272 00n0? 099988 01,7333 20006 09997 
21.7484 ©0000 11,0008 e1,7481 20002 460000" 91,746) 2000S $0000 


248 


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: CE i 


SO 
OM Cl Be sae To ae 690 20 30 99.999.99 
Diu A aa > 5.73 tt 


Figure B-34b 


249 


SAN FRANCISCO, CALIFORNIA 


3 o Spo 


CHOTHBGBHANVNGTHOBHOHHOBHACSA 
M«MKXKKKXKKKXKKKKKKKKX 


12345678910 ile 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER ao « naxsnon @ © NEAN HIGHER = MEAN 


PHOUFT2F89M7D 0H FAO OAH OD 


20079 0H000080°%8S8S8 


Xx yx XX 


x x 


123U¥S5678910 ji2 6 69 74 19 
HONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER owewean ® © HeAM Lenen Xe HENTHUN 


eHeece9F00e2Agoe008 


®GBHGQaacHHHHKBH08S8OC® 


5 
123WN5678910 ile 64 69 7 719 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE © DIURNAL TIDE ® = MEAS TI0E Xo STO DEVIATS EW 


OS 
0.0 Kx XY KKM HK KK FEM MMM MK KKK KK HK HK HK 
0.5 


12345676910 i2 6N 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-34c 


250 


SSC eeesgesegascaserseassseesessas 


e °o3u4 


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260° 
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8996° 
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Soel°t= 29560" 
92gL° T= 89506" 
9SLL° T= 89560° 
Lagd* t= 295660° 
Lt9L * = 29566" 
wnSd°b= #9966° 
winl°t= 29G60° 
pond*t= s2i66° 
ofild°l= s98980° 
o92l° t= sSeg6” 
0022" b= 8S5296° 
Oil? b= sSeuo°® 
b90L°T= eiado® 
b609°T= 26796° 
2269° b= 26n79b° 
2589° b= 25096° 
GAaLI° t= 2Su90° 
LIL9° b= 2h9S0° 
in99°t= anino® 
nLS9°t= anine® 
n0S9°t= enino® 
Sen9°t= s2nto° 
S9L9* T= s8026° 
929° b= ali2o® 
9229° b= sL9To® 
4S19°b= sf2to° 
4909°T= #6206° 
@to9° t= alos’ 
@noS®*t= s2ziu’ 
wleS* l= enyou® 
608S*T= snydu® 
6£LS°T= 896Sy" 
OL9S*b= efSSH° 
009S°t= slifv® 
bESS*le sfetu’ 
bonS*t= sba2du® 
2oeS°t= s2u2y" 
22aS*t= e2yoi® 
aSeS*le stcu.* 
£EIS*l= s9ySL° 
GtbS*t= s9GgnL° 
mnoS*t= styec® 
nion®t= stgec® 
S0on*t= sonts® 
scen*tb= 169° 
99LN° T= 20569" 
909° b= s8619° 
4297° t= 61949° 
issn*te 2S55S59° 
wann’t>= s09¢49° 


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e004 oN0hee 
e000 o%0Noe 
00001 en0nTe 
e0Ag eh0loe 
onuel e0037e 
00918 000558 
e0010 e0hoOe 
09037 eninge 
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enudt o02use 
e0uUdS 0 28%e 
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20052 000558 
oe OUR ef T198 
2080 ee7T9e 
OURS eOPALe 
e0URT oN92Ks 
e074 ofONie 
ofu9u 0109Se 
0091 ollAos 
oNI2 012576 
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00118 ol4ate 
29095 015548 
ents? elotne 
09139 el K¥Se 
e0N30 e19nbe 
0113 e207hs 
o0tAs eP2ense 
0f1Sa 023578 
00182 025 3We 
09175 e271 se 
00175 e2hBbe 
eM AQ otU77e 
0N2n9 oteAow 
Need $5108 
o017a oSoRise 
Oa 2) o 3676 
enelo o40Ane 
20192 o427be 
00194 o4u726 
09158 o4ooys 
eNelo e4b7oe 
09197 ehUT Se 
09197 obeTuse 
N19 o5ubhe 
00P2u 050928 
20197 eSARVO 
a 2O0R $e 
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eOlRS ohurve 
292m 066298 
oll oo798 
00160 ohG50e 
eM1Ko o71 Bue 
00167 o72978 
2e016u oTUAle 
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oNelo oh2iue 
oNlet oAS?oe 
olds eAS2Qu8 
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012d oF01ue 
0116 =, 91328 
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09098 oFS4ue 
oAG6u eI40be 
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eNGHy 0955H6 
eOUGK Po) 
2oNUSK eIhbue 
29042 oFTiue 
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oN0ue 290250 
0M V43 eo Ibhde 
00034 099056 
00019 024226 
o0UNd 09408 
oN0t6 099520 
onnina oIIHhe 
eNUN7 099706 
290% 0997b6 
N06 099936 
oN0N 699946 
onunt 299976 
e900 099976 
PU | 1.00008 


HIGH FaTER 
LOweR FREQ, 
LIKtT 

Covvcseeesesoe 
1.3829 0090! 
1.3499 40002 
1,3569 20001 
143438 20008 
1,330R § ON12 
13177 2004 
163947 00ned 
1p291h = OM1A 
1,27AA 00017 
122655 0092? 
122525 003! 
152395 00S! 
1.2764 20039 
1,et3sa 00042 
122903 00NS5 
11473 00056 
101742 00046 
Leloi? 20936 
1.1464 20NSA 
1.1351 00059 
1,1?20 00NSA 
121990 00AS2 
1,0900 e0nhe 
1,0A29 00966 
1,699 00099 
1e(568 00 NHA 
1,0435A 00087 
1.0307 00996 
1.0177 00149 
1,046 ote 

29916 00126 

0978 e0tbe 

29655 00156 

09525 eut3s 

09394 00156 

99P0U e001 sa 

9t33 00156 

09008 e01es 

28AT2 0015! 

ot 7ua 00166 

266172 = ato? 

ACC) eo1du 

oAS5) 00150 

28?20 §=oAlo2 

22090 00159 

27959 = 0147 

2729 200150 

2769R 40167 

2 750A 00181 

oe T4SA 00186 

27307 = 00206 

27177) = 60182 

a70U6 2010A 

20691b 00182 

26785 00165 

2645S 20189 

26520 00168 

26 $90 20109 

26763 0016R 

oO133 20180 

eh Any 00172 

25472 e002 

po742 0171 

05611 e0l7n 

aD MKY 00164 

25350 016d 

25?2n 200169 

25089 00554 

24959 =o 0162 

2429 20153 

469A = 0146 

24568 =o 015A 

24457 00128 

243407 = 09 SU 

04176 00ted 

24046 =o 0127 

e398 o0ne! 

0 STAG 00099 

03655 00105 

o3%eu oon 

3394 00NBA 

23263 eoney 

05133 0098? 

25902 00094 

22h? 20969 

2274) 00060 

peo 20955 

peden 00983 

22390 00946 

aeeen 20047 

22°K9 20nun 

21959 onus 

lA2An 2025 

169A 29026 

a)So7 00025 

21437 00916 

2130h =o 008A 
all76 000A 

Pa 00005 

00915 00002 

0765 00N01 


e 
e 
CUM,e 
bREU 


20001e 
00N03? 
000048 
000128 
e00eds 
200328 
00055% 
ev0res 
000898 
oornie 
0014s 
eoi7ee 
00P11% 
002538 
ot PHAe 
e03eue 
003098 
e0405% 
eudose 
©0522% 
005808 
00652% 
007148 
007608 
00h798 
00907% 
e105us 
o)1508 
01 709% 
013958 
015218 
01668 
ol Ay be 
0} 95ue 
o2tine 
e2euue 
o2t99e 
e2502e 
eoa7iue 
o2Aene 
050418 
0314656 
o335us 
054968 
o3o5ue 
o3A028 
039518 
out yAe 
o42gge 
o44bSe 
046948 
o4A7Ue 
o50U18 
eSeeue 
eHU09F 
o559RO 
oS 7679 
05956% 
eo1eue 
063048 
064768 
0obSH8 
0 6AU98 
ob97TAG 
oTloe% 
o7326% 
T4958 
076298 
077948 
0 79uSe 
eBNG1e 
08 2uRe 
08376% 
085308 
066538 
oATo0e 
ofASOe 
0894098 
090548 
091458 
092330 
093008 
093b2e 
eINThe 
295458 
096054 
096608 
0971 ue 
097O04% 
e9AOT® 
o9AuTe 
eo FABAY 
099128 
099598 
099628 
o99TAS 
099B6% 
o999UE 
299978 
099996 
1000008 


Table B-34b 


LO*eER LIMIT OF CLASS INTERVAL SHMwN, ALL HEIGHTS ARE NORMALIZED AY HALF THE DIURNAL RANGE 
s HIGHER HIGH WATER e 


HOURLY VALUES ° LOm WATER s 
s e 
Lower PREO, CuM,e Lower FREO, CuM,e 
uisgt PREO,® LIMIT FRE 
Steesesocgesesee woee eooe seossoes 
123829 000 00008 22455 =, 001 20nole 
1235932 00000 20008 02750 e0nod 20n0ue 
1.3194 o00N2 ,00058 22046 =o 00H =, 004 08 
1.287o 00004 200078 1842 20nen o0nste 
122558 60006 013% 163A 20022 40520 
1.2240 =e 0011 000248 = 4 14$4 4 ONAF 0798 
1,1922 «0014 0005R8 01229 0006Y o0lure 
1.1604 00017 000548 01925 00M? 2002098 
1.1286 ©0023 200778 20A21 20n99 203098 
1,968 29026 oN1N3e OWT eules oousie 
1.9650 00036 01399 20413 20129 05608 
109332 00040 .0179% .020R 0169 07208 
1.9014 00052 0a S18 20204 =0129 =, 08u 98 
090% 20067 292988 = e,0ANn 00153 1 Nn2e 
09378 =o 0074 = g O371% e004 601SH =o 11 SB 
29060 200B6 of4S7# @,0h0A 40173 of 3318 
eA742 00093 = —60550% e,0A813 c0173 015048 
oAueu onind 006538 wel MIT 00175 016798 
eA1NG «=a 19K = MTHT%® «eet 7rt oO17S = 1 BS28 
07789 =o 0119 «= BFF = o1U425 0159 = g PON PB 
o74Ty 00130 0f010% 201629 o01oA e21hne 
07153 00139 01155% ws ASU 00153 o23ste 
06835 oniss 0138S ©,20548 00134 e24oTe | 
eb6517 00165 =o NU7N8 = @,2242 40153 = a 2beN 
0h199 00166 o!636% e,2Uu6 201d eoTuue 
25681 10172 «=e 1 A068 ©2659 4012A ,2A720 
05563 oe 0IA2 =o 1990% a,PA54 40120 429928 
0524S =o MI AT = gs 2N77® e559 = 0105 =» STP 
04927 00192 023698 263764 00017 oS2148 
04009 6195 92565 ©3467 20109 p33eue 
042% 00198 027628 me3h7I 00102 0 $4a5e 
0 39738 enend 029718 e,tATS 00109 035548 
23055 002n8 03179% = ,4nB0 00107 oSouls 
03337 00200 0 33F0% © ,4PBu 00102 oS 7uSe 
PA hd 2026 0356 © ,4UAA 20099 2 AUPE 
P71 0026 037928 2,449? 20ngs 2 39508 
eP3AU = of 20) 23992% ©,4A9%6 ,UN99 40358 
0266 enend 041968 2,510! 00114 o41uge 
01748 enenkd e44NS® #5305 00116 o4?658 
e430 enete 046178 ©5509 e0NRY o43ude 
et1!2 of P12 .4BPA® ©,5713 004M QuusAe 
oNT94 00207 050%6% #95917 00405 o45U te 
oN 476 on2ns 05239% e,6127 00092 046558 
01158 =o 0192 = SUB1% = eb326 =n UIT = Qu Ue 
@o0160 00195 056268 26550 00102 o4Buue 
we0K7B = oAIA6 = 5A12% 7.6734 40094 .u937e 
229796 «=o M179 = 599NG 693A 40105 = bNu2e 
eotitd e167 ,61578 ©7143 40102 pS144e 
eot4S2 09165 963228 67347 20181 052558 
e.01750 00160 064818 67551 200106 053018 
2.2068 ootde 066738 ©,7755 00106 05468e 
2.7386 00142 06765% ©,7959 011d 255808 
e,2704 0134 68998 ©,816u 00122 = 57028 
2.3022 nite o7031% 54368 00150 eSAL ee 
203539 «00128 =. FH59% | 44572 010K »59208 
205057 00198 072768 © ,8776 20129 ooNude 
2.3975 =o 118 = 7395% ©8980 40133 261828 
© 295 0112 075088 ©,9184 90132 eotise 
ee lolt o0tts 076208 ©,94369 00129 eoUuue 
2.4929 =o 0112 =n 77828 «09593 = 1149 65988 
2.5247 of t10 »7843% ©,9797 40141 ooT3te 
225565 ef10S ,7948% ©1,0001 20147 ,eRAne 
2.5883 =o 0103 = B0S1% 1.0205 60143) =n P0238 
#6201 e016 oA{S7# 01,0450 e0tut o163% 
226519 09098. gA255% 1.0614 40157 473208 
206837) 8=—o 0101 083568 ©},0A18 ordi o74ole 
©7155 00097 084528 91,1022 200948 276098 
@o7473 00098 0A550% elelrrb 00156 017058 
2.7791 00092 =, Ab42% o1,1431 00136 = 29018 
© oA109 009 oAP3BE of e1h55 o0t3A 080398 
a Aue? 00092 oAB309 of ,1A39 015A 281778 
@ ATK 00090 oA9PU8 ef .2nuy 00145 oAse2e 
2.9062 0092 490128 e142747 0121 2B4uude 
729380 eOUAT = 99 wt e2452 60124 | bSoHe 
2.9698 oM0A3 oF A2® 1 .2hS6 00124 ob692e 
e1.9016 2e00R0 092h2% ©3260 00129 oBA218 
o1,n33u 000A 093428 e1,396U 00145 oAV3Oe 
21.0052 00073 094152 01 526A 00116 090528 
©1.n970 00068 o9UA3® a1 ,3473 2010A 091008 
2101288 of 0hb ,9549% e1,3h77 20977 492578 
21.1606 0n059 296089 of, 5ABI 20045 093208 
1.1920 20057 096648 ©1,4NB5 00072 093949 
21.2242 e0US2 p9716% 91.429 4064 294578 
21.2560 00044 9759% @1,4494 .005A 495168 
21,2878 0042 ,9891% ©f,4h9A .0NO} 295760 
21.3196 00034 09836% ©1,4902 20NUAR 2962u8 
e1.S514 06029 = 9R65® 1.5106 .ONLA = 9h726 
21,3832 20026 oFAF1% 165310 200A 097186 
e1e4150 o00A1 09912% 01.5515 0049 497078 
e1,ddb7 «=o NUIT =o 99298 145719 40039 p9AOHE 
21,4785 00046 099458 ©f 5923 000 Sh o9Rure 
e1o5103 00094 099598 1.6127 0 ONSh eOKTT9 
#1,54?) ennt2 099708 1,633! o0N2Y 099018 
21,5739 0008 099788 01,6535 20022 099228 
21.6057 2908 o99A5® 01,6740 0024 099458 
21.6375 29005 099918 01,6944 200th 299638 
2456695 eN0nd 099958 of ,714A 00ND o99ThS 
e1.708) onons oP99R® 1,735 o0N4t 099678 
21.7529 eof ON2 499998 e14755h 4007 499958 
01,7047 oN0N$ 1.90008 &1,7761 00908 0 I9GRG 
21.7965 ef 000 1.0090% ©1.79h5 2002 1.0008 


252 


2,865 Feet, 


LOwER LOw WATER 


LOowFR 
LIMIT 


ey ,0077 
21,9215 
e1,0554 
2149492 
°1,0030 
21,0769 
21,0907 
21,1046 
e1,tiAu 
#1,1322 
e1,i4oh 
#1,1599 
21,1738 
=1,1876 
=1,2014 
21,7153 
o1,2c79 
-1,c429 
71.7568 
=1.2706 
=1.2bus 
21,293 
e1,sirt 
e1,3260 
21,3398 
o1,3537 
21,3675 
=1,3815 
=1.35952 
°1,4090 
=1,4226 
21,4567 
°1 4505 
21,4644 
21,4782 
@1,4920 
21,5059 
e1,5197 
21,5336 
e1,5u7u 
21,5612 
1.5751 
21,5889 
21,0027 
*1,6166 
e1,6504 
21,6443 
©1658} 
2196719 
2146858 
#4 ,69%6 
21,7135 
°1,7273 
Se 
24,7550 
©),7088 
"1,74?6 
21,7965 


FREQ, 


Cur, 


1.00090 


+} Nal aahahatannanaded fall 
HE erry | 
T VV LAL dul 

arene 


Ee YemiS73) 


MHHW | 


7 


Figure B-35a 


HUMBOLDT BAY. CALIFORNIA 


00 Qnon,o 
0 0 o 1] = HOAq » 1} 


SCOGROBDOADAOBHDOHA HOOD 


x 9 


XKXKXKKX KKK KKKX KK XX 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER @ «nmpxinum «WEAN HIGHER © = MEAN 


"o Omooo2o8 oo DOOOFFPFTH9FTF AAA oOAAOG 

06 

xs G9 FH 0 FHHaHA0THHTHBOFXF200H 
® 

x x 


x 
a xx 


-1.9 
12345678910 l2 64 69 74M 719 
HONTH OF THE YEAR TEAR (1963-1981) 
LOW WATER o «new © © MEAN LeNen X= MINIMUN 


POGU8O07[D MA DADAADD 


OCHOHOHHRAHTDHGHHOO0909UBDDB 


12345678910 12 6H 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © e@ DIURNAL TIDE @ = NEAN TIOE Xe STD DEVIATION 
0.5 


0.0 
xX x xKxxXXxX*X x KKK KKKXKKKXKKKKKKKKX 


55 


12345676910 12 6H 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-35c 


254 


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Table B-35b 


LOPER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED AY HALF THE DIURNAL RANGE 3.202 FEET, 
s HIGHER HIGH WATER ® HIGH WATER e HOURLY VALUES e LOW WATER e LOWER LOW WATER 
6 e s ® e 
CLasse LOWER FREQ, Cus Lower Frea. CuM,® Lower FREQ. CuM.® LOWER PREQ, CuM,® LOWER FREQ, Cur, 
No, 8 LIMIT FREQ LIMTY FREG,® LIMIT FREG,® LIATY FREQ.® LIMIT FREQ, 
SOSSTESSHT HE HSHTESHTOHSHSHEHSHHLE TOOK SHS HOSES SHES STSTHSE KES HTH SOSH POTS ESOS SSS ES HHS TET HETSSHSSERGEssEoRE PeCoseeeoesesseseeeses 
fols teS;o4 2001 29001 41,51ua 00001 ~ e0nU1* 4.5104 20000 200008 01555 00001 209018 e,3468 0001 00001 
one 104996 .0003 ef0nde 14,4954 e0nul 20002% {1.4772 00000 00008 e135A8 =. 0004 20005 =,3015 09,0000 20004 
99— 1e4RAB 00001 e0UNbS® 1 ,4A0§ 00002 eON04F Fundy ©0003 090018 01162 20008 200138 o,3764 2000) 00005 
QAe 1.47R0 20003 000098 4.4655 20903 00007 444109 20002 000038 20966 00015 200N2A = ©,3907 06,0000 00003 
978 1e4H72 29006 e0015@ 1.4505 20009 00916" 1.3777 0003 090068 20769 e003! 00959% ©4053 20001 00004 
Qbe 1.04564 2n01n 29025 15,4355 0010 009268 43,4445 00004 200118 00573 = 00U1 201008 4199 0007 2002 
958 10450 Oe} 70896 14,4205 00910 00036 34,3113 ©0006 000178 00377 00069 001698 |,43u5 200004 00016 
Que {edt4uk 00018 020528 41,4056 00910 20046 3,978) e009 000268 00181 0006) 202308 ©, 4u94 20006 20022 
93e 1e4adu 29013 290h68 1.3904 oon 000578 4,2450 Oe 09037% @,0016 0078 203088 4637 20010 00033 
928 164132 29010 eN0768 143756 00014 00067® 41,2118 09015 00053% e.0212 00091 003998 2, U7A$ 20013 200046 
918 tedn2u 29025 e01N28 1.3606 00011 e007A® 43,1786 00019 eO07T1® e.040R 00104 00503% 2.4929 09019 00066 
9ne 1e3¥l6 29016 eN112@ 1,35457 e0net 00099% 4,1445u 00025 09096 2.0605 00125 006288 ©,5075 00015 00f84 
B9e 123ANb6 enuts eOL27e@ 1.3307 e0n2d eotes*® 1.1122 00031 eO127® ©,0ANI 00132 007598 9.5224 20013 20094 
BAe 41,3700 29015 eOUee 443157 00019 e0N42% 41,0794 00041 094698 ©,0997 elo! 009208 ©,5568 22022 00116 
B7e 163592 9015 oO157@ 1.3007 e0net 00f63% 4.9459 00049 o0217% e,1194 20166 ofMB6% =,5514 20025 e042 
Roe 1,3u5u ofvu2y eNtAue 4.2857 20934 eO197*® yonte? 00054 092728 2,1394 20162 01248 «©,5660 29022 o016u 
R5e 103576 290%6 002208 14270 00ned 0022bF 09795 006d 005358 e615R6 200163 of 411% 2,586 00031 09196 
Bde 103268 29034 e0254e@ 15255AR 00931 007578 09463 ©0078 eOUI3S 29,1753 o0N7t 015828 ©,5952 00045 00240 
BYe 105160 09025 o0279@ 1 .24A e0nsa 002918 49332 00088 o9591% #1979 860165 =o 1 TUT® =@ 6098 00045 = 0285 
are 1.63052 09036 o0$95% 142758 00045 003568 ABOU 200090 00591% 252175 00167 o1915% eo ,h2uu 00055 00340 


Bie 1.294u 09049 293558 1.2109 00054 00390e 2AbbB ©0108 006998 ©2372 00177 029928 6.6590 09046 00387 
B08 162h35 2NO4N6 e94N28 441959 20nSu oOUuye eALso oAtys eNBL2% @e256A 00152 e2243G = @,h536 29057 04d 
798 162727 09048 e045ue 4 ,1AN9 00058 005028 27804 e119 oN931% ee .PTou 00173 o2416% 246682 20058 20502 
7Re 102619 09040 ef4908 4,1459 00057 005998 o 7473 00133 01064% e,29h) 20159 025668 ©,68?28 20076 00578 
T7e =1eASt1 9081 205418 141509 20076 006548 07141 00138 olen28 9.3157 00159 227059 ©,6974 20087 200664 
The te2un$ 29049 005958 1,1500 20081 0071Se 26809 0145 013478 9,5$353 00129 228548 = ,712] 20070 20734 
758 102295 eN0b$ 090538 Tetetn 00Nhe 007978 6477 o01u9 e1496% =,3549 00132 02905% 22,7267 00109 oY 
THe 1ePjF7 oM0R2 097358 4,1%60 200090 eo QABAE A145 00156 0165728 e,3746 00426 o3SNG1F | 7413 0112 0095S 
738) 10A79 2066 eOKNCH 15,0910 00103 00998 25813 00165 016178 ©, $942 00127 032198 ©,7559 .f099 41054 
TPs 165971 a as eNBALS 1,0761 00tis elious 25482 onire 219898 ©4138 200120 033398 ©,7705 o9110 ollea 
719 telnns e0uRG eO9OS8 Leb eotin oj2iue 25150 00172 0216)% 24435 20131 234708 0765) 20106 = 1270 
Tne 401755 20069 o10338 Jecdot 00108 013228 24818 e016 = 23478 @ 4531 00817 055868 | ©,7997 29142 = tut2 
o9e Jel? 29100 ol34e ye03t) eoted o1dube 20 4UA6 00196 =, 25438 & 44727 oOjtt 036978 ©8143 40163 61575 
oe 161539 eoyta el2U7s y.01o? 00119 015058 04154 00192 02735® © ,492u 00111 03807 ©8289 20184 01158 
o7o feludt 09108 013558 Fennie e0len 01685e 038235 002n6 e294® 45120 00106 039138 ©, 8435 00170 01929 
ore 101323 ont ol47oe 2986? 00149 ol Asue 0 B49 09207 03148 @e5316 00101 e404 =, B5At OL 02090 


e5e 101215 09321 0!59ne o9712 00149 019838 03159 00209 o3357% ©5513 oON17? 041328 ec, R727 09185 02275 
646 161107 M12) el717e 09562 00156 oft she 2?be7 nets 0 356K 245709 00148 042u2e ©, 8874 e0215 e24AB 
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BAe 1,059 00146 2? 655% Abou 00177 o3127% 201B36 0020u e4B3US = @,6AKT Olin 049059 ©,9750 201% 03077 
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Sue 169027 0017S oS35u0 2hO05 00175 oSA22% 9.491 00209 eFOH3e oO oTATA 00126 eS3758 Of ,98b4 00227 e45S77 
Ste 299190 eN1tY et53Se 0791S 00178 039958 go nkry oN206 eSHAH® |, 7AGA ott e54HHe 01, 0UAN Pua | o479A 
See oFhNt ones oSTeoe a770% 00156 041519 2.4155 00200 eO06K8 @,hAbS oNtue erheh® of 0077 oNeed e075 
Sis 0979S 00194 oS9OLe 27615 00187 o4SSA® wo, 1UHo 001AS o625S8 ©, AP 61 00135 oS7629 21 ,077N 29246 05269 
506 09595 ofelk o41 796 27466 20186 045248 ©,1818 001ARe 064358 ©4457 00130 059008 01,9919 00218 e487 
ude eOnA7 09245 e4u2ue 27516 00159 046838 ©7150 00169 066048 e,4654 013A 260598 ©1 1065 20890 2S08t 
uae 09578 eN20n e4osus 27106 00174 e4ASAS »9,2uAR2 o0167 e6771% ©,8AS0 20154 261938 91,1211 29190 2587 

uve 097% onedy etbhue 2716 o0t17u 05051% oo, Pb1u 001586 06929% 2.9946 00137 063299 99,1557 00219 206090 
une 09162 Ca | 050528 ebAbG6 00172 05203% o,3445 oS) o7TORO® = .9243 20159 o64b98 e1.1503 20202 06292 
uSe 09654 0227 oSP7%e 26717 20154 05357% wo 3urT oO1us 072238 ©9439 0015A o6627% ©1,1649 on2n2 06494 
ube eAQuo eN19y eOUTe e6567 00172 055298 21,3409 00140 075628 =,9h35 0014? 067098 @49,1795 01169 06062 
ute oAR3B oN2tA o5OAKe 20417 00162 056918 ew ,Updy 00130 274928 ©9542 00146 06915% @1,1944 0181 A | 
ure 08730 o02i1 eSb9Ne 20707 20562 05BSUF = eUU7S 00131 07623% ©1,0028 00154 070098 ©1,°0A7 eneny 07050 
aye eAn22 02h ehleee ebttA 00169 06923% ©4804 oles o7T4O% 01,0724 00152 072208 ©1,7233 20179 07229 
ane eAoia 29205 eb52be 0 S5IOR e01o! e61bU® 2.51 %6 ont? 07865% =$,04e} 200152 o7373% ©1,2380 200155 07585 
yoe o#uno oNe24 065476 2DPlA 00164 063508 «5408 Oli? o79AR2F 1.0617 0015) 075248 ©1,2526 200182 07567 
yas oP29K 29217 sbThus 2 560A 0167 00557 0,560 A wi) oA097® e1,0A13 20167 276928 21,2672 20155 07722 
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350 0797u oA194 oT 3n78 95719 200167 o7OS1® o.6795 00108 oAU27% 01,1402 00154 eA{10% e1,3410 0914S 081586 
34s e7Hho 2Nens 015728 25909 09159 071908 04,7127 e01n7 085348 01,5598 200122 ohesee 23756 09128 08286 
3te 07758 20151 277258 24919 20156 o7346% 22,7459 efin2 oAOS7% 21.1795 20120 263528 ©4,3un2 09139 084?5 
Vs 07650 092m 079250 94770 00190 0753608 a,779 00105 eATU1% 01,199] eel 2847S ©4,3548 20126 28554 
Jis 07542 0200 o8\ Ase a462n 00168 o7704® a,AL23 00105 oABUu® @1 42187 00132 086048 #143094 20107 28661 
une otugta aN lRQ oh3Se a A) 00156 0o7A6NF @,A45Su 00099 oAGU28 af PAN oO1Nt eA715% ©1,3h40 0122 e87A4 
2ce 275P6 Cun ohUtos odtan 00150 o8N1N® a ,ATAb 09095 090378 @$o2580 00116 o6AS1% ©1398 20094 08877 
pas 0721A a 045758 41 To 00158 eH10A® 25,9116 00093 091308 O162776 20095 289268 14135 20103 489A 
27s 07110 o0it7 oAT1 $0 242s 20140 08308® © ,9450 200RU 092148 ©1,2973 20099 090258 ©1,4279 29093 29073 
Phe e702 2125 eAA tHe SAT 00158 08445% ©,97A2 000RS 09299% |1,3169 e0not eV1}O% =1,4425 200635 09136 
ene 26R9U 00128 oR4o7e 03721 o014u 085898 01,0113 000A) oFSAI% 91,5365 20NAS 091998 94,4574 2008u 09219 
aus 067Ao 209) 090588 2557) 00159 eBTUA® 01 nUds 09075 29U56% ©1,3562 20091 097908 ef UNIT 00069 092R8 
23e 06078 209105 oIMhee 25422 00126 088748 of ,n777 ©9070 09526% 91,5758 2007R 093098 o1,4bos 00067 09355 
are 26570 09099 oI2oie 03?720 20823 089968 01,1109 00063 o9SABS @1,395U 2069 o9U37% 91,5009 20064 09419 
aie ebuhe NID 093508 e3t2? e0ttd o9111F of ,1 Udy 00056 0964U9 a1 ,4151 2 0N6AR 2095058 91,5155 0008) 09500 
aoe 06354 oNOTs Pe a 22972 00102 092139 of ,1772 00052 096968 -1,0347 0005A 19504e 21,5304 20069 09569 
198 06246 20079 0 I5N4e a2he2 200% 093098 of ,2104 00051 097478 164545 00NUS o9H07% 21, 54u7 00033 0960} 
146 e618 29056 o95nTe Pra 00095 094028 21,7436 en0u) 297AB® =1,4739 00NU6 2965388 91,5593 0045 09646 


178 ohne eNVbN 06278 22523 00996 e949R® 01,7768 20046 2 IAP5% 91,4936 eONuA 297008 @4,5/39 2043 09690 
lhe 25921 29u55 eWR2e aPtT3 20079 09577% 91,3100 00032 09B57% ©1 65152 20nu9 29750% ©1,58A6 00051 09740 
158 oSH1G 09046 oIT Ate 22?24 20070 096468 04, $43) on0?7 eFARAU® ©145327A 0004d 097928 =1,60%2 00089 09779 


j4e 05795 eN04dS 097738 207d o0No7 o97T13% 01,4765 00024 e99OAR® 01,5525 00026 ePAL RO ©) 6478 0057 09816 
te 05597 20042 096158 e192u 20955 0976B% 01,1095 ©0019 099279 =1,572) 002A e9AUT® =1,6524 20028 09645 
12¢ 0 5uke oNueT oMhues el774 20043 09A12% 01 ,4u27? ©0016 099438 01.5917 00NS2 o9A79® @4 6470 09035 098786 
118 Pal tol | 00057 o°b7%8 aioen 20050 e9A62% 01,4759 000i 09956 ef ,6114 2002? 09906 =1,6616 20022 09900 
196 052758 29918 096908 at474 20022 e9ABUF® 01,5091 00st o99HK® @1,0310 20019 099258 =1,67h2 20001 09924 
on 05145 00019 99128 ai325 00051 099154 01,5422 ©0009 0997T7T® © 160506 00Net 099468 =1,6908 00015 09936 
Ag °5057 00077 eI939e 01175 20N2K 0994S% 01,5754 21008 099P5% ©1,6704 20N15 099618 91,7054 00015 09949 
Te odgu9 eN0IS 299548 01925 20016 0990NF ©f h04%6 e006 299908 ©1,60A99 00910 o9971% ©4,7290 phore 09961 
he eM RAY eOutS eI4ATS 20875 00ON1 0o9971% 01 h418 00004 099948 @1,7095 20007 099788 21,756 e013 09975 
Se 047355 09007 299756 21726 20090R 099798 01.6750 on0ns 299978 ©1,7292 2009 o99AT® ©1,7492 60099 09984 
4e 0625 29009 o99Aue 20576 o0nld 099928 04,7081 en0ne 2999R% 1, TUBA 20N05 099948 =1,76039 20007 09994 
Vs 04517 Pa) 29996 et 26 20905 o9997TF of TUF eN00) 099998 @1,7hAN 20nnd 099968 @4,77AS 20004 09996 
Pe 64ure 2un6 299208 20276 20008 0999R® of 67745 NOM $,00NNe =1,7Ab) 20n0y 099998 =1,7954 20008 69999 
le e435] eN0NG 1.90008 2126 260902 $40900® 01,8077 00000 1,90008 ef .4n77 eonot 41,0900 21,8077 20001 1.0000 


256 


Humboldt Bay 


MSL 


Tal alll ALAA 
VV VE 


“Halil WANNaM atl AA aA al al 


NAMA 


HOURLY TIDE HEIGHTS 


CRESCENT CITY, CALIF. : JANUARY 1973 
REFERENCE STATION: HUMBOLOT BAY, Cale 


Figure B-36a 


13 


ie 


20 


MHHW 
MHW 
o 


MSL 
Equivalent Gaussion 
Distribution 
-o 
MLW 
Extreme Monthly LW 
MLLW a 
-20 
—— Crescent City, Calif. 
———— Reference Station: Humboldt Bay, Calif. 
0.01 0.1-30 -20 10 -o 50 o 90 20 30 99.9 99.99 


Diurnal Range = 6.97 ft 
Figure B-36b 


257 


SHESENY CU ros CaN UP Ue 


BHOTBRHOHKHTDHOLHOOAZHHOO4H00 
XxRMKREKKKKKXKKKKKKXR 


79 


Ire 3) 4S) 6) 7-89-10) le) 64 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 = maximum © «= NEAN HIGHER X = MEAN 


DoOoOoOTH0000O FHA GoonAaD 


PHMHFHHHAODCOHOFOPC OO 


12345678910 12 6Y 69 7H 79 


MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oe wean © = MEAN LONER X= MINIMUM 


PORHHHOHLHGZHS99TNOO 


12345676910 ji2 6 69 7M 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE o |} owrnat Tie © = NEAW TIDE X= STD DEVIATION 
55 
° x ye KK MK MK FEM OX 
; 1234567686910 12 6Y 69 7M 719 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-36c 


258 


0000° noo? S2ed°t= 20000°s nndo® 900°) of s rs 
9566° on00° ASL2°b= 895660° 0000° a900°b se a woaet? egioe onin°te #4gdn° egtoe oe92°s eS 
eteo° 9ev0® TAIL T= 29560° 0u0v" Orbo°b ag * aeSie® waud? ddur’se asugn® obeue Oy92°h 645 
S296° G0U0® _809L°T= #9566° 000u° Odto°b af 2 aucore 00002 S0Un Te eQygn® Satoe tgde°s nS 
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2£40° ef60% Gand®t= #9560° OvduUr ez2ueb 29 * eSou2® 2ei0° b9uE° b= wtooa? ob20° never) 295 
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S056: BAO betes #9560" = Gu0U" arto 28 ® 052922 6 f20° 4 bAE™b= anyage 0000 o¢62%) ay 
S6 000° oned* t= #9560 nnoo 9enuel 86 * 29Sn2° 0000° srg? t= wnyag? oreue dy6e°s *%6S 
teaes er t0® Ss #2160" OOOO: eenes wot * 29Sn2e° gyud? fist*te ag9ng° Satvue 6L0EeS . 8u9d 
no eeu0 SOLL*T= w2tbo gu0u o2su alt s e992" g9¢0° b0ST° Te soy2y? obeue Oorees 219 
enge® 0000° ecud*t= eS2eHe® 0v0v° OuSo°b eet * eSs0bee oteve o2neit= wZ0g? ee00? Tnbgeh #29 
engo® egtoe 909° T= 2SZ86° eztue beo0es) ast a a9aule nnvo® 452°t> 262° Satue Zolsek #99 
bt26° HA00° Buu9° t= sf690° ou0u" 24990°6 ant 8 aenut? erioe s9ef°te aLoge® eseoe mneg?s ang 
Seige eo 0% Ua YS *f090° neds petons «St e abbate ecio° Llercte ayyse® eu0u® Soci®s 259 
66 #900 mnd9° l= «6n90 nnoo Selves 91 * soLSt° wgu0d? unifete avuse® vvoo® OnfGeb 299 
2069° et2o° 2€199° b= #5096" Oudu® 9seuct act * ebani® 2g10° w9UE be 200522 obe2ue dofaes 249 
nege° #8@00° v0o99° T= 2Su96° eudu dupu°l sgt a 209ate seboe Yoo2? be aly2e° 2atoe onng?s yd 
Hae Sdt0° yee te s81S0° esto COO D sot * angite vdv0? néod* te aente® Satve 0uSa°h #69 
ne 0000 9Sn = s9uf6 nndu 0o6u°s #02 a anarte ecioe eSue’t= endol® eydu® ToSeeh aud 
Feng® £920° nes9°t> ednfo° selu® noises ate egsule efh0° Oasett= soygi® Satue 2u9geh whe 
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OfoL° e2et0% oneo*t= af2teo® elev intieh wf2 2» 96940° Sdi0° 992% b= wosgi® gg00e Sueges Ed 
4092° szio° v9Ol9° T= snuou® @u00° Solicth en2 2 antgoe nnyoe n9ge*te salons? move 9545°b and 
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eseke ot2o° T209°T= efssu° 0000° dozs°t 292 * #04509 vou0? vene?be anunye nnovu® asegek #94 
4feL° eteo° $G6S°t© sfSSu° eu00° Ongtes e242 ® 20450° ggqu0? umazerte s09g5° Ano? Oboaeb sad 
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W6L9° veoo° £99S°l= 20209° Salu* ESSh°b ale a 21950° v0u0? oSuest= anyls® ey0u? nbbneb sie 
paces ee eee ate *Soec° gous monies eet 8 atsioe se geet ale s9601° nmnove pone 228 
” at 6ts = #lvugd Sato 9S9b eff s aoteo? odu0° sto = #£S501° egtue dienes e80 
9IE9® =LOE0® =dnnS*t= s2994° f920° LOLt*s ang 2 aoteds vdu0® anygl?be wl260% mnov®  goenet sna 
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afes° sato° £0aS*t= eigz* zitu® o0utol 29¢ 2 wSitoe vou0? oo9b*te s4.eu® mnou® Vatn?sb 2929 
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40gS° s.toe eSts*t= 29999° Satu® 2tobeb eve s 22f10° vouoe SSSI*t= wonsoe nnoo? Cannes se 
@mts® ecroe 99uS*t= stiL9° zatu® T961°b wot s aegtoe nnud? aenlste s20gue Hedu? mesn®) 68 
gees' 2g1o° gles ste #64S9° eety: nbo2*b «0n * sepud? vouoe Bela anbou® 0v00° 94Sn°b 206 
gn pnoo® enon®t= einng® Sabo s902°s) eth s 2g900° vou0? ofl be anigu® vy0u° L429n?s #h6 
S2en°  2gs0® = =ozen*t= 22429° gydur c“iteti een #9G00° mnvd® L92t°t= agegu® e2shue g49n?h #26 
fegn? mnoo? @6LN° te snyl9® £920" e9te*l ein * ennod® 00u0° sSofu® satoe oddn®s #80 
engn® erro° 92un°b= st2e6s° £9eu° ot22°sb ann ® ennoo® 00u0° 5 *ol2c° v000% Ogdn®s 476 
@tsn® et2o° nson*t= »as9S° 2gtue OL22e°b aSr a ennooe vou? USUT®t= seleu® Ooovue 2f9n°sb #56 
o2n° 2g10° 2esn°t= 925° Satu® 2eke*b 69h s #nnoo® 00u0° GLoU°be saizu® mnoue fyunel 296 
49in° moo? Otsn°t= eisgs° 2cto° €ate*l ein * aprud® vo0u0o® 9000°be wGutu? noo? mgbn?h #46 
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bene® egio° e22n°t= sagen? 2ztue @4Seeb ahs * ennud® nnuo® wh90°t= annvv® nndu® 6r'ge4 9 wlOt 


SOPHCRH AHH eH ATHHAS HA TEALH aH RHSHTAHEALAHTAKA SAKATA HS AHR AST SAHTATA CHT EA HEATH KK HHOAK STARK Ha sae HaAeacAstansetegseevadaas 


s Oud aIwiI]  s °o3u4 AIwI7 «8 °ON 2 es °62u4 alwl) 9 °99u4 1IW17  & “ON 

2 °whd °oada ward & °whd °ojud 4ano7 aSSV 138 # °aNg mand a3and) @ °wnd °olad nanot *sSvi12 
2 a a e e a 
@ Y3LVM MOD °OW 3nddLX4 8 BALM HOTH COW BWIdLXZ 2 * @ 49LVM 407 °On Jn945dX29 @ BIAV™ ROTH OW JwaHixd @ 
°1334 ences JONVa TWNENTG GHL 41VH AD G9IZIWWHaUN Jay SAH9T9H VIV ®x4UHS IWAadinl SS¥1I 4u 4twIl1 4307 

beef961 Vinwosl1¥) ail) in3I9S44) NOTLInNd NOTANBTetsra 


eOE-A PTIPL 


259 


HIGHER HIGH WATER 8 
* 
LOWER FREQ, CuM,s 
LIMIT FREQ 
SSS eSeeesseessgessses 
1,5139 e001 00008 
12526 20003 eN0048 
404912 29004 200098 
104799 M001 e00108 
1o46AS 29016 200278 
104572 20016 0004Se 
1eduSa ef0ts o005Ke 
1434S e0015 00728 
1e4231 20019 090918 
1o4y18 29012 eOLose 
Ledonu e012 oNlise 
1e3a%y 20015 001308 
1e3777 29028 oN1SAe 
fetoou 20025 01 Ade 
105550 20027 ef2tis 
1fe3u37 e903u o024Se 
fes32u 00043 e02Abe 
1e32t0 00034 093208 
103097 20052 oN3728 
179A oN046 end he 
1e2A70 00087 eNuSne 
102756 e055 oOS11e 
VeAodd 00075 oO5Roe 
122529 09066 evoSie 
Ye2dto 20070 297220 
102302 20009 207908 
102,A9 eO0KS e045 Sa 
1eA075 ef0RY eNO tue 
101962 oud? el 03 Le 
Leland 2009 ellP7e 
101735 29094 el2aie 
tetoee OU ia 015450 
101508 0009u 21usve 
101395 eO130 015698 
Yet2At eO1bu 017050 
1otte8 OU iat) othese 
fetoSu of12) ol Vue 
19944 09160 021s 
1oOH27 00178 oPe7Te 
1eo7ia 0154 o?usia 
10600 014A 025748 
10487 0194 e277 Se 
109373 oAl99 oe97ee 
100260 001A2 o31Sue 
1eO47 e015) 0 S3nSe 
100033 09155 oSuous 
09920 201R2 otod3e 
PA -) ol etdtus 
09693 00194 o40Pke 
09579 oNPl2 e426 
29466 eM22u o4Uhus 
09352 00196 e4bhue 
09239 20175 o4A35e 
09425 oN2?7 e50h2e 
29nl2 o021A 252A08 
oAAI8 e202 o5uRee 
eATAS 09209 290918 
oAot2 onary o591Se 
09554 0199 obliue 
oAudS ened 063546 
A331 09178 065326 
0A218 oA oh714e 
eAyod 2926 069218 
07994 09235 071596 
oThK77 Mela o75o4R 
07764 001 Au 079556 
07650 eO1AS o773be 
07537 0154 o7h92¢ 
©7423 M170 oA0b2e 
o7310 oNl7S eh2tTo 
07196 29155 043920 
07083 20160 2ASS2e 
26970 oN1%e eo Ao Ae 
26456 00115 oAbN Se 
oh 743 o0115 oAGIKe 
06679 oA190 eo FU 5e 
06516 29109 091168 
o64u02 2099 092178 
06249 =, 00RB =, 94058 
06175 0072 oIS7T70 
ohnb2 0906) oIN36O 
05948 20076 295148 
05ASS 00049 0956u8 
05721 0072 Fosse 
05698 eU4HK o9oR Se 
05495 00037 97218 
053A) 20054 0°77Ue 
05268 20053 o 96078 
03154 oNU%b oIKU ba 
0504) 09024 oIbh7e 
04927 09024 696918 
e414 00024 94120 
04700 09UN9 099318 
o4SAT 20013 099458 
04473 0001S 099608 
24300 29009 299698 
4246 00012 IIA IS 
04133 009% oIGAT9 
ont eons 299A 
eo 5400 N06 eIIIUG 
03795 o0006 Lenunoe 


HIGH RATER s 
9 
Lower FREQ, Cum ,® 
LIMIT FREG,® 
SHeooreesesesseesase 
41,5139 ,0001 00001e 
1,4995 20002 200088 
1,450 20902 20005e 
194706 20007 o001se 
1,450] 00910 200235 
1_4417 e0Ni0 000538 
1.4272 0007 2onune 
11,4128 00011 00N5ae 
1, 3984 00008 000008 
1,3A39 20012 000728 
143695 20916 0 00BAe 
1.3550 00017 001uSe 
153406 20n2d 001298 
1,3762 00020 e0tsne 
1.3117 0090350 eoisne 
1.2978 00026 002068 
1,2R2An 00930 00A36% 
1.2684 e0nun 002768 
1.2539 00044 003208 
1.2395 0004s 003048 
102751 00040 004048 
192106 000U6 00dsne 
1e1%2 = =.0061 005128 
1,1F17 20958 = 05708 
1.1473 20972 =o 06428 
1.1529 00067 007088 
1.1484 00076 0078ue 
1.1240 00085 004098 
1.1095 0007h 009458 
1,0954 20099 o10uue 
1,006 o01tn of154e 
140602 00097 012518 
1,051A 0012S 013768 
140373 00125 015018 
1,9229 00125 o16268% 
1,0984 o01td o174ne 
0994 00139 01 459% 
29796 00140 019998 
0965] 004d eetdae 
29807 e050 o2Agse 
29302 00156 8 8=6e24uae 
avetaA 00132 025817 
29978 00169 027508 
246929 200165 029158 
28785 00173 o3NBAS 
08640 00170 o3A5Ae 
28496 00197 o3ubus 
2A35] 00176 056508 
2b?707 00169 037998 
28902 =o 0183 =o 39828 
PAS! 00206 od 1 Boe 
a777U = O1BU = US T3 
07629 00177 045498 
07485 00183 047558 
27340 §=60193 =o H926# 
2T!% 00192 oS1L Ae 
27952 00210 05 tene 
26907 00196 055248 
26763 0019) 057158 
261A 00184 05 A998 
2470 00183 o60b15 
9h329 00159 ob2u1F 
061 AS 00163 064238 
ebM4) 00203 06626% 
0 5A96 00176 068028 
95752 00178 06 9h0% 
25607 00186 oT16b6% 
2546% 00150 07415" 
05319 00166 o 74614 
2517U 00146 076278 
e5030 00137 77048 
24285 =o OLN? =p PIAS 
p4Tuy 00150 0 8002% 
04596 00164 062269 
hho 015A 0b 305% 
24309 00155 084998 
04163 00142 oBOu1F 
a4019 0012S 087068 
93474 00123 0 BAB98 
03730 20116 09005" 
23586 e011! a Wad 
o 3444 20100 092178 
23297 00N8d o9301F 
23152 00079 093798 
a dNR 00nd 094708 
p2hb¥ 20070 095408 
22719 00084 0962U% 
22575 20005R 09662% 
pein 0005R 097408 
22786 2005A 2979A4 
Pre | 000u2 o9AG0F 
01997 ©0040 09RB08 
9185? 00057 09916" 
21708 20022 099398 
21564 20net 0996008 
2419 00nd 099748 
21275 =o ON10 0998U 
ait3n 00nu7 099929 
29986 0904 099968 
anhua 20902 299996 
20697 00001 fe0Nv0% 


Table B-36b 


LOWER LIMIT OF CLASB INTERVAL BROWN, ALL HEIGHTS ARE NORMALIZED AY HALF THE NZURNAL RANGE 


HOURLY VALUES 8 LOW WATER 
s 
Lower PREG. CuM,& LOWeR PREQ, 
LIMIT PREG,® LIMIT 
Shoe HSS oesseeooessoses SSCHCHORSESOSH EH DE Oe OES 
1.5139 0000 200008 21495 0001 
1.4809 N00 200008 01299 0008 
1.4480 00002 00029 01106 00910 
104150 20002 200Nue 00918 =, 0N2N 
1.3820 onu03 200088 20720 00031 
1.3494 00004 90128 00527 00M 
1.3161 20007 200198 20434 20nu9 
1.2832 00010 200288 00140 20N64 
1.2502 of0id 090428 2,0053 20076 
1.2172 00015 290578 2,046 20081 
$1843 00049 09075% 2.0439 20103 
1oI913 00028 = M1N3% 8 ,0h32 20996 
101183 0051 00135% @,0A26 20123 
1.9854 00087 oA1TH® 61919 00132 
1.9524 20046 00218 2.1212 20126 
1.9194 00056 e02748 24405 00140 
29865 00060 003348 241598 0164 
09535 enn7d 004088 ©1791 o0N4t 
29205 00076 e0URUS ©,19AS 2016d 
eAB76 =o N09 005758 e,2t7A 00159 
eAS4O. 00103 206788 ©2371 2015" 
A217 =o O11S = 17998 ©2504 20149 
27887 e024 oI915® © o2757 00159 
27557 e012 =p 10418 9472951 2015A 
07228 e014) o1142e $144 00149 
26898 eA150 o1332% o,3357 00126 
26568 0016) o149ue = =,45530 00135 
oh2d9 oOlal 016558 ©3723 0014d 
05909 20175 o1A30% e5916 00126 
25579 00176 020068 = 4110 001)! 
05250 00188 2194S @,44O3 00136 
04920 oo1Ad 023788 | ,4U9H 20118 
24590 00188 02565% 9.4689 00120 
0264 00198 2?764u8 e©,UAAP 40144 
0393) 00196 229598 @,5075 00123 
otone2 00207 031668 245769 00143 
24272 00206 «= 4 33872% = e5U62 840143 
0PAe 09200 035728 965655 20099 
22613 0200 o3772¢% ©, 5AUR 20099 
22263 00194 039678 e,60u1 001d 
01953 00197 04163 2,6235 00116 
21624 o0199 94$63% =,042R 0117 
01294 00199 ,4562% ©,662! oOS17 
20964 00191 047528 =,6A14 20096 
00635 00197 049498 =,7007 20125 
00305 00197 05146 ©7200 00827 
2.0025 0196 oS 343% ©7594 00122 
2.0354 00194 055378 #7587 00127 
2 oA 00192 057298 ©,7760 e018? 
©1013 eO1AS =, 5914% ©,7973 201357 
o.1343 00190 e6194% ©,8166 0136 
eoto7s 001A0 062848 @,8360 20439 
2.7002 00176 26461 ©8553 40151 
2.2332 00169 06630% 248746 40138 
22662 =o 163 067938 ©,8939 20142 
2.2994 00156 =, 6949% ©,9132? 0129 
2.33) 00146 8 ,7095% @#,9325 00160 
2.365! o0lul o7230% ©,9519 00953 
23980 00134 07370% 2.9712 40139 
2.4310 00134 0750U® ©,9905 014A 
0.4640 00128 07632% ©1,009A 20150 
20969 =o 1729 =o 77608 01,0791 2015A 
225299 00120 278818 ©1,0uau 20156 
2.5628 00120 oAN01% 1,078 00161 
= 25958 00115 081158 ef .0A7! 00130 
206288 00145 oA2308 el o1nod o013t 
266017 0013) 083418 0151757 00123 
2ohO47 00110 eAUS1® ef ,1u50 00134 
2.7277 «=o M110 =o F561% @1,164U 00130 
©7606 00107 oAO6R® of ,1A37 00123 
oo7936 0108 oA775* ©1,20930 oOftt 
e2R266 8060098 =, ABTU® HL ,2723 00131 
2 A595 001035 08977% m1 .2416 09110 
2.9925 0093 = 90 70% © 142609 20.116 
2.9255 00090 091608 ©) ,2803 20102 
26 95AY ©0084 092448 ©142996 20100 
2.9914 o00A3 =, 9327% —1,3189 0086 
e1.9243 c00AL o9UNBY ©1,3382 20089 
o{.9573 00069 e9UTT® ©f,3575 20N9N 
o1,n9n3 ©0067 095438 of, 5769 00074 
e1.t2%2 00059 = 9603% #143962 20N6A 
21,1562 00058 096618 ©$,4155 0070 
01,1692 00048 097108 1, 4548 200N65 
©j.722} 00047 09756% &1 4541 20044 
21.2551 00040 09796% o1 4754 ona? 
©1,?BAY 00036 09A832% ©1,492—A 2036 
24.3210 o003L 209B63% @=1,5101 2005A 
e1,3540 00029 oFA92® 91,5314 00945 
21,3870 00023 099138 ©1,5507 20029 
©1.4199 00049 09932% ©1.5700 00N29 
©1 4529 000415 o99U7% 1 ,5A9¥ 00026 
#1.4858 00044 09961% =$.6087 00033 
425188 00081 099728 |#1 6280 20026 
21.5518 9008 ,9980% =1,6474% 0016 
1.5847 00006 = 99BB® 146666 2002? 
@4o6177 20006 »9992% =}$,6A859 .0N0A 
©{.6507 00004 099968 91,7053 20910 
21.6836 00002 299988 ©1,7746 0996 
#107166 °000t 099998 01,7089 29004 
21.7496 =‘ eAONt 1eh0P0® eleIhS2 a} 
01,7825 09000 169090 ©1,7A25 00n0d 


260 


3.4au Feey, 


e 
° 
CUM,® 
FRFQG,® 


o0001e 
e0Ayne 
000198 
o0nune 
000718 
eolsee 
eOlols 
002258 
20018 
003828 
204858 
005818 
007038 
208350 
009609 
piiooe 
01265¢ 
014068 
o1570¢ 
017308 
0) A688 
oens7e 
221878 
o23use 
o2uUIue 
oebele 
027568 
029008 
o30268e 
o3137e 
032738 
033918 
0 S518 
oS624e 
oS TUAG 
e381 
239738 
oun72e 
oht719 
24rgte 
o4u08e 
045258 
o4bu2e 
o47378 
04828 
o49B98 
051118 
092580 
053758 
055128 
eDhUAe 
057679 
059388 
260768 
062168 
2o3u7e 
265068 


41,0000 


LOWER LOW WATER 


LOWER 
LIMIT 


2.3765 
22,3905 
eo404o 
2.4186 
©4327 
©, 4468 
er) 

2474 

©, 48A9 
2.5030 
2e.5174 
2.5311 
25452 
2,95993 
2.9733 
© ,5874 
©6014 
206155 
26296 
26436 
2.6577 
e,o717 
6858 
26999 
907139 
2, 7280 
o74?0 
e7S61 
e,77n2 
©, 78u2 
27983 
2813 
2.9264 
2 ,A4N5 
285u5 
2fbAo 
28626 
= 4967 
09108 
09248 
2 93AQ 
2.9529 
09670 
9811 
9951 
°1,9092 
21,0233 
21,9373 
e1,05tu 
°1,9654 
21.0795 
21,0936 
*1,1076 
ey,12i7 
Pi,1357 
°1,1494 
21,1639 
e1,1779 
21,1920 
21.2060 
ey ,c2nt 


Plecsue 


22482 
1,7623 
1.0763 
=1,2904 
21,3045 
1.3185 


, 24535526 


©1,3460 
2-1, 3007 
@1,3748 
°1,38A8 
©1,4029 
=1.4170 
=1,4310 
1,445) 
°1,4591 
e1,4732 
=1,4873 
=1,5013 
=1,5154 
21,5294 
-1,5435 
=1.5976 
“1.5716 
24,5657 
°1.5997 
-1,6136 
21,6779 
1.6419 
=1 6560 
°1,6700 
21,6844 
21 ,69A2 
-1.7122 
“j,7263 
=1, 7403 
21,7544 
1.7085 
21,7825 


SCeseogs ogo assesses 


PREG, Cur, 
FRE 
20005 00001 
20008 200003 
20005 90006 
20003 §=,0009 
00004 00013 
00004 00018 
200006 00024 
20009 20033 
20016 = 40049 
20019 »0069 
20012 §«.0081 
20021 20102 
20028 «40130 
20022 = 0152 
20022 «9 0175 
200045 00220 
00037 00257 
00049 = 40306 
0043 09350 
00067 = 0417 
00072 00488 
20046 00535 
20066 8 ,0601 
20072 00672 
20088 «40760 
20091 20852 
20099 40950 
ole 01062 
20127 01149 
a0136 = 41325 
00142 =o NMO7 
00136 = 1603 
29175 01776 
09155 =o 1938 
09190 2h 23 
e057 02280 
00167 e2uu7 
00175 02622 
201594 02776 
20200 8= 2976 
201% 03171 
00197 03369 
09199 03567 
00394 03762 
09205 03966 
20214 44380 
0019 04371 
209238 =, 4009 
09229 = 4837 
00216 05055 
00205 05260 
20185 54u5 
00387 = 5032 
00181 05813 
20187 = 5999 
20206 «96206 
09184 = 6589 
20188 46578 
09152 06730 
O17 06903 
09194 07097 
00157 7254 
06172 47426 
00178 07004 
0015) 07755 
200145 47900 
00152 06052 
00105 = 9 8177 
00133 08310 
20125 ,8U36 
00125 =, 8564 
20109 A670 
00108 8778 
20082 208860 
0112 A972 
-e0103 9075 
29072 «= 9147 
0006) 09208 
09073 09281 
20046 = 9528 
09087 =, 9414 
29073 «=, 9488 
20063 49550 
20048 49598 
00042 09640 
29040 = 9680 
20037 09718 
20054 8= 9774 
00042 oFB13 
20034 09848 
20027 49875 
20025 09900 
00024 = 992.4 
000135 09937 
20015 09952 
20015 09967 
200010 09976 
20004 09982 
00009 «49994 
2004 09996 
20094 4,000 


Humboldt Bay ~~ 


Wy 


25 
HOURLY TIDE HEIGHTS 
SOUTHBEACH, OREG. JANUARY 1973 
REFERENCE STATION: HUMBOLDT BAY, CALIF. 


Figure B-37a 


MSL 


Equivalent Gaussian 
Distribution 


On 
MLW 


MLLW =->__"_ Hourly 
-20 


Southbeach, Oreg. 
—-—— Reference Station: Humboldt Bay, Calif. 


0.01 0.1 -30 -20 10 -o 50 o 90 20 30 99.9 99.99 
Diurnal Range =: 8.36 ft 


Figure B-37b 


261 


SOUTHBEACH, OREGON 


POTHFHOHOCOTCAHHOXAOHOD 
XKEMKKKKKKXXKKKXKKXKXX 


12345678910 ile 6y 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


mite HIGH WATER @emaxinuy ©@ @ WEAN HIGHER X © MEAN 


79 


i) 
u 
= PHOFF0DOFABHAOfOoD 


(u) : 
ai 2 roth. Lote meee CPOHDHBHHOHOHHHHX9T0000 
© 


123W¥56768810 l2 6N 69 7u 79 


MONTH OF THE YEAR YEAR (1963-1961) 
LOW WATER owenea © = WEAN LOWER Xe MINIMUM 
2.2 
Soa Bi ee DoTAF0FD0OFHAAGoDHeD 


1,.3@°°82 9020000080 PHOHHGPHHHHFB299999O8 


12345676910 12 64 69 74 19 
MONTH OF THE YEAR YEAR (19638-1981) 
RANGE = DIURNAL TIDE © = MEAN T10€ Xe STD DEVIATION 
O75 
0.0 KKK KM KKK KKK KK KKK KX 


x 
XX xxx xxx x * 


5a 
12345676910 12 6H 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-37c 


262 


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1ooe 
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9oe8 
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928 
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6?e 
6oe 
30 
646 
B3e 
62e 
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800 
798 
780 
776 
768 
7$e 
74ae 
730 
Tes 
716 
708 
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Ss 
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ose 
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298 
260 
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206 
199 
166 
ifs 
168 
156 
146 
138 
129 
118 
106 
96 
66 
7s 
oe 
Se 
de 
Js 
ae 
1e 


LOWER LIMIT OF CLASS INTERVAL 
HIGHER HIGH WATER HIGH WATER 
5 s 
PREG, Cum,e LOnER Pere, 


LIMyT 
Besseoveccses 
1.4547 00003 
todadg 20008 
10434) 00010 
1e4238 = 40006 
104435 00019 
Le4o32 e001s 
103929 00019 
1eS820 00013 
1os72s 20010 
1e3o20 00019 
103517 00025 
feduia 00018 
1o3310 00028 
103207 20030 
fodio4 00031 
1e3001 00025 
102098 00034 
10@79S 00033 
102692 00037 
10@589 00045 
1oau8o 00033 
108383 00040 
102280 00063 
1edi7? 20034 
1oaora 00082 
101970 00082 
101807 00100 
Lot7ou 00090 
Lolees oOl17 
101558 00415 
101455 00821 
401552 00143 
101249 0015) 
1ot14o 0044 
101043 00161 
100940 00139 
100837 voiva 
100734 00346 
100630 00182 
1.0527 00165 
1oouad 00148 
1.0321 00172 
1200216 00164 
100315 00202 
1o0ole 002035 
09909 001738 
09806 00808 
09703 e0leo 
09600 00202 
09497 00d09 
09594 00202 
09294 00206 
09187 00227 
09084 o0eS2 
06984 o0d4u 
04876 00215 
08775 00223 
bora 00193 
08569 00202 
0846 00176 
08303 00190 
08260 eO1o{ 
08157 00136 
06054 00173 
07954 00449 
07847 =o 01} 
o7744 00164 
oTe4) 00126 
07538 00161 
07455 200120 
07332 00127 
07229 002s 
oT126 =o 0418 
o70a3 0 O06 
06920 0017 
00817 00125 
00714 o0leu 
o6oll 00094 
06507 00105 
26u0u 20100 
06301 00084 
00498 40079 
0009S 00049 
09992 =.0088 
oSABD 20060 
05786 00048 
05663 00058 
05580 00039 
oSuT7 00025 
oS37d 0003u 
05271 00030 
oS,67 00024 
05064 0002u 
04904 00019 
04858 00016 
04755 00003 
04682 00003 
04549 00010 
04446 = =40004 
o4yuy 00004 099990 
04240 90001 be000yVe 


00000 
00002 


Cun,? 


005032 
00009% 
007708 
008798 
009896 
of09ue 
ol2326 
o13518 
01 4uyd 
05706 
ei 700% 
of Goue 
e20i76 
ogioue 
o28296 
025008 
020856 
028918 
031208 
o3326¢ 
035358 
037380 
oS9Que 
041308 
043198 
045278 
04706 
049196 
051068 
052950 
054858 
050068 
0584Re 
060378 
ooasue 
oun? 
00573¢ 
067308 
269236 
070786 
o7auoe 
073908 
075018 
077038 
078458 
079056 
081126 
062476 
083014 
obu71e 
065084 
087188 
068198 
088968 
090048 
090938 
091708 
09a5Be 
o933u6 
295986 
094776 
095496 
2960U6 
096018 
097468 
097Sus 
097918 
098338 
096059 
098948 
099556 
099408 
099506 
099098 
099704 
099078 
099988 
099988 
099966 
teoouoe 


Table B-37b 


SHOWN, ALL HESGHTS ARE NORMALIZED BY HALP THE OJURNAL RANGE 
% 


HOURLY VALUES 


LOWER PREQ. 
LIMIT 

Coeeslegsesesess 
00000 

00003 

00008 

00003 

00005 

00000 

20009 

00010 

00018 

00022 

00029 

00039 

1.0026 00046 
1.0299 00055 
09972 00063 
09046 00074 
09319 00u86 
089% =o 0400 
24065 00415 
08336 ©0120 
eS0l2 001430 
07085 00199 
07358 001ue 
07038 00155 
06704 20108 
06378 00167 
06053 0017S 
S724 00172 
03397 00382 
05073 00183 
04744 70187 
24417? «0 0480 
04090 00385 

o 3703 00166 
3437 00189 
e310 00182 
oa763 00190 
02456 © 0 0188 
e229 00380 
01603 00374 
21470 0016) 
01149 00174 
00822 00177 
004% oOlv7 
00109 00185 
20158 00164 
@,0465 0018) 
@,00i2 00170 
o,1138 00100 
e105 =o OTT 
001792 00173 
©2119 00174 
eo244o =o 0172 
@,2772 00164 
20,3099 00166 
©, 3426 0035) 
0.3753 oOsu? 
0 ,4079 00180 
©4406 00135 
o,4733 00431 
@,5060 00132 
o,5387 00129 
o,5713 o0sal 
©,6040 0012s 
©0307 00183 
©6694 00114 
©o7081 00115 
o,7347 o0h13 
eo7074 «00409 
29004 00100 
02,8328 0099 
©8654 00097 
@,498} 00096 
0/9508 00087 
20,9035 00089 
0,992 00079 
01,0268 00076 
01,0015 00073 
©1,0942 00067 
©1,1200 00058 
21,159 0005S 
01,1922 00046 
21,2249 00ua 
©1,2576 00039 
01,2903 00034 
o1,3229 00030 
01,3556 00026 
e1, 3883 0002! 
1.4210 00019 
01,4537 00015 
©1,4663 00014 
105190 0011 
01,5517 00009 
21,5644 00007 
10617) 00000 
©1,6497 00003 
1,620 60003 
1.7151 00002 
°1.7478 0005 
o1,7805 00008 
1.8131 00000 


264 


1,0000¢ 
4.00008 


Low waver 


02,9908 
100162 
01,0336 
@3,055) 


oli? 
eLoiit 
02100 
24,2300 
01,2495 
@102089 
o1,a68) 
405078 
e1oda72 
21,3466 
el odool 
©1,3855 
404050 
e1,4244 
03,4438 
o1.4633 
°3,4027 
23,5021 
*1,5a10 
e1,3410 
21,5604 
01,5799 
21,5993 
@1,6168 
1.6382 
21,0576 
o1,0077) 
©1.0965 
407159 
o1,7354 
23.7548 
o1,7743 
07937 
10131 


Seoeeseaes 


00008 
00008 
00008 
00049 
00036 
00028 
00038 
00009 
90058 
00088 
00080 
00088 
00093 
00105 
00108 
oO1tt 
001a6 


00138. 


014d 
00156 
00190 
00188 
0014 
00157 
00159 


00144 


00153 
00156 
00142 
00140 
00135 
00143 
00140 


“00136 


001d! 

00120 
00130 
00128 
00120 
00135 
00108 
0124 
0132 
00128 
0013S 
00149 
00140 
00148 
00158 
00187 
00132 
00158 
0014S 
00152 
00159 
00136 
00178 
o01u2 
00180 
00132 
00174 
00150 
0174 
oO1d7 
o01o2a 
00134 
0014s 

00135. 
012d 
00106 
00102 
00415 
00102 
00088 
00090 
00096 
00004 
00073 
00075 
00074 
00058 
00085 
00040 
0004S 
00048 
00044 
00004 

00031 

00032 
0003) 

00025 
00022 
00013 
00016 
00017 
00007 
00007 
00007 
00006 
00002 
00008 


4o1080 Lo 


CUM ® 
FREO 


0000) 

000048 
000528 
000a7s 
000ase 


066208 


o7102e 


LOWER LOW WATER 


Lower FAGQ, Cun, 
LIMIT FREQ, 
oeveeccosbsten 

20005 00004 

200000 00003 

20000 00008 

00004 00000 

00000 0002 

20006 00018 

00007 00025 

0000 «40034 

200009 00040 

00007 20040 

00055 00003 

00018 00078 

00018 00096 

00038 00313 

0008) o0tda 

00022 00457 

00022 00179 

00080 00207 

00034 00242 

00037 00279 

20030 00309 

20055 00304 

200037 o04ay 

00055 g047@ 

00049 00525 

00072 00897 

00003 00078 

00090 00707 

20093 = 0860 

00122 00982 

00130 01092 

00148 ofado 

20128 91308 

00457 01525 

00175 03700 

2010 01605 

20592 02018 

00172 = 2389 

o0lTo 02565 

00593 02558 

00104 o2722 

0020) 02923 

00194 oS11a 

20224 3338 

20258 «=» 3598 

00156 3755 

2022) 93976 

0020) 04377 

20227 440d 

00252 04656 

00¢07 04863 

00254 oS1i7 

022) 05538 

20245 45583 

00254 S817 

00897 06014 

1.1460 ,0224 0238 
e1oioid 20230 90468 
B1o1764 ,039F  »6065 
e1,1915 00486 90855 
20109 070d) 

00109 07190 

00875 07305 

00160 07524 

00198 07062 

00439 =, 7824 

00355 07972 

©1,3126 00160 e843 32 
03280 00342 06273 
o343y 00489 =, BU 2 
21,3563 0118 8530 
23735 =, 0109 6639 
21,3886 20322 08764 
21,4038 Olle 06873 
4 ,4309 000040 8957 
e1 4344 00408 49004 
24,4493 20088 09445 
4044 20052 09197 
104790 ,0009 9266 
©1,0907 0008) 09546 
#1,5099 00070 09422 
01,5925) 20006 09488 
1.5402 20004 49552 
00038 09005 

0004S 09649 

24,5857 ,004% 9699 
#1,0009 0054 09749 
21,0160 00036 09784 
e1,03i12 00038 09815 
21,0464 20030 29649 
1.0015 0010 9807 
©) ,0707 00019 09687 
21,0918 0002? 09915 
21,7070 00018 0995) 
®1,7e22 00019 0995) 
o1,7373 00030 0990) 
°1,7925 00010 09975 
00019 09990 

20008 9994 

20008 ,9999 

00005 $0000 


TM AWWIAWLL IRAIGIT i 
2k TET iver | i! 
; a il i dul itd 


HOURLY TIDE HEIGHTS 


Figure B-38a 


Figure B-38b 


ASTORIA, OREGON 


S8oOoaoocaogondoaOOdaOoBaOO 
XKXKXNKXKKKKXKKKKKKR 


12345678910 ile 64 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 = maximum © «= NEAN HIGHER X = MEAN 


2ODO70OFF90OFAMaAMoooD 


CowemomaHnHHOBTHHOOC OGD 


XXxxx XX 


12345678910 12 6N 69 7u 79 


MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER © = MEAN = MEAN LOWER X= MINIMUM 
2.2 


i ee ee ee eee 


1. 3E2T°S8S08FHHGD FPHMHAHDH009FFFF9SD 


OS 
123456768910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © |} owrnar tie © = MEAN TIDE Xe STD DEVIATION 
0.5 
: XX XXX yy x XM HEX KKK HK KK HK KX KKK KX 
-0.5 
12345676910 12 6H 69 7N 79 


MONTH OF THE YEAR YEAR (1963-19811 
MEAN SEA LEVEL 


Figure B-38c 


266 


0000°t nnoo® S2gS°te e0Qvues nnvU® nbuo° el 

9S566° nud? @Les*t= 29S66° aa00° 9186° 22 

etoo® mn00° Us2S° t= 29996° nnuu® ol66° af 

@996° mnogo? TelS*t> sSedo° nn00° 966° Pa) 

S296° p00? 9LIS° l= atulo® nndvo® Go0ues 2S 

6926° Sacto? pA0S*t® sitlo® vouy® Sn0ueb 29 

$096° 2cso* bn0S°t= sihlo® nndu® dy00°b a 

Pine? 700° n66n° l= #f696° 000u° ogtoel ea 

Ofne® egio° 9non® t= 2£696° seto® 2L00%b 86 

@626° 0vo00° 66an° t= ead1So° 000v° mi2ueh Ot 
@626° £920° 2sun* te e91S6° nndu® 9920°b alt 
S£06° et20° noun®t= engno® Sito® Go2uel set 
91e9° eci0* 4S5L7°T= 29020° mnuy® Ongoet ast 
egge° SLto¢ 604n° b= sng2o° V000° fucol ant 
6099° 4920° Zagn® t= anS2o° nndu® Senos «St 
9nea° o1zo° Ston*t= eli2o® auv0® 4on0°k «9t 
9200° 8900° 49G6M° b= ef2lto® 000u° 60Su0°b ll 
ofec® e2gto° vegn*’t= ef2lo® 0u00° boSu°sh) ayt 
4092° S210? Linn®le efelo® Oudu® resott aot 
egoue Szto° Senn®te sfelo® 000u° 9690°t 202 
9Sn2° S6r0® @LEn®l= sf2lto® nn0u® acouel #2 
b904° #900° Tean?l= 26206° 9u0u° O2cuetl se2 
469° S2to° geen*le sloou® 900° 2940°s #82 
¥o.9° £920° 9gen* le sndou® nndy® Sug0ts ene 
Sfs9° saro° oAtn’ t= s098u° #e@00° dngo°b *S2 
o9g9° @A00° Inin’t> s2idu° 2cto* eeu0et 292 
2429° et2o* noon*t= sdndu® 8800" Tgouet et2 
£509° Sitoe 9non*t= *f£4Su° nndu® f2ou°t eg2 
449S° Sato? 6662°b= 260S9° nn00° Ssotcs§ 262 
204s° SLto® 250f° t= eS9ny® 2eto° asotek s0¢ 
925° ot2o° n0ot°t= eftfu* Sito® OutEes wtf 
40gs° 2cto® dseai®t= sasits® 2atu® enttes’ «ee 
Sats? 40g0* OtTer* t= e920u° 0000° mette?b eff 
@9an° ¥eo0® 29L4E° = 2920u° ae00° 92e1°b ont 
tegne 6t20° Stat® le s6f6L° nn0vu® o92i°b ese 
bogne Szto® gO9f* T= sSov® £92u° Tratet 29¢ 
Senn? 40¢0° O29f°b= e259L° Sate® Eset w2E 
edon® ecto° LASE°T= 89GnZ° @y0u° Softt) «ef 
4nof° #900° S2st°l= e9ase® mnd00° 4entel e6f 
o99f° Szto® @Lni®t= eS2EL° nnovu® oini*t s0n 
pegs? 2920° bant*t~= ele2c® @g00° 2esi*t «stn 
beng? erro® feca°le *efots® nn00® mosi°t ser 
eezs° 400° 9EEt° t= ebnts® aygou® 909° ein 
e8oe° Sitoe oges®te atouc® nnd? engi? ho ann 
402° nnyo° Tn2e*te e3iac° eatu® 0691°S eSh 
1942° egto° Mole? le #39Q4* Satu® LILI9b 69r 
eg92° #900° ancaet= eftsy® Sato® S4ib°b edo 


e 
eotoe? ¥900° uloe?t= efsu9? ob2ue 9961°s 8S 
20fol? nnuo® eoye* l= agees? ebtue pevers a4S 
29Aul? aguu® Stue’te seuss? BydV? 04029) anS 
egodl? yeu0® w9eerte anigg® vy tue 2tteet #55 
attate wyo0° vece®le s92egg° G92ce nmgleet 29S 
ef2ote gauce L£492°l= 8E92G° bleu? dolert 25 
aSest? Satoe 9292° b= annis? olece of22°t aes 
a0ggct? olteu® BLse°l= eGeun® Belue Tp2eet 6S 
sonite mnud®? Tegeet= eagdn® vocu? Ceier*st wud 
29601° nnd? nane’le edign® Satoe sotert #19 
efSule voud® 9Gn2°*T= alogn® L920" gore’) #29 
efsute waud? oute®le spoen® Gatce Osrest #89 
#5960° nnoge enge?te afeltr® egtce 2one*i «ng 
2t260° nnuv® nee2*t= aloar? g9en° mESe%s 449 
adiy0°? ggqud®? andé°le sadic® noe “94Se*4h 899 
e6020° eyud® ebb22be enyog? 4ogoe gi9eeh 29 
220208 nnvd® esle°te aig? Gatve 1992°)) 0689 
#@S90° ggu0° SOe*te eeceg? 920° Cvdees 469 
#02490° nn00°? L4502°te seosee® egtoe Snde°b vod 
#92S0° nngo®? ubu2*t= efuge® Bett? deyee*t ath 
e2qno® noo? LI_T°Te s6icge® egtue e2s2°t 22d 
e6en0® v0ud0® Stoll ete sayse® oi2ce 2dveet wad 
eognde ecioe 8%gth° b= sagge® eatue mloc®h and 
2£0%0° nnuod® b2yglele ass2e° Satoe 9S02°b Sd 
*f920° v0v0® Lat ote etace* @usoe 96602°b #92 
#£920° vauoe 92eteTe enol? @gcue On0g?s adc 
*£920° 9900° oc9t*te adygt? Satoe Cyt wed 
*Sitoe 0000° bEoT T= albare ebeue Sele®s 26d 
a5140° oavoe muSl*t=- alonte GooGe aolges 0g 
#Sltoe onvod® 9ESbel= slont® 2gtee oces*t ete 
22ft0e o0u0° oant*t= slog? I he hs Soegel #29 
e2flo® 00u0° 2@nntete s2g2ie £92ce Toegek 268 
e2cto° 0000° mogt*teo seuul® aaa5° 9EfE°h end 
eefi0e vouo® dnglete sizeu* mnie gaiaet 298 
*2el0e vovuod® Oogt*t= egzeee® 9000° oerg*t 298 
secice vouoe eget ele egeaue nesce z2onget 92e 
sector Gouoe Suelt*te effaue ol2oe nus¢g?h #08 
eectce nnvo® bStI°t= seniau® mnco® dnSe°b 268 
29900° v000° UbETeTe etegce 2gtue 6eSE°b 206 
29Qu0° vooo? L9uT*Le soinue nnoce be9get #6 
epe00e 00u0° Stub be aSogu® nnoge? Cz29c°b 226 
egacoe voooe wIoI° T= #1Ggue pogo? Gidget #46 
#990 nnvud® b2ovete egugsi® neo? 4o<t*h 276 
ennuc® vouo0® Gdguele ef92u° mnie Ousf*t #896 
anndg0® vgoo? G2uV le ep_i2u® agg? 2nug®t 295 
enayd® vouo® oleu le e2% tue rmaye Woureth #46 


ee @eeeneeeheeeeeeeeeteteeeerteeteeneetretneretehreecheeeaedce es © & 


Mase® yAo0® o60F°t= eSesy* estu® diaict ean #pn00e ynvo® b€4uebe saghi® mnriu® geegel eyo 
9Sne° Satoe 250f*le enl79* egtu® osHi®t won annud?® vouo® nague te enpys® JOuu® 796x°t %06 
be2e° Siioe GO0L* TS ecp29°* esto® buer?h 20S ennio® vuuvd® 4G9ucls enn? Jocue Thome) = aydt 
suvie° wa00° 4G962° be naae duu? mnotet «hS * ennyge pnyd? ouSd*Te arnsie onso® Totnes «604 


SATA HATTA SHEET SHS Tee HT HEH THOTHSHE RH TH TAMAS HAS SESHHA KAAS AAT SASS HHAAEALETHAHCHREKE SoH HADeHeLEseasgtaeasatetere 


8 Soqn4 4twI1 3 8 °D444 LInI1 «2 °Ov @ e °O444 aIwld)  o¢ °F lag AIWI7 = °ON 

@ and “93d4  4ae00 @ °ad *Odu4d 439%07 eSSV1je a °aNg "0344 gam01 8 & Pwd °odud 4 3"07 *SSv1) 
e e s e s 2 
@ BILY™ 407 SOW 9nd 9 © BVLVM BOTH COW BAdIULKD @ * @ 49LVM 407 PG 94944K9 © HdLVe ADTs 8ON JadsiKd « 
°4334 peleo 29NTe VWNHOTU GHL 4104 AW O9ZTI7AHUN Juv SLHOI9M 110 fxtu4S WAAdinI SS¥1D 4G alalt 4907 

leetses 4AnI0Ng 399%O0L) NODIGN “VLANs “1117-04 satinelsisra 


ege-d PTIPL 


267 


Lorre LImlT oF CL4aSS INTFRVA 


SHOWN, 


Table B-38b 


ALL METGAT& ARF NORMALIZED AY MALP THE 


DIURNAL RANGE 


uotau FEET, 


s HIGHER HIGH waTER ° HIGH waTER s WOURLY WALUES e LOm water ° LOer@ Low wafer 
Cg 0 ® ® s ° 
CLASS#® Luver FREQ, CuM,® LUnetr FREU, Cime® Lower FREQ. CuM,® LOnER FREQ, Cus.e@ LOwER FREQ, Cur, 
hin TE PRED® LINTT FRE? LIMIT FREQ,® LIMIT FREQ List FREQ, 
Stee SHSHTH SOP HASH OTHE LOH HOTS EH ST HCELHSHHLOHEHHEH OHH S EHH HH TE FOEOHTO HH OHOHOOECHERATATHHHTOHTHTTHEOHOHSHTOOO EES TOTO EHHEEEEOOTIONDD 
fore 124053 2009) 00018 1 ,4N53 e0n0d e00N1F 4.4053 20000 290008 20h6) 00901 e0N018 edhSe 20001 2004 
Lone 143963 20000 o0001% 163976 2000; 00001 34,3759 00000 000908 e@,0ANT e005 00006% e,4957 20001 00003 
Q9s 1e3A7u 20004 eNONOe® 143799 20N06 e0007% 41,3465 00002 00nnee ©,0954 oN? aOR | ,59h2 20003 20006 
QRe 1et7AU 20009 e00FS* 1.37 0007 e001 4,317] 20003 000058 eltot 000i7 009358 #5167 00001 20007 
97e sotHId note e0OP7Te 4,35u5 20008 enne2® 14,2878 enu0s 20nnge 01247 Out 060768 ©5274 20004 e012 
See 1etHnS 29006 e003Se 1, SdtA 20009 eonsi*® 34,2584 00009 eNOiRe 01394 00N37 e01148® ©5376 01004 09016 
958 3265515 20019 290528 = tye 3294 00015 e0N46F 34,7290 00009 00028® 261543 e000uS 001588 ©, 5uAl 20008 e0u2) 
Ques jeSued 29009 o0061% Fe3tnu 00017 eOMOHS® 49,49% 2n015 onnuye olHAT7 20055 e0P14e® © ,55A5 09006 00027 
93e 1635556 eN0ls eOU7TS@ 163937 e002? 00N66% 41,4703 00019 o00K28 el ASG eON77 e0P91% ©5696 200186 00005 
928 eSpdo 200388 e0108% 4.2910 01023 ©0109 49,4409 onal oM0AS® 1 9R1 o0NK6 eO3T7T® &,5795 29006 09051 
O18 163157 20019 e0127# = yeeTAY 99026 eON35® FoelilS 00029 009128 ee2t27 0 0NBA 0U46$® ©5900 20010 0006) 
998 feSnh? 20038 eO160% feAhSh 000S4 00170% 4 ,nRP} 00087 o0j49e ecard 00095 eO5SKe PO 0008) 
AQe 102977 ent e9190® 162530 00946 e0215® 1.0507 00046 091958 echal 00102 oNhone ould 00090 
AAs 122A88 00037 02278 1.2408 00043 0025R% 4,nesu 00053 o024UA® = ©.2567 6123 on?B se 200019 eO1ta 
Ble 167798 e00U5 eN270® 1.2776 0003) 002898 29940 oNUb3 oOS11® es .2e71u 00116 eH RIVE oNuee 00136 
Ros 102708 e003u e005 43,2149 004s 00 53ne 09646 00969 oO 3h08 02Ron 00127 olMeoe 09030 00172 
ASe {eentd? 20061 e360% apne? 0005) o0tere 09352 nore NUH Se 03007 001un oltre 29040 0212 
Aus {e2h5Pd 20064 00430 154895 20N6? oudute 09059 0009) 00554 o31S4 00135 eltole eNOS) oNeuu 
Bye foeerudy 00052 e04R28 1,4 7AA 00055 o0ug7e 0A765 09N98 o0h52P8 = @, 3300 oO13A of 4$9e 20035 00276 
Are 102350 20N6N eNS42e Yep hut 00955 00553¢ eAuTy 00106 oN 7TSA8 e3uu? e01uA olSh7e 09042 00318 
Ale 12260 eNdA 095908 1 445hu 20N7N erbee® oALT7 of143 eOAT{® 03594 eO{uu ol 7319 00046 00366 
Poe. yo2i7k 2060 eN650% pes 3A7 e0oTt e0b93e oTBAY ofta) 099928 | ,374N 00160 olbote 200049 Ou i) 
79e@ 10208) 2005u 007008 Ye)? bn 00N82 o0775e 27590 0126 011/98 ©,3887 00131 eP0eee 209064 0 04RD 
TAs 101992 °0URu eNTATe 3649133 00098 00AoBF 072% 00139 o!2S7e e4nga 00129 o215ie 00064 e0Suu 
7?e 401902 eN0R? eOKTU® Y,100K 000BK 00957 07002 e047 oluoue 041 BN e0lel eorrse 29070 o0bla 
The 1,182 20079 219538 1 NRT9 e0tin 010678 26708 00154 215598 04327 oONA e2sgie 20052 20666 
758 101725 eN0Ke ef0358 1.0752 00ter 011958 oh415 eO1S7 o1716% = ,4u74 00117 e25nhe 0NG6u 07d 
Tus fet633 00075 eN110% 160625 e011d 013098 061A) Os al ol A7Ue 04620 e0leu eobsee 09078 0 0bN8 
73e tel54d enloy ef213% 2eHnugA ootel e1450% 205827 e014A eondet 04767 o01JA 027508 2094 009N2 
7TPe 1eluda 2n1ne o1S148  pand7r 20le6 015568 25535 00170 eP212% @,u9y¥ ourst ee RAl® e015 e101? 
Jie Fel oa 0108 oN 417e yen rus 001446 ol?uee 05239 oNtas o?375*% &,5960 o01e3 o3noue 00100 ollt7 
Joe tele?S oOliR eNSVS8 FP euttA e056 o1A579 24946 00164 025398 © ,5AN7 eOtyn odiiue Sus te) 01220 
698 16eltR5S oto eloASe 09994 00149 e2nubt 24652 00371 027/08 &,5353 00104 032208 09106 ol Se? 
68 161085 A 017798 29Rou 00176 e21hee 04358 00168 e2R7R® ©5500 20NBY oS 3088 09115 oldu2 
672 16elnM6 ols oN G1Ce 09737 00956 023378 0406u 09159 030378 m= e5hUT oNtet 034258 0014S 015R6 
bbe 100916 091387 er une 2° TD10 e016? e25nus o3771 e016! eo 319R® = @,5793 eUNGA 035208 00121 01707 
658 109?6 o01A2 ecekoe oTUhY 00159 02638 23477 00163 e33A1% © ,59u0 00102 2362728 ©, Ah?3 29137 018u5 
64s 169737 e01R? e24iee 0935hH 00177 e2A3oe 03183 00158 035398 = eg6NKT 00102 eS7eue 09127 01972 
63% 16547 09152 oP? 5658 09229 0 01AS e302ue 228A ©0155 o3674U® &,6233 00101 eo SRPuS 20154 02176 
628 160556 00155 raed 29102 00186 oS2108 07595 00149 eo 3A23® = ,63A0 20110 o39tue 0140 02266 
ols 1eNuba 00158 ac ATbe A975 00165 o3376® oesne 00152 039768 He65e7 0010t e4N35e 20181 eeuu? 
698 = 1ed37AR Pi al] o SHACR ohAUR 00145 055218 e200A eNlu9 04{25% ee .6473 00093 ens O76 oP bey 
598 109A R9 00197 o3e5ve eATeS 0018h 037069 e174 oN1ue oUAT}® ©.6A20 00112 o4rute 09385 0? B08 
SAe 1.9199 e209 o SUbHe 2AS9U 0 01K3 2 5BK98 »142n ofsus o4U14u® © ,6966 20047 o4S5RO 200166 02974 
578 109110 00197 0 $6658 eRU67 oNtFt o40bNe 01127 00144 045578 07113 0102 o4uune 00103 03137 
Soe Leet oNSRY eo 3AUne eR Sa 00169 e42u9e 00R53 00140 o1697% &,7260 0010? o4Sute e0172 03309 
55s 09950) e917 240650 ofa o0197 e4uuoe 09539 00137 e4Asue 07406 00106 od4hure 09200 0 3599 
Sus eFHus 0212 e4e75e eROKY 001 As o4bere Neus e0s4l 049752 07553 00108 e47sie ons o3oR2 
Ste 09751 e759 o4bnoe 07960 00199 Or oN1u6 eSfore 07709 o0Nt) UA? 09196 23A7B 
52° 29661 00206 o4b7Ps 0 7A33 00165 oN993% ensue enial eS2h3® ©, 7AUb 20132 049950 20197 04075 
Sie 09572 00233 o49nse 2770h e019 0516U® o,Ab36 O15) e5usye 0ONG4 od13S% ot, N0AD 00169 o4euu 
Se 0Fu82 elu 050998 27579 00179 oS3O3% 9 n95U ©0152 055458 20102 05PS6e © 160193 20224 04468 
ude 09598 ely 052918 27452 00191 055548 01224 09151 057169 e011? 05353% 91,9098 00199 04667 
uAe 09503 ofesn e55A18 07325 0 019A 05752% 20,1516 eNlbu eSRA1® ©, AU3$3 00139 054929 |1,9uny 00191 04858 
a7e 09218 00235 057558 0 719K ooPlt 05963% oe JAlt 20165 0606F © ,A5SKA 00130 05627 21,050A 20194 059052 
ube 09124 09206 e5961e 2797S 009TH eh159% ©2195 00175 ehPP04% 2 ,AT2h 0121 eS7TUSE HS, 4612 00295 05257 
uSe e9ntu eO1R7 eh}Uhe 2694U o0194 06333% ©2599 aNthe eh3A3S ©, RATS e0t4t eSRR4O OF LNTIT 09194 05451 
uue eAouu eNlna ehsiue bP? 2209 06532% ©7693 00571 065538 969019 e018! eANSS® OF ,NK2P 09175 25676 
uss RASS 09158 ob47es 06690 200009 067428 @,P9R6 ©0167 06720® &,91bh 00159 e6VKS® ©1,9927 e244 2569 
ure 0A76S eO194 ebhob se 26568 Pe si 06923% 2,320 00154 eAPTA® @,9313 00145 eOSSNe 91,1031 09196 26065 
aie efoto 09193 266568 eG43A 20160 071038 2, 3574 00154 e7H32% @,9U59 09133 eh4nde @3,1136 20eN2 oho? 
uoe 0 95P6 0919 2705e8 263090 0169 072729 @, 3868 oN}50 o7TIR3% 2 ,9h06 eUI3A ehone® e1,)ed4 29190 06457 
398 oRi96 0019) o7euse ob IFY oN1AX 07455% a,uihe eM13e o7315% ©9753 00157 067598 91,1545 eD1AS ohbu2 
yrs ohn? 0188 e743 26054 00179 o7633% | 4455 00135 o7450% ©, 9A99 Pe a 0h904@ ©1,1450 09190 0683) 
37s oAS7 00145 075708 25929 09159 07793% e,n74y 09133 0 TSASS HL, 00U6 00150 07055 #141555 oneeu 27056 
yoo oAP24 eNlAs 077548 SAN? 014A oT94IF my Snuy 00129 077128 91,0193 09157 0772128 &1,1hA0 20175 07240 
458 AL 3A e057 2 TAI5e 05675 00199 oANG9® 2.5337 0122 eTAVU® OL .Oh39 013A o7$49@ e141 7AG 00165 07593 
ue eR UR onlty oA02T8 o5SUR 00153 e4253% 255630 enial 07955* @=1.0UKh ovlu7 oT49HF @4,1HH9 ooi7e2 0756S 
34s 27959 oO LGA oA175e 254A4 00th9 oBS72% =@,5974 00144 eAOHIV® OF ,0ASF e017 oTAuPe @1,1974 09155 07720 
tee 0 7kHD eOltu aReAne 25?9u 001246 oAUGP® e hPIA 00195 eAJAUF 1,779 oOtus oT TAYE 94,2079 09159 07459 
419 07779 osu oAurse 25167 20109 eA607® | ,4512 00190 eAPIU® =} 60926 ol160 e79UH® HY, P1AS 09160 08019 
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age 0 TAD) 0139 eATNue o91h eNt0d eAK2N8 5,799 oNynu eAS5SNYVS 91,1719 00141 oPh249% @3,2595 00137 062A8 
pas e751 29122 oAB?oe e4TAb 200% 08916% ©7395 onin7 0F616% e161 thb 2014n eA35AG 91, 2U97 09106 A394 
ave 0742) 20115 eA9ule 24659 2nnAe eB99YA® THAT 20105 oA7P1*® e101512 00137 oH495® 1 ,2602 29150 A524 
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ase o7?42 2NU9u 91329 eNOS 20M 091729 ©, APTU e0in! eh927% ©1,1AR0H e023 eATUO® 91,2b12 09100 06739 
ue 071Se e007K 092108 o2TR 20nAu 29256% @,AS6B 00100 090277 $161952 00105 eAA50% ©1,2916 20096 0f835 
ate +7062 eNO] 092718 0 IS2 00071 09327% ©, Abb2 09097 09923% 162099 eNtyn 0A96N8 91,3071 09099 08933 
22808 eADTS 090945 oI Shue e025 2096S 09392% ©9356 09095 eF2Ik® =) ,ePAUh e010! 090618 #135126 29085 09019 
aie ebRAS 29054 oF4I7e 2 SAGA 20065 09457® 9450 000R6 o9304F HL 6239? 20n90 091518 &1,325) 20079 09098 
ane 06794 eN067 eIURS® 03771 eNNT0 09527® 06,9743 eNORU eOSRA® 91,2539 eONTA 092298 @=1,3335 20087 o91 BU 
198 eh704 e007S8 0955Ke oe Sh4u 2 096A 095959 ef n037 20076 0 9466% @152hRAK e0OKT o9S16% 91,3440 20072 09256 
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178 26525 004 0 FO6U8 0 3390 2N9S5 09bIUF wf NheS 00064 096118 9462979 00Nb4 0 GU538 of, Hud 09079 27404 
{68 660385 200486 oFTNV8 23263 09046 09740% ©f,0918 ©0063 096748 91,3125 ebNhu 095168 91,5754 20067 | 
15° 26345 20039 oF739e e3i3h 00N37 0977A® wy 1212 20087 09739 O1,3772 00NSu 045708 91,3859 20070 09544 
jue 00256 20033 o977I18 2 30n9 09N35 oe FAL S® 01.1506 00052 oITAS® m1 ,319 0055 096258 =1,39hu 09060 09001 
13* eh}hb 20033 eThi4ue 2PAKD 20031 ©9AUU® 04 ,4A00 00041 09R25% @1,3565 29050 eGhTee = 1 447K 29046 0947 
128 e077 Pun) eIhuye 2275S 20028 e9RT3® 01 2094 oNV46 ePPAL® @1,37}2 00056 oO74P® 91 ,UN78 0005) 09698 
114 03977 | eN0PK oIt Tee ePhen onnen 09901" 01 A587 0029 o9P9L% ©1,5AR59 e0NUA e4T7T7T® © 1 UeTK 20057 09755 
18 25497 2004 2FAUSe e2hns 20nen 099218 ©1267) 2n0e7 2099178 ef ,4n0S 00N34 eGR{ RO ©1 USBS 20046 o9A01 
oe oe SHUR Pan me | 0994S ert e0nAd o99UUF 04 ,297h o00A1 eF993H® ©) ,U1%e e0N38 oYPU9® @1,44AP 20034 eo IA V6 
Ae oS71A 00016 099256 eeu? oNN16 099608 21,3264 200417 099558 ©) ,4299 00039 eGPPRO = U590 00048 e IAA 
Ts e5ned 29u19 99058 oP tet 20007 09466" 01,3562 00013 eF9OR® of ,4uus 000AR 099168 91,4697 20039 09902 
6e 05539 20095 0 99H08 21994 00013 099798 04,3856 00033 099B1% ©1,4392 00029 099uUS% ©) ,4bN] 20030 09952 
Se 05449 oO013 0997S oho? 00907 e9IKT] oF 150 00007 ePFRA® ©} 4739 00025 09970% =3,4906 00019 09972 
ae 03360 200%6 099798 01740 20004 09991% ef ,g4uu ©0006 099948 ©) ,URAS 00055 099A5® 91,501) 20006 09976 
30 05270 200009 oI9ARS 1613 20004 2099969 {4738 00004 099988 ©) 5032 20nn7 099928 91,5116 00012 29990 
ee 05180 00996 099948 01486 00003 09999% 01,5031 0000! 1690008 91,5178 00005 099978 =1,5200 20006 09996 
1s 03091 20096 1690N0e 01359 00901 100000% ©1,5325 00000 1.9000" #165325 00003 1400009 91,5325 00004 $,0000 


268 


SHA 
MMW 


SAIN RR Adalat 
TN ime i I rn | 


ABERDEEN. WASH. = j= ~~ JANUARY 1973 


Diurnal Range = 9.89 ft 


im ABERDEEN, WASHINGTON 


o 
Pop 99 gmO2 HOW "90,0 


Waal 


C©oOGCGTABAHOHOODOAOOOBGADO 
XKRXKXMKKKKKKXKKKKKKX 


79 


12345678910 12 64 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER o@ -naxiwe © = WEAN HIGHER =X = HERN 


PO9OeO9700S9 0H mA apo 


CooOoODTHgOGHgaOaGQCaHTDUDAOD 


x x 
12345678910 12 6H 69 74M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oenem © = HEAN LOWER X= MINIMUM 


Brie 


u 
Bm o Fe, pO POOF FOoeoeoooo8oe 


1.3 O9dOBOBOOOHOD CHMRHQAHHHOHHTROF99P9DD 


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12345678910 12 64 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © « DIURNAL TIDE © = MEAN TIDE X= STD DEVIATION 
O} 6S} 
0.0 AUX oe ce Ret Dare XKXKXXKXKKKXKKXKKXKKKKX 
-0.5 
12345676910 12 6H 69 7 79 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-39c 


270 


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271 


Table B-39b 


LOPER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED BY MALF THE DIURNAL RANGE 4,907 FEET, 


s HIGHFR MIGH WaTER ® HIGH WATER 6 HOURLY VALUES ® LOW WATER ‘ LOWER LOW WATER 
® 6 6 ° 
LOmER FREO, CUM,8 LOWER FREQ. CUM,® LOWER FPREO. CUM,® LOweR FREQ, CUM, LOWER FREQ, Cus, 
FREQ,® FrRea,® yar? FREQ LIMtTT LIFT PREG, 


POSH SS ooEKoORsoRTelE TORSO ETE E HO SSER TORSO ROS 
20226 e0not 09001 00004 


eeseeg sesesese Oeoseseerste easesoses 
20004 e00N1S =p _u7Sy 20001 e0001® 14,4753 0000 20008 
20000 eOV01F f_ubl6 e0%0t o00U1® 4,40433 00000 090008 0V96 00002 200038 ©4085 20000 00003 
20004 200009 1.4479 20005 00007 4,u112 00001 200028 0567 e00nou 20007% w,4219 20000 200001 
20012 9018 4.4342 2007 20013 4.4791 20003 0000UF 2.0738 20910 00018 w,4352 non 20006 
20010 eN026e 41,4208 20009 e0n22e 4,5uTy 2000u 20NNR® ©,0909 ,0nju 20032 ©,44A6 0003 20009 
enon 000308 1,400A 00009 00031 1.3150 000d 000128 1980 200N22 20055% e420 29007 00016 
00024 00057% 143930 20009 e0NUN® = 1,2830 ©0007 090198 1251 eons 00085% a,4753 00006 00022 
0007 210648 143793 oOn10 e0051% 41,2509 00008 = MOPA® aot 21 00029 =, 0114% oe, 4BAT 09016 40039 
20016 090818 123656 00016 00007% 34,2148 20010 2003A® ©,3592 00nus 001588 20,5020 09010 00049 
200A eO1O1® 143519 20nl2 000798 34,1868 0013 = 00528 170% 20967 20225 05154 20016 = 0066 
09027 eO128e 41,3382 20018 20096% 41,1547 00021 200728 1934 200055 = 0280% =,5287 0033 0079 
envta eO140e 143245 00013 001108 14,1227 10027 200798 2105 00070 03518 wy 542} e00te 20096 
o00P] e618 1est0A 00025 00155% 1.0906 00040 0013S% 262775 2007 e0417% 2,555y 00019 oO11S 
00081 01938 1,297N 00925 00159% 14,0585 10043 sOs798 2446 20082 004998 ©,56088 20025 20140 
20018 002108 pacA3¥ 00M? 00176 1.0265 ©0050 e02298 2617 00084 00581% =,5822 00030 20176 
0003S =o MUSH 142596 00019 201968 29944 20055 =p A2AU® e©,27KA 20093 2006748 6,5955 0037 feta 
20045 eM2A7® 442559 0028 o0ee2ue 2902 00065 oN34B® 09,2959 20102 00777% ©,60R9 49025 0239 
e0Utu o0321% 14,2429 20Odt 002568 29303 00079 oNU27% 02,3129 00112 204B9% @,6222 00042 002A} 
29022 e934se 1.22865 00051 202878 - ,AQAQ o00R7 095148 ©,3300 20102 00991% 2,6556 09045 00326 
000387 eOSA@ JY ,2tUAn oneal 203088 Abbe 20105 096199 2,371 20135 e1!25% @,6489 00034 093560 
eNotu eN41S8 = Y,enys e004 00349e oAS4 e0lto 007358 3642 e017 01242 ©,6623 20046 20406 
0042 014578 4 ,4A7¥ 20059 eO4NAR® oAN2] 00128 oN AGSF Ay 00122 21304 0,6756 00057 00445 
eN046 095058 1.1736 200960 e0UoAe 07790 Ou a) 009968 3984 00112 014769 ©,6890 oN0To 00524 
29051 095548 144599 2007! 205398 07379 00148 o1144® 264154 00132 216089 00,7024 20046 00867 
122270 2003) 005858 1 —1462 200607 006068 27059 00157 o!3n08 4425 e01ug e1752% ©7157 20075 efou2 
Le2p1d M045 = MOBY 1 g1325 =n 009A =a OHVAS = 738 =o NHS HOS 4496 =o 012K = g 18808 0,729, 40066 40708 
102099 00067 000978 1,11 RA 00099 007978 e647 00174 016398 4oo7? 00122 020028 a, 7u2u 20054 oN Tbe 
LelGO3 eN0At eO77K8 454955 20105 00902¢ 26097 00178 e1A17% ©, 4AZA 20154 02156% 20,7558 20090 20854 
101798 0097 005758 1,0913 200086 0098Ae 25776 00179 01995 2.5008 00139 022958 9,769 29085 00936 
fete? 20090 009048 1.0776 eO1LS =o fh 10te 25456 eO1RG 021808 ©,5179 20138 24530 047825 20090 01026 
1e1SAR7 oniie e1084e 1,639 20099 elaune 05135 eNlAe o23bo® 2.5350 00135 025078 ©,7958 00110 olldo 
Ye1uAy 0097 011816 1,050? 0010? ei to2e 04814 o01A8 025538 001u5 027128 ©,8092 0013) 201268 
Yel37o ©0149 oF3P18 140365 eot2n 014228 0 449u 00195 oP TURe 0014? 028548 2,A2?6 e118 01386 
101270 00148 014698 41,0228 e0N17 015408 4173 0194 229398 20155 280098 ©8359 e016) 01547 
letieg 0014s efo1e® 440091 ootlt 01651% 2 3K53 00189 031298 2.6058 00149 2S15R® ©4953 00145 01690 
101059 ae) ol 7o19% 29954 e013! elThoe 203532 e01A9 oS31A® ©6704 00133 037918 ©,f626 00176 01667 
109953 o0136 018978 a9Alb oolid oe LA9Se o32it o019t 035098 066375 001ut 034348 ©4760 o1Su 02020 
1enhda 09152 oP 049s 09679 00136 020328 PAM oO1As 03692% 2,65u6 00136 035708 ©, 8495 9176 02197 
109742 oO 14K o2197e 29542 0017S o22u7% 22570 eNtAl 038758 e,H717 20139 037098 00,9027 20185 eesh2 
1eno37 00152 oP 349e 29405 200155 eetoi® 0P250 00175 e4NUR® ©,6AK7 00154 038638 ©,9160 20160 ee5us 
109531 e133 = e24R20 89208 =a 162 =o 252 38 01929 e173 = 42P1% @e795A 40136 =o 39.99% = , 9294 20158 = =,2700 


1.0420 00178 e2boue Poe a o01hu ofT07® 21608 0174 04395% 02,7729 20147 oU1Ube 02,9428 0206 22906 
109320 09160 o2hi9e 28994 0017! 22A78e 21288 00166 045628 ©7400 20133 042798 02,9501 09220 03125 
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272 


26 
HOURLY TIOE HEIGHTS 
PORT TOWNSENO. WASH. JANUARY 1973 


Figure B-40a 


Extreme Monthly HW 


Equivalent Gaussian 
Distribution 


SQOr Hourly 


Extreme Monthly LW \ 
-30 : 


rc 
0.01 01-30 -20 10 -o 50 0 90 20 30 99.9 99.99 
Diurnal Range =: 8.20 ft 


Figure B-40b 


273 


PORT TOWNSEND, WASHINGTON 


POTAUVDFVOHDHADA HH HOE 
XK XKXKKXKXKXKX Xx xKXK*X 


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MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER = MAXIMUM ® = WEAN HIGHER X = MEAN 


-0.4 


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MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER o=nean © = MEAN LOWER X= MINIMUM 
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HONTH OF THE YEAR YEAR (1963-1981) 

RANGE © «= DIURNAL TIDE @ =» MEAN TIDE X= STD DEVIATION 


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MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-40c 


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279 


Table B-40b 


LORER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED BY HALF THE 


OTURNAL RANGP 


4,008 FEET, 


® HIGHER HIGH WATER e HIGH WATER 9 HOURLY VALUES o) LOm WATER e 
s s 8 s e 
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276 


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03940 Net 096908 
eS AO enGun 097308 
e5TRO eNuhe oI7Ine 
25703 oUee e279b8 
e5neu e027 29tASe 
265545 9027 e%nSce 
25460 200A) ob $e 
oS 3A7 00019 098928 
05308 000138 0990S 
05229 20022 099278 
05150 2006 099456 
oS071 20010 0994s 
04992 20009 299556 
04915 onus 299608 
24A5u 20006 299728 
04755 2N0%0 099K 
04677 eNlNd oIGATS 
204598 29094 299918 
04519 oNNNg 099968 
e4udy onnn 099978 
Pa a | Iu 999068 
o4PR2 NUM 1,90n0% 


MIGH WATER * 
® 
LOrER FREQ, CUM, 
LIMIT FRE 
Seeeeeesereseseseesy 
102176 00001 000018 
1.2959 00004 00004 
101942 20nd 000098 
11426 00909 000188 
151709 00013 00nsie 
1,1592 00019 000508 
161476 00019 000bUe 
1,1359 00017 000618 
1,12de 20025 004068 
1.1125 20026 001328 
141909 2026 001588 
1,092 20N4n 001998 
1.0775 20042 002418 
1.0659 00047 e020A8 
1,0542 20NS4 003428 
1,0425 0060 004018 
1,030A 20076 o0U7he 
1,0192 o0nl? 005558 
1.0975 20NBA 006438 
2995K 00109 00752¢ 
2 9RU2 e01eu 00768 
29725 00sen 009968 
296048 o0t3ss 011298 
2949) 0014 012729 
09375 00155 014279 
29258 00173 eo 16018 
29144 00170 017718 
29925 00193 019648 
28908 20206 e2t7ne 
28795 00180 o2tone 
A674 =o 0215 =e 25058 
2655R 00199 o270u% 
eAuay 00179 02948 
ph3o4 00205 031478 
2hor 00194 033428 
aby e0eul 035436 
a7974 e019R oS7T41e 
2 7ASA 00203 oS9UNe 
alTuy 20198 o41uie 
27624 00207 o4349e 
27507 00196 o45u4ue 
73% 200200 o4745e 
Tera 00204 049U9e 
0715? 00203 051518 
07044 00193 053448 
20924 °0P°00 055458 
26407 00179 057238 
26690 0948u 059078 
26574 2015A 060605¢ 
20497 00182 062478 
26340 e017 064138 
ohP2u 0018! 0659u8 
+ polo? 00170 067654 
05990 e014? 0691 2% 
25874 00149 o7001% 
eo757 00167 072278 
eobun e01st 07 35Re 
05523 00144 075028 
29407 00126 276280 
25290 00155 07763* 
05178 o01t) o7A74U8 
2995h 00107 079818 
24940 =60109 »8nV04% 
p4R2y 00093 061638 
24706 20089 082728 
24590 20096 083698 
TRAY 00098 obUo7e 
24356 = 0092 =n B55 98 
24239 00nt2 0B6508 
e423 20069 066998 
r4N06 00976 087764 
2 SAKD e0N7d oAASNe 
23773 20080 289508 
23656 00N7h 0INV2% 
23539 20957 290598 
a 3423 00065 0912Ue 
23306 00074 o919Re 
03189 20N65 092038 
0372 20966 093298 
22956 00055 095848 
oP ASO 00057 eIU4i® 
22722 00053 o949Ue 
22606 20nsu oe 95UA® 
acth® 00955 09OUS4 
2h? 2004uAR 096519 
22755 0NN46 09b9be 
ott 20956 097328 
222? 00044 097764 
21905 003A 09A158 
21749 2005A e9AS38 
alo72 20S! o9Bbte 
41555 20023 09907# 
e143A 00N2S 099528 
2132? 20016 0994R® 
21205 20916 699648 
2108R 20014 0997K8 
20972 20010 099088 
200755 20004 099958 
073A 00004 099478 
2nht 20908 099998 
20505 eON0T BeHdHOy 


Table B-41b 


Lower 
LIMyT 


10P176 
1.4863 
101551 
1.1238 
10926 
1.06013 
1.0300 
29988 
09675 
09363 
29050 
ATSB 
eAueS 
ALIS 
27800 
07487 
o7175 
06862 
06550 
06237 
725925 
25612 
25299 
oi GA? 
04674 
e432 
04049 
03737 
03424 
etite 
02799 
22UAe 
e174 
01664 
01549 
01236 
oN924 
Puls | 
20299 
eon0su 
0 005?7 
20639 
2.0952 
201764 
eoN577 
».1849 
ere 
2.2515 
©7627 
203140 
2.3452 
2.3765 
eo4077 
2.43% 
2.4792 
225015 
225326 
225640 
265953 
2.4765 
2.6578 
206490 
2.7203 
2.7515 
2.7828 
2. Al41 
© AUSY 
2,766 
#9078 
2,939) 
209793 
e1.nnto 
01.329 
ey .no4t 
21.0954 
e1,)2ho 
2101579 
27,189) 
21,0204 
21.2516 
24.2829 
e1esise 
o1.345u 
ey e367 
#1,4079 
21.4392 
e1,4704 
#105017 
°4.5350 
21.5642 
#125955 
106267 
=1.6540 
#1 .h892 
2127295 
-1.7517 
©},78%40 
o1.A143 
=} ,A4u55 
©), A76R 


SHOwNe ALL WEIGHTS ARE NORMALIZED BY HALF THE 
HOURLY VALUES 


OLURNAL RANGE 


5.655 FEET. 


8 LOW WATER 8 LOWER LOW WATER 
e ° 

FREQ. CuM,® LOWER FREQ, CUM,® LOWER FREQ, CuM, 
FREG,® LIMIT u FREQ, (UJRIT FREQ, 
THRE TO KTS SOLE SESE LE HEHHSO ROTO SHES HELE HOTOFOTO ET SOEROLESE EOE DOSEHEROENS 
00000 200008 e434 00001 000018 e,4275 20003 00003 
20001 200018 04090 00002 00003 24423 20000 20003 
©0003 en0nue 0 3AS6 e0n0d 200078 ©4571 00005 00006 
00006 200098 0362? 20007 e00148 6,719 20004 20010 
00010 090598 03388 oUN1 000278 eo, 4bo7 00004 00015 
00045 o%03ue 03154 o0NA 000U5® ©5015 20003 00018 
00022 290578 02920 0003! 000769 00,5165 29012 000390 
00034 091% 42685 20nud 201208 o,5344 00015 00048 
e0048 001398 0245) e050 e0I71® ©, 5459 20012 00097 
eb0b2 092008 02217 009TH 002478 56007 20027 200AyK 
000R2 o02ARe 21983 eONnt 203578 ©5755 9027 0110 
eCing oN gRue 01749 oONt! 004698 2.5904 00035 00143 
oOitt 294958 01515 o0lee 095918 ©6052 20007 00170 
e013) 0062 6% ol Pht 001A 00729 6,6200 00055 00225 
enye 007658 o1nu? 00139 20AO8® ©,6548 09048 00273 
09153 099188 o0AL3 00159 01027 2,649 00045 00318 
00169 10A7% 00579 = M164 = 11918 2.6644 40045 40363 
oni73 212608 2035 2010? 013578 ©,6792 20073 20436 
001A8 o1uuae 20'Nt 20160 o1517% ©6940 20063 00499 
eO1Au ol632% 2.0123 0017G 016919 ©,70A8 29066 00564 
00194 218209 2.0357 00105 214568 ©7236 20061 20625 
oend e2030% e,059} 0017) o20PAG a, 73AY 20099 oNteg 
00199 0P279% = @,0A25 00165 022128 ©7532 00093 00817 
00206 e2h35® e,1A59 00146 e235AG ©, 76A0 eOllo 09933 
00204 026398 0.1799 00122 o2hb0G 02,7828 00107 01040 
00207 »2846% oo1S2? otal 026019 ©7976 o0315 91155 
e0ens 036498 eo1%61 20129 o27318 = @,A1 24 200% 0125) 
e02ny 032519 @,1995 00114 e2AUS@ «©,8272 20118 01369 
on2i2 034638 062229 00917 029628 w@,Au20 00342 o1Sit 
neta 036758 0.2463 o0tat 2304S ©, ASB 29158 01669 
©0210 o3A9VG 22697 oOtnt 03195@ ©8717 00128 01793 
en2y7 o410A8 ©4293) o01nt 03296% @,AR6S 09452 01945 
eh2ad 043328 2.3166 00114 oS4108 02,9013 00176 o2)At 
en2Al 04553% @,3400 00107 o3517% ©9164 oO1S2 2273 
oneia 047688 ee 3h3u 00101 036148 2,9309 09170 o2uug 
09208 e4976% @,3AGA 20n80 2 369R8 ©9057 00175 02618 
©0205 05180% ©4102 001AN 638198 = 2,9005 Pu a | 02809 
00195 053758 e.h336 29090 o390R0 ©9753 09167 o2977 
001R6 055618 ©4570 00103 o4012@ 0,994 29199 oS175 
00174 057358 e©,4A0U 20104 044168 —1,0009 00163 03338 
00170 05905 a,503A 00101 042178 01,0197 0178 oSSK1 
20160 96065 ©,5772 10105 .432!% §},0345 ,0173 »3oRu 
00152 62178 ©5506 00094 e4U16% © ,NU93: 00199 o SHAM 
00138 06355" ©,5740 20N9¥ 450K af Nou} 29200 o4ORY 
ond) e6496% 22,5974 20996 24b058 01,0709 09176 04259 
00132 06626% ©,670A 00112 eUT{7S 01,9937 e216 e447S 
00127 067548 wou? 00107 e4R24U@ ©3,1085 oNLO7 o4ou2 
001a5 06A79% ©6676 o0NBy eH9VN8 O1,1233 0179 04822 
00120 269998 2.6910 00102 050128 ef SAL 291% 05017 
00115 o7113% ©,7144 2 0NGb 05108% e1,1530 00207 09225 
00108 o72?2% e,737AR 00105 052138 01,1678 09170 05395 
ont o7532% egTh12 oONN1 053249 01,1426 ofele 05007 
00110 o74Uee © ,7Aub 00120 eS4UUe 01,1974 09170 e577? 
o01N9 07551% ©,ANBN 00410 055548 01,2122 00173 05950 
00106 076574 e,b314 00102 056568 e1,2270 e179 06129 
eNind 07758 ©2548 00139. 057958 01,2418 29169 06298 
00098 o7AS6% 2.8782 20119 059148 ©1,2566 20169 00467 
00096 079538 o,9M7 00153 eOOU7E ef ,P71u 0164 06628 
00094 oA046% #925) 20138 e61K5% ©f ,2bb2 202 06829 
00094 oA140% «2,945 00133 o6S1A% ef, 3010 00182 e701) 
00094 oA231® 9.9749 002 26460 of 3158 0917S 07186 
00097 0A3PB8 © ,9953 00150 066119 01,3306 of 166 07552 
00090 oAu{B® ©} ,O1A7 00135 06745 of ,3u5u 00148 07500 
e00AT oA5N5% ©1042) o014t 068B7% ©} ,3on2 00139 076038 
e00R6 085919 #©1,0655 00163 07959% 01,3750 0915) 07769 
20R8 eAOAN® ©1,0RA9 20150 272008 ©f,3H9A 29148 07937 
oNURT 08767% efe11ed 00151 073319 01,4046 A160 28097 
200A o6853% ©$,1357 20159 eTHBN® ef 44194 20142 28239 
eN0A3 oAQDSU® 01,1591 001th 07633% o1,4suy ue eo | 08370 
oN0Re 09016" ©1,1A25 00160 077938 wi, 4uoy 00190 o8uT7 
00078 09093% 01,2059 oVleb 079198 ©1,46039 oO? 26007 
onn7u o9JH7% O1,2799 20154 eAN738 of U7RT 09135 oA7UN 
©0075 092428 01,0527 00132 oH2U48 01,4935 ud oA856 
0907S 09316% e1.27o! A eB 35AE a1, 50AS 29093 AOS] 
00067 oFFRU® 01.2995 200150 eS4BKO ©} ,523) 2072 09022 
00061 oWGue of, 3729 e0laut ehne9e% 01,5579 29090 e912 
e0Ub1 295958 ef, 346d oONtt eATUI® ©1,5527 09063 oF1TS 
00056 095619 91 65H97 00120 ,8869% ©1,5675 ,0058 09233 
09055 29O1U® 1,393! e0td oh975® 01,573 090603 09295 
09051 096605% 91,4165 00A3 09097 01,597] 29079 09375 
00045 oITI1F Of ,4399 00102 092008 ©1,6119 00060 09434 
00042 097538 Of USS 20096 29P9h® 156267 20067 09501 
0047 097908 ef ,4AoR 2 0N9R e939NR 01,6415 20075 09576 
eN0%e oFB228 01.5102 20N79 e9U7T3® 01,6563 20046 09622 
00034 oFKS3% OH 165356 20N66 095598 @1,6711 2000638 09085 
eonad oIRTH® ©1,5579 oO NUh 295K6e 01,6659 00027? 09712 
00025 099038 ©) ,5R0N 06955 0 96U1% C1, FOND 0037 09749 
onuys 099218 m1 ebn3A 20056 29H47 e1,7150 00053 o9TA2 
00015 =o 993H% 9106772 60053 29750 ©1,75N4 4028 49810 
on014 299508 ©] 60506 20n4a 29ANN® 01, 7US2 29030 29840 
oN012 09962% @1,6740 20fun 2 9AS9® 01,7600 20049 09890 
29010 299738 01,0974 ONS 98718 01,778 29018 09907 
20007 099798 ©1,720A 20N22 oPAVS® 01,7896 2027 0998G 
2006 o99AG® of 7442 20925 o991R® 01 ,ANKG 20018 09952 
29005 2099918 el .7h76 20051 2099098 ©1,A192 29009 2996) 
ef0nd 099958 of ,7910 00019 099698 1 ,AsUN 09010 09972 
003 099978 ef ALU 20010 299790 ©1 ,AUAK 29010 299R2 
enone 099998 ef ATA 00009 2V9RA® @1,AbS6 29009 0999 
onnnd 1,90908 @1 Haj? o0N0? 0999H8 ef), ATAU 09006 09997 
eN0NN 1,ANNNe @©} KAU Aan | 299998 21, A992 29000 09997 
2e00N0 1,90NNF #1 ,9NKN eunnt 1.90NN8 #1, 9080 2909S 120000 


=1,90A0 


280 


Port Townsend 


HOURLY TIOE HEJGHTS 
FRIDAY HARBOR, WASH. JANUARY 1973 
REFERENCE STATION: PORT TOWNSEND, WASH. 


Figure B-42a 


MSL 


Equivalent Gaussian 


MLW Distribution 
-0O 


MLLW 
-20 
Extreme Monthly LW 


—— Friday Harbor, Wash. 
-30 |} -~——~— Reference Station: Port Townsend, Wash. 


0.01 0.1 -30 -20 10 -o 50 o 90 20 30 99.9 99.99 
Diurnal Range =: 7.78 ft 


Figure B-42b 


28! 


FRIDAY HARBOR. WASHINGTON 


D,_,O2°%,mO0 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER = MAXIMUM @ © WEAN HIGHER X = MEAN: 


12345678910 12 6H 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER © = MEAN @ MEAN LOWER X= MINIMUN 


Be eee Oe miata ait D 


POTP®FVOHQ gH _QHDDOHO® 


xX Xx 
123456786910 12 64 69 74 719 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE ©@ -] owrnar tie © = MEAN TIDE X= STO DEVIATION 
0.5 
0.0 Xxxxxxxuxx%% XKXXKK KKK XX KK KKK KK 
os 
12345676910 12 6H 69 74 79 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA EEVEE 


Figure B-42c 


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bouS*te asege® Juuu® Qn2ies 
y9eon* be sgece? Yuuue 4uaiet 
uGuntbe agge2e? nnvue avises 
yian°be efole® dunu? OEnbes 
sav7*te agute® nmnuue tomes 
Logn°le aioue® mye 2oSi°h 
bugn®te sgive® vunue cqiores 
ofnn t= aqrue® mney? megses 
ulan®tle ances? move Cw arson 
yeer=l= susol® eagles dodseh 
nisn=t= sgocs® f92ue esuies 
Lnonetb= #o9gi° Bye oboe 
bSot "te sennie? mnie Ovobes 
oSuf°t= anuni® move ende*h 
s9Li’ be a09T1? Buu? fulers 
yevatbe a2cei? manus nyters 
Nasicte egeei? mnbue Seee*s 
eonit t= anuli® wylue 9gecerh 
suntste sae01e wyCue eniers 
Oat? b= wHu001° eatue oune’s 
Lbeette egequ® ehtu® Oznert 
924E b= wondu® vet? tesees 
nfua* te sysou® Satue 2oS2°5 
ened te a2unu® mno0® nG9d*4 
bSue*le soinu® Guoue Steers 
oS.e"le soinu® Bue 94ers 
4992e@°te efStue feu? Laive°s 
Ssise*te #f42u° mndue Boud’s 
nene*te selev® nntue Q9oe°s 
dor2*t> sgutu* Jyrue tesges 
voge?te suygiu® Yusee euvaes 
ode t= aay ue nmi.sve gnbees 
abiestbe enniue Jui? nueg?s 
S2u2*l= anne? onset 9925°h 


awl a °7 444 
a3am0)  @ Paid S 


tIwl1 


udjos a3”"07 


ses 
aus 
ans 
93S 
99S 
4S 
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26S 
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899 
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249 
8y9 
869 
gud 
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ocd 
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aged 
aol 
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ud 
tod 
e0u 
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Bul 
tov 
2U6 
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#56 
896 
#46 
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su04 
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2 °ON 
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@ G90 4907 On 4ndNLK9 @ ad474 SIL- Son AnduLKI «@ 


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19 


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~72.9n4 NUTANG 


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283 


Table B-42b 


LOWER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED AY HALF THE OIURNAL RANGE 


3,868 FEET, 


8 HIGHER HIGH WaTER s HIGH WATER s HOURLY VALUES e LOw WATER ) LOWER LOW WATER 
s : ° ° 8 ° 
CLasss LOWER FAeA, CUM,® LOWweR FREQ. CUM,® (Lower FREQ. CUM, LOweR FREQ, CuUM,e® LOWER Pre, Cum, 
NO, @© LIMTT PREQ,® LYSIT FREG,® LIMIT FREO,® LIMIT FREG.® LIMIT PREG, 
COSTS SSE TESTO TESTO SESS OTSOT OT EESH TEESE HHSHO OTE THEOESEFO STEUER HESFOH THO EO TESST EOSO EEO OSO TOS E HOES OOEETESSCHOETEOR ETOH SOOOTOELD 
fole tetebo eN004 o00019 193? b66 20001 eONN1e 44,3266 00000 010008 09186 0000? 000028 a,2b64 00002 00002 
loos te3172 2000 000018 1,319 00002 000N28 44,2924 00001 oNN01e 28AR2 20005 00007 @,2846 20000 20002 
Q9e 123078 en00u ef0N8® 122959 20008 0000K® 14,2576 enone 200028 eAS7TA 20N09 20168 ©, 3034 00002 06003 
9Re 1029A$ 20003 ©1009 1,2AN6 20N05 eON13*® 49,2232 00005 00078 287d eonit 000278 oe, 3217 20005 .0008 
97a 17RD 29010 e00198 1.2653 20007 e0n2ne 34,1887 on0n7 000148 07970 00019 200uhe 29000 20006 
966 107795 20007 290278 142500 00N19 =o 0NUNF 444543 0001) 200258 o7h67 20026 0 8=6, 0 728 20099 0017 
958 102704 29006 e0033e8 Fe2tu7 20nd 000538 4,41398 00015 000408 07363 00033 001ode 20009 200026 
Q4e 162607 onto eN0U9e 41,2194 2002? 000758 1,08653 e002 oN0h2s 07959 e0hu? 001468 2001) 09036 
93a 102513 20071 00708 = 1.2enus 20nen 00095 14,0509 of029 00918 06755 = 0N5H =. 02028 29020 20056 
928 102419 29015 eO0ASe 1,1 A8R 20029 eOteds® 14,0164 ©0040 oO1dye 06451 0005A 002608 00015 0007 
Qie 102325 2002) 201058 444755 20N32 001569 29820 e00u9 = NL Ae 2O1UR 20070 203308 Noel 20092 
998 162231 e084 oO1VGe 141562 000$n 201K6e 09475 =o 065 292458 eSAUA 20096 204268 20023 =n 0115 
B9e 102,437 eN01GS eO159@ 491429 20039 00225° 09130 00079 oN3eus 209540 o015t 005378 20038 00152 
Re 192043 20018 e768 1 _91 278 20nun 002068 25786 =o 0091 0ulse 05256 00114 206598 29038 §40190 
A?e 1061949 Pur o02NSe teller 2005S e0sene eAUdy 00115 095408 e49%2 00125 v0776% e047 e023? 
Bae 1015S oNGad 002548 440969 0062 00 3APS A097 00134 oNbbus 04629 00150 009268 09054 20294 
BSe Vel?h1 20089 002928) guia 00056 oou sre 07752 00159 oNB238 oA ¥25 00138 019598 00059 20350 
Aue tel6b? 20027 oOS198 1 enhod 20069 05084 27407 of} Ab ofo1ie e4ney 00139 § 4119A8 29066 =, 0416 
Ate 101572 efuSu 005538 140554 00086 005938 07063 00198 o12098 o3717 20150 ol suAe 20060 oOur7 
Ree elu7a ends eAS908 YQ 0497 eONky 00661% 06718 on214 o1de7e 03413 00153 01501¢% 20081 20558 
Ale toel5hu 20049 e44Se8 4,02? 04 00067 o076AS eAt73 oN2eb 016558 oe S149 001Sh olh57e 29100 09658 
Ane 1061290 0052 eON97Te@ 140054 20085 o0ASSe 26029 oNeus o'onte ec Ath eOtuu olAole 09100 00757 
798 10et19%e 0006) 005578 e9AGA e117 009708 05084 00257 071619 02502 00145 019468 20094 2085) 
7TRe Veline 29053 enbiie 2974u 00132 =o tee 05340 00259 = 2u 08 o2t9A 201 $e 22N7Be 0094 20944 
T7e 101098 20079 etokie 2959 00143 012458 0 h995 00288 o267AS oJ ASU eONSA oPelbe 00116 01062 
Tee renvla efu7d oNTSe eOUgA 2013A o1tb3e 24650 oN2bod oP 9sae 21590 eNt2An eco tude Ps oe | 01163 
7Se  109R20 ony eNhzue 29285 0013h 015198 e4306 on254 031928 olPA7 o0fuu e2N BAe e103 ol2he 
Tie 109720 oNUTh oNGrte e932 0015? ol5708 0 3964 oNeus 2 tutoe o09ARY 00n99 e25h7e ot so oO) 
739 Yehoede2 eA AS 019908 2h979 0014y of Ayae otOl7 00239 0 VO75e 00h79 e0tnd 02h91e 09124 efS25 
728 1eCS36 eh C9G ell ASO oHHOb 20163 019768 ete72 00235 oe VO0AS o0378 oO? ec AAs oN 34 01659 
718 fenudu eNlua el 1AVe 2 Ab7Y 00185 211% 2? 927 on2eu 041328 0007) 00122 029308 0013) e179 
708 169350 00099 oleAne oh520 00192 o2353e oP DA4 e0e14 e43d68 0.0732 o0N1Y o3fuse 00151 01944 
69% 469255 enidu 015920 ehVn7 ourud 025978 2r2se oN2no 045538 eo053h 00110 o3153e 20158 02100 
b8e 10916) Nhe olatue ohA1d 00207 o27oue 21894 eno? 047508 @,0AUA 00N9R osesie 00134 P23) 
67e 109067 eN10K o'SAes akon e023 029958 21549 0195 04945 o,f 14d 20109 o53H08 09125 02556 
ore 09973 209110 016920 27907 0024? o37are 01204 eNtAS eS131% ©o1HuA 00108 2 3U6Re 20161 07518 
o5e eAKTD 09153 elbuue a7754 00753 0 3u9ne 2Nhbo oO1AS 053188 we 7Sl 00106 055748 20184 02699 
64s 0 F7AS 00139 el VAue e7hO1 0201 057518 29518 00174 eSUAR® ©4255 00107 eo ShA28 091468 oP B47 
o%s 09691 09165 oPilune 2 744A 00269 e4niis Ay | 0168 256568 2.2359 =, 093 o37740 00199 =, 3046 
6?e 09597 oNlS? 0238s 2795 °024N 042518 @eniTu 00174 o5A308 © ,2h63 00105 0 SAT98 oA149 03195 
ole 09505 00165 024708 714? = 60249 =o LS00% = 519 09165 95995% =,2967 0099 039788 -O1et 23556 
608 29409 09132 oPones 26989 00231 047524 weHhb3 oNied 061598 o.3A7t 20N9u o4N73® &1,0260 09192 2 35U6 
590 09315 09160 0? Thee 20436 00047 o4979F B,120R 00151 063108 o,3574 200996 olloAe oO1O7 03715 
She 092?) of1dk ee9tue ebbKD 002?) 052008 041553 enyut 064518 20097 04266% 00178 03893 
S76 09127 9166 o30%os 26529 =0727 05426% 09,1497 onus 0659ue oONtt o43778 00175 04068 
Soe 09035 20153 =o S2246 2b3Th 200226 =o 56528 oyP22 =o 132 267268 2009? 044698 09220 04289 
556 04939 eO14aa o 35758 20223 oured 09A76% 2,7586 00132 o6AS6e 20na9 e4SSAS 20216 04504 
Sus oAB4d eOtBu 235578 pONTA 00013 e6NR9F ©2931 00125 ob GAye 00116 o4h7ue 00149 04654 
53s 24750 00168 ot 2ue 25917 20203 062928 o,3276 00120 07 $038 00096 ~ ,u770% M217 o4ATt 
528 8656 = NANG 239330 25764 00192 = =o6465% w, 3670 eOtta 272178 20106 2uB7Se 20201 25072 
Sis 24562 00196 41290 95611 20207 066928 02,3965 0114 073328 20093 049698 291738 95245 
Sos 2Aubb eet 4308 255K 00193 ebRKS® 43ND = oN Nd 274428 20na7 o5NoAe 29199 = 4 Suuy 
ude oASTU e919 oI54be 25305 oAt57 o7N428) e,lioSu e0l1e2 275548 00102 e510A% ©1,2299 0199 e56Uy 
uAs 220 o02n9 =, UT Ue 2515) 015A =o 7200 = 4999 MINK =o THB 00109 o5A77% ©$,24R4 40196 5839 
ute Pan al) oN2P5 49TH 2499R ootSt e7351% 69,5543 001 077688 00190 053878 @142hb9 00190 06030 
Ube 0A092 oNl97 o51678 dhs 00146 074988 9, 56AK eoiny 078708 ©,7524 2009A eS4RSS 91,2455 09190 06220 
uSe 09998 00227 253948 e4hG2 214A oTb1h® we ehute 09098 079688 a,7A2A o0fe4 056098 =1,3040 0A 160 063R0 
ue 07904 eNelb oSOtue 204539 014A e770U® 2.6377 00097 08065% @,6131 00119 o572R8% ef ,3075 019% 06576 
ute 27810 M224 o5A81Le ed dhe e0tel oTABAY wyhT22 00099 oA1638 © .8435 00126 e5ASU@ ef 3414 20190 oO7b6 
u2s 07716 Curae obhubka 24P3h 00107 079938 06,7066 00094 082578 ©8739 200122 059768 &1,3596 200195 06960 
aie 27622 09262 oh S318 24NKA o0N17 081198 oe, 74th 0093 oA350% @,9043 00113 0b0K9% ef ,37AY 20480 e740 
une 07527 9214 ehS 116 93927 010d eA214® 0.7756 09094 eAUd{® ©,93U7 00146 eb23h% =1,3967 00198 07537 
396 07433 00etn ob6771¢ 23774 00103 o6317% @,ALN0 0093 oAS3US ©4965! e01ud 063788 91,4152 oO1Fk 07518 
zAe 07339 eNenYy eb9KIe eshet 20098 06412% ee, AUS 00097 eAO31% #69954 oVI3A 065168 91,4537 09157 07675 
378 07245 oeny e71AS8 23467 2008S 084978 &,A7A9 2oN0R6 oATI7® ©1.025A 200150 066668 #1 ,4575 20167 27843 
You 07151 09199 T3R0@ = B31U 20091 0858RF 80,9134 ©00A7 eAANUS 01.0567 00146 o6812% =1,4798 415) 0799u 
356 07057 0199 2 7T5R08 odtot 00073 08661 ©,9479 000R6 oAB90F 01 .0Ab6 00165 069778 —1{,4894 014d 06137 
ug 069635 oN} AS o7Thos e3S00R 00074 08755% «,9H23 eM0A0 oA970% of ,4170 oO177 07154% ©1,5079 09148 oA28S 
te ebKbd 00194 eo TVhU8 2285S 2006A o8RUS® 01,0168 000A2 090528 ef o1473 0015A o7T312% 91,5264 00124 oAund 
326 06775 17g oM13se 2°70? 20074 oBA77® 01,9512 0079 091399 Of e1777 00159 eT4T1% ©1,5450 00133 oAS44 
sie 05oA) 00153 oP eRoe 22549 20N65 069428 01 NAST 60077 092088 01,2081 20162 o7h35% 91,5635 209546 28689 
soe 0654A7 00145 oPhusie 22396 00M62 090048 wt,12h2 00076 oF92RUS of o24AS 200160 077928 =1,5420 09100 eo ATAQ 
298 ehudy oO 14e oASTUe a2 Py 00M? 090719 01,1546 00069 o9353% 1 .PhAD 00167 0796N% &1,60%6 00106 06894 
2re 06399 Aun :) oAT?P20 92090 00046 091179 01,1894 00066 094198 01,2992 001d) 81018 91,6194 20100 08994 
pis 06305 09439 oAtnia 21936 enna? 091OUF 04,7235 00060 eAU79® 21 ,379h 90167 eA2nA® ©1,6376 09075 09069 
2he 0bPs1 914K 290108 a17h3 2007 092208 ©1,25A0 20040 095398 01 63h00 20161 2hU29% ©{ 46562 2008) 09151 
ase 06416 00123 oI 330 91630 00056 092778 01,2925 enosa 095938 o1,3900 00166 065958 ©1,6747 00072 09225 
24s ohV22 =o M119 M2S1H = QA 477 =o NSF =— so P32A9% 01,3269 6053 = WH4T® 1 ,UP0A 60151 oA7TU6% 91,6932 ,N071 49294 
2te 059268 Ps | 093558 01324 20950 093798 01,3614 00048 0969UF of ,451) 00137 oBABS* ©43,7116 20062 09356 
2?s 25434 eV9% MUS) o1t7s 20049 =o942A% 01,3958 9045 ,9739% ef ,4A15 40119 902% 91,7303 40068 9424 
aie 25740 0046 095370 = {nA e0us 09U70% of 4303 00047 097778 wl od119 o0'eu 091268 ©1,74AB 01068 09492 
ane 256Ub 2 NV AQ 090766 2965 00043 095126 m1 ,4b4A onoyd oFAI1® m1 .5424 00932 297580 af, 7674 20065 09556 
198 05552 oNU7S 090946 20712 00NU6 eI5SA® 0f 11992 00032 o9AU2S wf S727 0014S 093568 =1,7AS9 0060 09017 
Ae 05058 enh? o47oe 20559 e0NUA 09606% 01,5337 onoru oFA67% e1,6931 000BA 094428 {1 ,A0UY 20050 09667 
17o S44 2082 979K 20405 2 0NUY 096U9% 01 ,%oA2 09026 oPA9P® 1,633 2072 2095148 &},A230 00038 09704 
pe 25270 en aT FHKoe 20252 6 0NE9 =o VHKA® 21 ,A4n2H = O20 099128 ©) ,6h34 2062 = 576% ©1,A4}5 ,0047 09751 
15s 25176 o0US0 296758 9ngg 200N$u 09722% 01.637) on01d 09927% © 1.6942 20965 09hUPe ©f, 860 2036 o97AT 
146 050Re 00040 099NS# ew .nNSu ennuy 09769% et ,h715 00095 079N2% m1 ,72bh 00M52 o9hG4e =4,A7A6 2007 09814 
13e 24QRA 20022 099278 wh P07 20N3n 09799% 04,7060 200091 299538 ef,755N 20054 097UB8 &3, ANTI 00082 09846 
126 6 4AGH = NUP5- sg 9955S wy 3HN =n ON SA GAST# @1,7UNS «=o M011 =o 99HUF @HL4TASS 60955 =n PROZ® 91,9156 499020 49866 
iis 24K00 0007 2 996U8 20N26 e9AOU® 01,7749 00010 099738 e1 AIST 20nd o9AUSS of, 9342 0029 29894 
ine 04705 20007 oWHTe 200035 09AG9* 01, A094 00008 o99A1® @1 Hub) 00N32 e9ATS® © 1 ,957°7 20024 09919 
98 o4oh1 oA0N8 eIGKILH yh AID 2092? 09921% 01 ,AU3B 20005 099R6* SL .H765 00029 2099048 94,9713 2023 09944 
As 04517 20003 299R4S 04972 20net 099U2% 0f,A783 enuns 099A9® 21,9069 20N2% = VPAA® & 1, 9H98 2018 =, 9959 
Te e443 oN0M4 099858 wo ,h126 20916 09957*% ©) ,9128 09004 099939 01,9372 00049 29947 22,00A¥ 90011 09970 
be 04329 29006 099918 0,4279 20015 099728 ef, 947A 00003 099968 ©1,9616 20net 0996R8 ©2,9269 0006 09976 
59 04235 2004 099958 wes li¥pr Ott 099838 of, 9817 en0ne 299988 @1,99AN 00nth 299814 ©2,0454 20009 299A5 
us 04444 s00N3 099968 2,4 8AS 20905 099BA® w2,n1 61 on0nt 099998 @2,0784 200046 o9Y9DKRE =2,0639 09008 09992 
%e e4o47 onnny 099976 04473R 20N0A 099GHF e2.nSNbo e000) 1,00908 e2,050A 00909 099968 ©2,0H25 0005 09995 
7s 03953 2nna0 099976 ayy AG 20002 0999R8 02,085) 00000 1400008 #2,0A9S 2onne o999R8 ©2,1010 20002 09997 
te SAY e908 bedunne e.2nun 20002 fe0000% 07,1195 eNNNN 1,000N8 62.1195 20902 4.09008 ©f,1195 29003 1.0000 


284 


HH A Lath 
Sa ne mney " "| 
5 Lala wal a 
ay eye met y 


HOURLY TIOE HEIGHTS 
KETCHIKAN, ALASKA = — JANUARY 1973 


: KETCHIKAN, ALASKA 


12345678910 1e 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER o « maximum ® «= HEAN HIGHER X = MEAN 


fu) u 
o BOG FF20F8GenAageoe 


S®9Ho0ODTOODCOO2GBATDOAOADHOD 


Onmamnagnao 


x 
Xxx XX yey XX Xx 


-] 8 7 
12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER om «nea @ MEAN LOWEN X= MINIMUM 


Omo O9"Fa,,09"% ODDARAADAAAADAAAAAD 
79H HOOOR282000 COBHB®HHTDHHB9F9P90D 


1234567686910 12 6y 69 74 79 
MONTH OF THE YEAR TEAR (1963-1981) 
RANGE ©® -]} owanar Ti0e © = NEAN TIDE Xe STD DEVIATION 


O25 
0.0 XXXKXXXKXX KKK HEX K KKK KKK KKK KK KKK KX 
53) 


12345676910 12 6y 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-43c 


286 


0000°S nnoo® 9Se9°T=s w0u00") nndu® o9nses el * * 

9S66° vooo® nts9°t= 29566° nnou® nmuSb?b #2 a ebSue? ote? 4ain°be 2Goas°? BH0U? o92s°) eS 
9S66° noo? b429°T= 260° mn 00° OnSseb wh a eef92e° of20° nnin®te alugs? GSitue mute?s #aS 
@boe° ecio® o2d9° T= aygeo® Oudu® SaSi°s an a aetne?® ot20° cOin?te wegtg?® Bu0u? Of£E°s 3nS 
beL6° nnd? 9819°T= wa980° nn0u® OV9seb 8 % aiole? Sor0° osun?te annds? Satoe mesaes aS 
4£46° #900° mni9° b= eSeuo° vudu® 9n9i°b 49 * agoct?® yeud? ytun*te sgogn? elev? Oinget 29S 
on96° vouu® JOS" T= 2Sego° oudu® Tuotth oad s witate eci0° nLot® *onon? bogue Snmees aa 
on96° er1o° BS09° T= sSe8o° 2atu? CY i eel 3] * sodsl® nnvo® bToL® sAoen® Satu? Ounges ayS 
@ts6° we00® 9109°T= «2696° Oudu® Ioat*h 6 * esgsl? veaud® obui’l= ase2tn® otoue 915¢°) *60S 
Ofne® 0000° £LoS°T© #£696° ov0u® dudieh wOt s agnnte oleu® Ynut° te sfeln? Tou? ToSg°) | 809 
Ofne® Heu0® \EOS" b= wf6O96° 0v0u® 22uieh alt s seect? upd? nOgf*t= e2.L9° dugue 9uSeeb ho 
engo’ 1920° veeS*t= 2£690° Ouvv0® dspieh eet a eonite voud? 1945°t= aG9ng? Salve te9geh 29 
6406° S210° 9neS*t= #f696° ou0u* fooies act 2 euntt? nnuo? olet* le sege2s? Budu? 4594%) 8a9 
n068° eeu" LOuS* te #£696° Oudu® Beoleh ant Py e9oul?® veuvd® 949E% te #2uze? nnov® 20952 h 8nd 
9tee° eciu® }94S°T* #f696° Bu0u® T9o1°s at rf ao00T? nnvd?® NTGL° be wgglg? eatue Ledges 299 
nege° nno0® et.S*te sSu90° nn0o0° Booleb 29 a 05960° ggud? bost?t= ag20¢g° eatue f9l4eet 299 
Ong9e° egyo° 919S*T= al9So° nndu® nmev/~*b act « wLigu® nnud?® yNSt°b= «S692? ecto? podaes 449 
6098° o120° LT9S°T= ayiso® nndu® o9ud*s agl * eiiy0° wQ@u0® 90Gt* Te sg9Le° eqtue Caer’ l fy? 
oe2e° et2o° bosS* te anino® Salu® mule*b sot s e9nLu® mnuv® A9ng°te secge? Lugo? d9UE°b 269 
04098" 40¢0° bPSS°b= 820° Oudu® Onte*sb #202 a a2040° nnuo® beng*te asg2eee¢° c920° nooges 0d 
8942° ¥au0? SOSS°t* agodo" nndov® Sate*s af2 * #ys90® nnvo? wlac°te «902° 2atue 6LOE°s Bld 
$i9c° Siio° qonS*te ans2o° Sibu® obee*t «22 a an t90® nnuod® 9T4E°be wvfel® eqiue meoacth sed 
vosd® 4040° O2nS*T= 96400" Huu" Gneerh ate * #0LS0° voud® woef° t= agodi® nnd? Obene?h wed 
foe? ot2o° BLES*t= aloou® 2gbue buee*h ane 6 #04S0° nnd? bGef° be anges? mou? SnUnes and 
nlo9° 3eo0* SeeS°t= 2098u° SIU omen Osten) ees G Cone #9250° nnvd® wueio be af fete 2a70° OvOne?t 85d 
9999° ve00° $6¢dS°T= «fSSu° nnvvu® bsge°s 292 s wegnoe vauvo0? 99I1E T= boesi® esto? Sbbnet od 
96L9° Sito° OS2S*t= so6uSu® nnodv® dugte*) a2 * acand? nnuv® Q2ie°te aduns® ectoue Iotnes mad 
£299° ot20° wOeS*T= eS9ng’ eylu® 2ene*h ave a #0570? yqud? Vaug*te soles? Ov0v? Qybneb eed 
n0n9® SLi0° S9IS*T= elit’ nnuv® Lgne*s «62 2 #hSf0° govoe #LUE’Te soigs? auou® Veen*s sod 
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£509" SL50° veaus*t= a2ueu® yedu® weSe’s wlf a 2hSf0* nnvo?® LGee"b= adnih? Ounus 2ocen?s shy 
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694S° nnvd® Soon®t= s2yol® 2atu* 86S2°) #fF * *£9¢0° voud? w9uett= wOnts? zatue Z9ineh #68 
9n4s* 4050° 2son*t= wlse.® By0u" ME9d*b ane * #£9¢0° voud® Seye°b= sauds? 0000" Poinesl snd 
ofns® SL10° Uton*t= ef9lL° gy0u* o99¢d°b “SF s #£9¢0° veu0® secert= 8600)? nno0? Ginnes #58 
192S° weod® agen*t= #S194° du0uU" nude’b 29 * eSito° nnud® Urge? b= eS96u° 8u00° g9nn?s #99 
SdtS* @900% Se2un*t= eS192° Satu ofce*b see s wef i0° YOuv0® weyerte sigue Sito® moSneb 848 
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9S56n° £920° Onan*t= sSecl® eyu0u® Osee*s oF * 29900° 0000° alg2°te wasoue r92U" n4gneb #68 
fo9n° nn0d?® Logn*te #isec® nnvu® Snee°b sn 8 #8900° vouo? vise*te ssogu® Ovoue 609ne tb 806 
ongn® noo? SS9P°t® sfoli® mndu® Teec°sh abn s 2ggud® vouu? L2s2°te eSociu® nou? Sn9n?b #bo 
Sogn° Sito° 2tgn*t= sonti® oie2u® 9ioc*! sen 8 ag@ud® ddu0® Senerle= wlsgu® 00002 OyIn®b #26 
Ofnn® ecyo® o9sn*t= #0569° 2atue bsod*s) ain a 29g00® 0000° enne-te #tScu® egtoe Shdn°b £6 
@oen® £920° 2esn*t= *9619° zat? 9god°h enn * ayguo? nnuo® vone’te seb2u® nnou® todn?s ne 
Ston® ot20* nenn*?t= #1999° nndu® 220¢°) #eSn * annod?® vouo® 4gg2°te eSutoue 000vu° 9udn®b #G6 
9tes° SL10° @nnn*t= af299° oieu® L50%°) #97 s anno00® douo® sta2°be ssguiue ounoe Teun®h 296 
Ongc?® 40¢0° born’ te enung?® 2atu® Z2ovs°sb sin * ennvd® v0v0* eLee*be= ssutu® nn00° 95un°b #46 
Lo Se mnoo* isin*te= s2.24° Lufiu® Bele*s syn « ennud® voud? ugee*te e2atue mou? Zour sh a6 
oeer? #900° ntan’ t= 2S96s° dily® f9taehb son * anroo® doL0°® Lyre *be ayydu® nnovue Le6n°b 206 
coer? sato® elen*te sfsus® obeu® voba®b «0S ry anncoe vuvo® snie*t= annvu® Ouuu® 29on®s B80} 
9205° SLtO° ozen*t= anivs® oleu® Te2e°b #hG * enncoe noe cuie?te annoy? nnoue @oon?s 8i05 
SRATHAST HS ARETE RH TAH AAR ESKER AHH TA TT AKA A AHR SSTHAT Ae eHH HTH ASKS ESA AH aHHKH EHC HARARE RSE eek hasaesesegreaeetatageestateas 
es °odad AIwI1 8 °n344 dIwI7 6 °ON 2 « °C3a4 atwi1 «© °@3a4 ALHIT 0 @ °ON 
@ °whd °0384 aam01 e and °o3a4 43407 aSSV1je a °n) *fas4 ddmo) a “wid “Oded 83407 sSSv13 

2 a s es £y° 2 

@ GALVM M1 POW FWddLXS @ BILYM HOLA COW JwdIuLAD 6 * & SALVM MO} °OW 3W9UAMD # SILVH HOTH SUN Jaduinxd # 


"L394 $69%% 


beei9et 


BONVe WadnlG Jed a7vVH Ad UIZITVRSUN Gav 


Vusv iv 


Pey-d@ FT9PL 


Sax9l3an 119 
*vVyLHI. 4» 


ONMUHS IWASaint SSV IJ du alwI) w3m0l 
nOLLINNG 


voTanblaista 


287 


s HIGHER HIGH WATER \ 
8 ° 
CLAsSe LOweR FREQ, Cus,e 
No, @ cwjMyt PREOQ,e 
SHeeseeogesocevecenengceseons 
foie 124998 20004 eN0018 
1oos 14889 20003 eN00ue 
998 124780 00006 e000 
Q8e 164072 20004 eN01Se 
Q7Fe 164563 ©0022 20037s 
Qb6e 1e4uSS 29022 eN0h08 
95e 1e43uo 29010 20708 
94a 104238 29019 200A%e 
93s 164129 20025 eoiise 
928 edo e002u oN sue 
91s 125912 20039 of177e 
908 tesénu 00043 e022us 
898 123695 2039 o02598 
BRe 1.23587 efueu oNS2se 
ATe 163478 29058 eOSAle 
Bos 1205369 eN0TY eNuSse 
AaSe 1.326} 00054 e05008 
Aue 123152 20082 e05A8e 
83s tesodu 20u82 206708 
628 1229385 20076 oO7loe 
Bis 17827 0057 ohn se 
Ans 1.2718 ening eNINLe 
79m 107610 29092 09908 
7TRe 1422501 0 00RB elQRus 
778 102393 20085 ollove 
76s 1.e22ku e190 ol269e 
758 ye217S 200AN of Sade 
Tus 102007 oN1t8 oldnte 
7%s «421958 29092 o'SS9e9 
72% 1614850 ue tae) slonee 
Fis fel? eile ol774ue 
708 Yeloss o91h2 el bASe 
698 161524 e911 220908 
ofe Jelulo oO197 ell se 
678 161407 0019 eeetes 
bee 1201199 00134 s2shoe 
65% 1.1090 00128 o249be 
64e 16NVA2 Pu ey oPoiTe 
ote teNkhls olde oP TASe 
6726 169764 00140 oP Gaus 
61% 169056 e017u eo S1 488 
608 1209547 00208 eSS408 
S98 1.94359 of 144 S49 
SAe 1.9330 019) eo S098 
STs 169202 2A165 othi7e 
Soe 109115 oN2P ed QATe 
559 129905 Bue) 242508 
Sus eIhKV6 29222 e4u7He 
Ste 09748 oO 19H e4O708 
S?es 09079 oA1AD o4Aode 
Sis 09571 29200 eO0A58 
5o8 09462 020K o5e7ke 
ue 09553 09155 0 54PKe 
Re 09245 e165 055948 
ute 0% 30 20170 oSTove 
ube 09026 o01Ab 059558 
uSe 05919 e0177 oo1 tse 
ude oABIS 09134 ohebTe 
use 2A702 09455 eb42)¢ 
42s 0A59u oM1l6u ebh5ASe 
ule eBuAS 20164 ob7498 
40s eAS77 29162 oOF118 
398 0208 9155 s70hbb8 
yas oAj60 eA147 otelue 
sie AOS] 09125 75398 
3os 07942 00161 075908 
358 e7A34 ids eTouse 
yds 07725 o%}36 a77The 
33s e7H17 20125 2079050 
yee 07508 09159 eAdnye 
31e6 27400 09121 oAlASe 
3ne 07291 e014 oA$PS0 
290 0783 20146 = oKUT\e 
ahs e774 20115 oASAS® 
eTe 26966 00519 ATU 
ene 2e0R5S7 only ohb?PSe 
258 eO7N9 o9113 eADSGe 
eue 06640 0909%u e528 
ote 20551 200AR6 oF Pus 
276 06423 eNoRe eF%2Nee 
ele 06314 Cu ian 093058 
208 26206 29092 293950 
{oe 26097 e067 oMnee 
1A8 059R9 20076 2I5tbe 
17% oSKA0 oN06u 290028 
16s 05772 29040 eFouse 
156 05063 09039 aI0Ale 
146 ©5555 20052 o97T350 
13s eSuto 0083 o%7boe 
126 05357 oNuug o9H1Se 
11% 05229 00034 o9b508 
108 05170 00027 e9h708 
%% e5ute Py) 299178 
as 24903 of 013 0 99F8 
T¢ 04795 2901S o99USe 
6s e46Ro 60028 2997S8 
Ss 04576 20uUN7 eI9Ki\e 
ue 044609 efhON9d 299908 
\e e446) en? oI97976 
pe 04252 enuny eINGNE 
\e e4juu eAUN) 1.90008 


Table B-43b 


LOWER LIMIT OF CLASS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALIZED BY HALF THE DIURNAL RANGE 


HIGH WATER e HOURLY VALUES r 
® r 
LoweR FREQ, CUM.® LOWER FREQ. CuM,® 
LIStT FREQ,® LMT PRE 
SSTKEC HSH ST HOOK SS HSTS SHH SS HH R ees OER FEoeeEsseggs 
1,499R ©0901 e0001% 14,4998 20000 20008 
1.UA6§ 20003 00004 4,468u 20001 200018 
1,4729 20003 00007% 14,4370 0002 200028 
1.4595 20009 00016 4 ,u057 000ne 090058 
1.4400 00014 00030" 14,3743 00005 290108 
144324 200907 00037* 14,3430 ©0008 210188 
1,419? 2001S 00052 41,3116 001) 200298 
1.4957 20016 +6008 14,7803 00015 200U38 
1.3923 20019 20088 4.2489 20020 000638 
1.3789 eon2d eON11% 1.2170 ©0023 899M Bae 
1.3654 20925 oO137® 4,1862 ©0029 oN 168 
1.3520 e0ndn 00177 4,4549 00033 eN1 uae 
1.3346 20046 e02e3*® 1.1235 e042 001918 
12525) 00055 002588 41,0922 20045 =, 02468 
1o3117 20053 eOS11% 4.9608 00056 = 292% 
1.2983 00N49 2030N® 1,294 20067 093598 
1,249 ond 204o4e 0998) 00078 eNus7e 
1e27h44 20074 004768 29067 ©0093 2005308 
122580 20958 2053ue 2935u 20099 MH 298 
1,2446 2095S 0 05A98 29040 e019 on7sBe 
Yeetit 00973 006038 oAT27 eO1id 20 0B52° 
1.2177 20070 007338 AUIS 00122 209758 
1,2nuy 2009 onhare 2A100 e01%6 oltl1e 
1,190R 20082 209098 07786 =o OL ut 212528 
1.1774 00083 009938 T4738 e045 of 3978 
1gihun 20089 010628 07159 0©0t50 of S4Ae 
161505 20100 o11b2e 2ohB46 eO15A 017958 
1e1374 20096 012784 046532 20162 of B6Re 
191?37 00102 01 561% 04218 00160 ec0eTe 
Veilo? e0Nlt o14gre 25905 =o O17 0? 195% 
1.090A 20126 016168 25991 20170 22365° 
1evR sa 00129 017478 05278 20166 25518 
1.9699 e0lo7 019148 24964 0167 oP OTRAS 
120505 e01od 02nT78e 24651 e016) 0 2865% 
1,043) 200154 o22sre oI337 09169 030348 
1,0297 20155 o2367% 2402u 00160 031948 
1,uto? 00192 025798 23710 00163 0 33578 
1,002AR 40181 02700% 43397 0160 435178 
o9A9U 0019 e2951% 23088 00159 o VO7be 
29759 6 0192 oSiute 27770 00158 2 SA33e 
29625 20702 o33u5e 02456 =o N1U9 = g SAB 
29494 2004 035498 02142 00146 041298 
29356 00182 oS 7318 01829 oNiue o42718 
29222 = 0188 039208 21515 oO1sT 4408s 
2 IOKR 00108 o41 088 2f202 oNiue 045508 
28953 00215 eusQue oN BAB 00338 e4OAT® 
2 8R19 eOl177 045008 0A575 oOLt7 o4B24e 
2868S 00192 4693s on2bt 00133 249578 
28550 00182 e474 6.0052 00135 250928 
©8416 = =.0212 e5NK6F oe ,N3ho 00137 252798 
28282 840207 052938 ©0679 8 138 255078 
eA14AR e019d 054B7% 29,1993 00136 055058 
ehOLy 20162 256609*% 09,1306 00137 056428 
»7A79 00191 05A59® 02,1620 eni4s 257878 
o7745 20183 eoOUS® 0,193u oflu9 059308 
aT610 00175 06218 2,2247 00152 e60RT7® 
27476 2017? 263908 2,256] 09155 262458 
a73ua 0016) 26555% 9.2874 0152 063958 
27707 20189 eO7TUUF ©, 31 AB 00155 265508 
07973 20the 069278 =, 3504 00163 e67128 
90959 20179 =o 7105% @,3815 20156 66K 
poAuu e014 072U7® @,Uj2B 00158 070268 
96670 00173 074208 a ,4uue 00156 71 Ree 
20536 = 00152 T5718 | 4755 00160 073428 
26404 00t4o e7711% ©,50609 0157 2 7U998 
20?67 200150 07861% ©5382 00154 070528 
06153 20150 08010% 6,569) e057 278098 
SOIR 20147 81579 6.6010 e015! 279608 
25Rbou 20126 08283% 90,6323 00150 oAlt1® 
e5730 00994 0o8377% 29.6657 oOluud oAPS5e 
25596 00123 = =58500% #6950 oOL37 283928 
2546] 00107 066078 «2.7264 00134 oAhS258 
95327 00112 .6729% ©,7577 001?7 286522 
05193 00098 oBB13® «6,789 o01A1 7738 
2505R 00105 eB91A® A204 OU i) oAAA7e 
2492u 20096 090148 2,A518 00107 2A99u48 
24790 20079 290938 «,AB34 00098 = 9928 
24655 2009R 091998 2.9445 00098 =, 91908 
24524 20087 09277% «49458 e00R6 8492758 
pUsh7 20080 09358% 69772 200AR0 093558 
24252 0063 09420% 01 ,N0f6 00076 F458 
e4tIA 20956 6 9476% 01,9399 6 0044 294998 
a 39H4 20064 09539% of ,n7I13 2066 oA9Shus 
2 3A49 2005? 29591% 01.1006 20065 096788 
25715 20056 09647*® ©3,1340 20055 0 FHAS® 
03541 200nS2 09699% 01,1653 ennse 097358 
23447 20nd 097U0% 01,1967 ©0047 o97A28 
o3312 20939 09779% 01 ,22A0 00046 oFK198 
o3t7A 200040 e9ASA® 04,2594 ©0033 e9h528 
23o4uu 00031 eDK50% 01,2907 ©0028 eDKRUS 
22909 20%2R oF9ATA® 03,3221 00024 299048 
2777S 20922 09901% 0f,3534 00022 299708 
eebu 20927 09927% of, 3H4A 00018 0990ue 
22504 20019 s99U7% 01 ,u164 20016 299608 
0237? 00014 09961% of Uu75 en0ie 299728 
225A 00018 oF99TU® 1 47AY 00009 e99AL® 
22103 20908 09962% 01,5102 20008 2 99R98 
23909 20005 e99K7T® 61,5416 006 299958 
21735 60n0d 099929 91,5729 0003 2 I99R® 
ol 700 20005 099978 o1 OHS PO | 1,c00n9 
21566 20905 2e0NUNF 01,6356 20000 1,000n8 


288 


SOCSHSESHOTHE HSH eETHE Eee ESOoEREsEsED 


LOW RATER 
LOwER FREQ, 
LIMTT 
2.0799 00005 
2.0955 20N04 
eolll0 20902 
©.1?66 00007 
eoldat 0006 
eo1577 2001A 
201733 00011 
eo1AB8 20016 
© .2nud 20N2A 
e@.2et199 09032 
20028 
2.2530 20049 
2 e2hb6 2051 
2 .2h22 20051 
©2977 20057 
eo3133 00070 
2.52HA 20055 
weesuuu 20NT6 
2.3599 20096 
203755 20093 
wo 591! 20N8u 
2.4066 20099 
204222 20989 
24377 20095 
2.4533 00104 
©4688 00116 
e,4Auu 20105 
2.5000 oO1u2 
2.5155 0117 
2.5¥it eo 013A 
© 05466 200140 
2.5622 200158 
25777 20147 
2.5933 20164 
= 26089 00156 
2.674 00164 
2 ,640N 00173 
@,0555 00175 
eo6711 00176 
2 0RbA o01AS 
2.7022 00170 
o.7178 00193 
@,7333 e01A2 
©. 7489 20183 
eo 7644 00173 
2.7A00 e176 
#27955 20176 
2.6111 00179 
2.6707 20174 
2. 8u22 20170 
2.8578 00177 
2.8733 00173 
=. 4AA9 20160 
e.9N4u 20107 
2.9700 00162 
2.9356 00167 
2.9511 0 015A 
© o9hb7? 00149 
© .9A22 001u9 
2.9978 o01UA 
21,0133 2013A 
01.0789 20126 
21,0445 200149 
21.0600 00119 
01,0754 20127 
e1.,0911 oONt! 
2101967 o0fut 
e1.1222 0012A 
e1e137A 00151 
e1,1534 00134 
21.1689 20155 
e1.1Aus 00129 
e1.2en0n 20118 
21.2156 20424 
e1eesit 00103 
1.2467 OORT 
e1.2bAd 200A7 
°1.2778 20NBA 
21.2934 20985 
21.3989 2072 
21.3745 0007b 
21.5400 20067 
21.5556 20061 
1.5712 2 ON5A 
e1.3Ao7 20057 
e1.4%23 200908 
ChOOM A aie. 
el e43su PY 
e1.4und 20N44 
©) .4645 00NS4 
1 o4A0t 00953 
©1.4956 20039 
e1.5112 00034 
21,5267 29935 
e1.5023 20929 
21.557" 00025 
e1,5734 00016 
21.5890 00023 
e1.00u5 20007 
21,6705 2004 
#166556 20N0t 


Teoot FEET, 


s 
s 
CUM,® 
FRE 


Pn 
200048 
o00078 
200138 
200198 
200378 
20nuge 
200648 
200928 
eOteus 
0015$e 
202028 
0075te 
e0304e 
oO Sune 
204108 
204658 
e0Suie 
206378 
207308 
AOA ae 
noise 
19028 
e19Te 
el2ole 
ol 3}oe 
eldelse 
015038 
216808 
elALAe 
019568 
o2t1oe 
022028 
o2ugne 
025878 
o275ne 
e292ue 
039998 
037758 
0 S45Ae 
a t62Ae 
0 SR218 
2400s 
041 Boe 
eK tSAe 
o4S5u8 
47198 
o4RAI8 
050038 
052558 
o5d10e 
055438 
eS 7TUSR 
059108 
260728 
eb2u0e 
eOt9ARe 
065468 
966958 
obAuse 
069618 
o7OBT8 
072568 
073540 
eo THB1e 
075928 
077339 
eo TROle 
ohOi2¢ 
ob145e 
262808 
284098 
045278 
08650 
oh7538 
HAULS 
eA92T8 
29015 
e908 
e978 
2 9PUR® 
ONS 
o945770 
094358 
094928 
05008 
29h1ee 
296558 
o969RE 
097308 
o9TKS8 
eG9ACue 
29A598 
29AQue 
299238 
o99URO 
0 99HUe 
299878 
2999Ue8 
oI9998 
1,09008 


LOWER LOW WATER 


LOWER 
LIMIT 


20,4097 
@ 4180 
2,43n3 
©4426 
24549 
e, 4672 
2.4795 
e 4918 
e504) 
e,5164 
e.S52A7 
2.5410 
2.9533 
2.5056 
a 5779 
2.5902 
206025 
2.6148 
2,627) 
26394 
© ,0517 
2.6640 
© 06763 
2 ,64R6 
2,7009 
ee7it2 
e.7255 
o,7378 
e,7501 
e,762u 
eo, 77u7 
o,7470 
2.7993 
2.8116 
24239 
©8362 
© AUAS 
2.80046 
e AT 
©, AKSu 
2, 4977 
2.9100 
2.922s 
2.9346 
2.9469 
29592 
2.9715 
2, 9A3A 
2,996) 
©1,90AU 
e1,0207 
01,9330 
e1,0453 
21,0576 
21,0699 
e1,9h?2 
21,0945 
©1,1066 
e1,119) 
e1,isia 
er ,1avr 
©1,1560 
e1,16A3 
21,1896 
21,1929 
21,2052 
e1,2175 
21,7298 
e1,2urt 
e1,2544 
©1,2067 
°1,2790 
e1,2913 
21,30%6 
21,3159 
21, 37A2 
21,3405 
21,3526 
21,3650 
e1,377 
21,34% 
21,4019 
erode 
21,4265 
°1,43A8 
e1e45it 
er ,4otu 
e1,4757 
°1,U8RO 
1.5003 
©1,5126 
°1,52u9 
21,5372 
71,5495 
©1,5014 
e1,5741 
21,5664 
#1, S9AT 
21,6110 
e1 6735 
21,6556 


FREQ, 


1.0000 


ollie etme Lahall 
ryeyey verano my 


“lity Naf afl afl nl 


tl VL rip 


JANUARY 1973 


Figure B-44a 


Als eid ALASKA 


CHoTHQHAOHHOHOGCHO9OO092 COB 
12345678910 jie 64 69 74 79 
MONTH OF THE YEAR YEAR (19639-1981) 


HIGH WATER 0 = maximum © © NEAN HIGHER X = MEAN 


-Q. 
om ooeooo89” gomOF8F8BeooAaManaeoo 
1.2 209 —9,00°°%2 BHHROCOTHHOOHHHDOOHHAO0DN 
oo 
Soh ria | 
123U5678910 l2 6H 69 7U vk) 


HONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oe -=nean © = HEAN Loven X= MINIMUN 
ee 


Ome ®®oqgg mM 2® CooHopeMHoTF5F00800 
®DHBHMOHAZAOOG COHBHg DH HHFH99F°AKD 


123056768910 12 6H 69 7 79 
MONTH GF THE YEAR YEAR (1963-1981) 
RANGE © oe DIURNAL TIDE @ = MEAW TIOE X= STD DEVIATION 
0: XKXXXXKXKXXKKXX KKK KKK KKK KKK K KKK XK 
Sanaa oestoe GH 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-44c 


290 


0000°S mpo0® noes9?s= 20000°S mn00° Sprites af 

9So6° 700  Sse9°te 29G66° 0000° Serres a2 

Btoo® 0000 L8e9°be s9G66° 0000° gs2tes of 

Bteo° 0000" g229%t= 29566° 0000° ss2tet an 

2ta6° =fR00® ef29°te s9S566° 0000° te2tetl ag 

9996° sitoe 0029°%® 29S66° 0000° e2ctes 29 

fe90° §«astoe 2919°T@ 29566° 0000° notses wh 

b9s6° noe €239°S® 29566° 2gto® tons?s ae 

Ofso® 230° ne09't= egzao° nn00® Lemt*s 26 

99f6° fn00® Sh09°t@ sfgie® 0000° nantes wot 
2pge® eero® 4009°t® wtgle®  0000° TEGEeS ott 
btze® 2¢t0® g96S°te stedo® 0000° dnst*s eat 
6406° S.toe 626S°t® ateio® 0000° nestet eff 
009° otzo° OegS*te afece® nnoo® O29res ant 
999° ot20° tSeS*te eigdo® noo? 469t°s ef 
$9ne° eeto® Gtes*t= ef696° 0000° fo9tes aot 
ftce° ecso® nLeS°S® e#f696° 0000° Ogates wat 
@oze® 9900 SELS*te wfo960° 0000° L943°S egt 
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000S° s2to® Zean’te e2ga.° 9900° 462°S) 80h 
G2en® £920 {nen®*te whnsd® 2gto® g092°s ein 
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O0Sf® 620° 2isn°t= epgi9® sito® nog2°s sen 
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260058 @g00° SLvL°le wm202g° ectoe OSSE°S 249 
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Table B-44b 


MJGHER NIGH WATER ¢ HIGH WATER 8 HOURLY VALUGO L) LOW wavER 
) 8 8 

LuweR FREQ, CUM.® LOWER PREG, CUN,® Lower PREG. CuM,® LOwER PReo, 
LIAyT PREG,® LIMIT PREG. LHI? 6 

SSSSSeSSSSESSsSesess Soseecesasssesees Seseesovossegcess esscecsese 

124802 00003 000058 3.4802 00001 00001 4,4802 ©0000 00008 

104693 200010 20013 1,4608 20005 00007 34,4490 00008 00008 

129585 20010 00024 14,4836 20007 00043 14,4178 00002 00003 

1odu7? 00009 o00338 1 ,uu0y 00007 e001 14,3860 00003 20005 

104309 00012 000488 1 ,u27{ 00011 00032 43,3554 00005 00003 

12426) 00024 000058 14,4138 00009 e00ULS 4, 3ad2 00008 00010 

104152 00015 000808 14,4008 00013 000548 14,2930 00013 00009 

Le4o4du 00019 003008 34,3872 200019 000734 14,2018 00016 00016 

103936 0008) 001219 14,3739 e00al 00094 34,2306 00020 00023 

103828 =.0039 200159% 41,3606 00030 e03a3® 49,1994 0024 00025 

LoS719 60034 o019S@ e344 20030 00153% 441682 0033 00024 

1o3oi) 0005) eO2due 4,33u4 00038 001888 43,4370 00036 00033 

103503 20042 00260% 1,3208 00041 00229 34,1058 00046 00046 

103395 00087 eOsud 1 ,3075 00042 00271 41,0746 0008) 09043 

103286 00063 0040S 4,29uP 00048 00519 14,0434 00062 000u9 

1031378 0063 .0467® 4.2810 0051 o0370% 41,0122 90077 00043 

1o3070 00070 00537 14,8097 00004 004309 09810 00003 00080 

102962 00070 00007 j4,aS4a 00058 004889 00498 00100 00073 

108853 00085 00098 1,24)4 00075 005039 09186 00105 00074 

102745 00077 007606 14,2278 00096 000398 96874 00346 00084 

102037 00404 00871 1,atdb 00073 006918 05563 00126 00082 

1.8529 00071 009Ude 4,2013 90084 0775s 2825) 00128 00089 

feauel 00094 010368 4,4880 00041 008058 07939 00137 00069 

1o83i2 00085 of1199 454749 00088 009548 07027 00145 0008S 

1o2204 06076 o119D% Jojotu 00090 of04ue 07315 00149 00093 

1o2o% 00092 012878 14,3462 00094 011389 07003 00187 00095 

101988 00116 e1403e 4,4349 00098 of 236% 266% 00159 00108 

101879 00113 e13108 so421b 00123 01398¢ 06379 00162 00109 

101771 00u94 010108 14,4083 00102 01 400% 06067 00172 0013s 

1el60} 00109 017148 34,0950 10189 015909 48755 0014 o012e 

101555 o0316 o1833e 14,0818 00138 017s 09445 00107 00120 

elude eOLl2 019456 4,0085 00155 018639 09331 016d 00138 

1oisde 0012s 020708 1.0552 00157 0@04oe 04819 00174 0014) 

foi230 o033u o22048 4 ,0419 00144 o216ue o4S07 60178 00105 

fols22 00129 02353390 41,0286 00191 oad7aue 04495 00467 00109 

Yeloid 00137 o24708 4.0154 00106 025008 03083 00100 00173 

420905 00155 020299 14,0025 00189 027498 03573 00164 00199 

1,0797 00338 027659 09888 00196 0eg9use 23259 00159 00160 

100689 001608 o293ae 09755 00109 031348 02947 00194 00162 

100980 00186 oSi180 09022 00218 053529 02635 00154 00180 

1.0472 0064 oS28ie 09490 00104 035408 o2say 00147 00182 

1o03o4 00170 oS45h0 09357 00404 037404 oaoly 00147 00189 

100256 00208 030596 09224 00175 039159 01099 00340 00172 

100146 00208 038680 09094 00198 o41s4ae 01387 00340 00195 

1.0039 00202 06958 00179 o4a9ee 01076 00437 0018) 

09931 00193 08826 «©6229 = HALF = 4g 0704 = OB 0019S 

0%a25 00808 08695 00102 047359 90452 00330 00170 

09715 00195 08S00 00105 048968 00140 00133 00189 

09606 8«=660186 = 465350 =, BURY =n 0197 «=o $093% B,0172 00135 00195 

09498 00179 oD0She 0829u 00193 05266% 09,0484 00135 oV1ed 

09390 0017} 092028 o816P 00193 054798 20,0796 00133 00175 

09282 00173 0539798 08029 00198 056778 0,1108 00194 00179 

09573 00168 055458 078% 00177 o585ue 01420 00341 001680 

0906S 00202 oS 7dae 7703 00168 00022 a,1732 o0lue 00170 

08957 00350 058908 07630 00170 061928 e,2044 00140 00158 

08809 00a02 060988 07498 20106 06368 00,2556 00146 00164 

08740 60155 oo253e 0736S 00175 06503 «,2666 0015) 00161 

o4o32 00132 063659 07232 200105 06727 «,2980 00150 00137 

08524 00152 265378 07099 00178 069U5® 20,3292 00351 00148 

08416 20168 207058 06966 00164 070098 23004 00353 9044 

e830T = 0156 aobose oob34 00105 7234 02,3916 00150 6401 el Viel 00190 

0A199 00150 0701 5e RA | 00149 073838 © ,4228 00154 070558 01,0277 00131 

2AO4t 00162 671708 20508 =o 0101 07543% 02,4540 00155 472108 ©f,0434 01357 

07983 =0128 =n 73048 06435 0154 07677% 01,4852 00153 47363% 01,0591 00931 

07875 oUlL47 074518 200302 00141 078199 ©,5164 00182 2100748 oO1St 

07766 0116 075679 06170 e01S0 079089 9,576 00354 21.0905 00129 

07658 00132 270998 00037 0147 08115 ©,5768 0015) 101062 00123 

07550 00152 078518 05904 00137 06232% «2,6100 0015) e1,3218 ole? 

7442 60150 = o BOOS ® 05771 00124 =o B3S57% wyhbl2 of447 ebe1375 = =vild 

00125 oFl2oe 05638 oOtlt 084688 e,67a3 00344 082649 of 1532 00156 

00844 ef2one 05506 «60157 28585 «,7035 00138 8402 01,1089 0134 

00126 4 ©=— BJ Vue 05373 =o 0108 «=—6o 80929 = w,7TE47? 00430 pBS32® Of 01846 014! 

00132 083279 05240 00004 087879 20,7059 o0l2e 086548 of,2003 00187 

00831 0Se5be 05107 00102 066489 0,7973 0012) 087759 ef ea1e0 00124 

00143 087710 04974 00098 069669 8263 oOlsea 088869 2316 00136 

oOlla 088628 04842 00009 09075% «8598 00108 o@d7y 00120 

00086 989698 44709 40090 09105 ©,8907 0098 02630 40102 

20106 .%907ue o48¥O 00068 092538 0,9219 10009 ,9182% o{,2767 0103 

o0ll2 091808 o4uuy 00088 093359 0,953) 00084 09260 of oa94u 00060 

00094 092609 04310 20070 09405 «,984) 00077 093438 of 53101 0007S 

00092 oF57G8 04176 00005 09407% 01,0155 00077 094208 of.3a57 00080 

2007) 094498 = 4048 = F000 =n PHAT® 01,0467? 00007 »9487% ef e34i4 40090 

00063 295068 03912 000600 095879 01,0779 00064 095518 od571 00068 

20075 295778 23779 00069 «=o 9OSO% 04,4094 00068 0961 21,3726 00034 

06058 290558 Sous 000S2 096699 04,1403 00087 096099 ©}, 3885 00055 

00039 4 %7Ke o3514 00052 «=o PTUO% 441715 00055 o972U% wf,4ouz 0007 

00054 097298 25381 00048 09782° oj ,2027 00048 097728 0404198 00003 

00025 497508 03248 §= 902% =o F809 04,2339 20040 ,9B11% ©f5,4355 0046 

00052 098028 03115 00034 098449 014,265) 00034 00050 

00040 o9Buge 02982 00027 09871% 04,2963 00029 00049 

000268 098718 22550 00028 098999 01,3275 00026 00045 

00033 099038 e271? 00025 099248 01,3987 00022 00040 

00019 = 992S8 22584 060017 099429 04,3899 00048 00043 

00024 099U68 02451 00016 099584 of ,u2t} 00044 099568 ©1,5896 00028 

0002) 099678 02314 00019 099959 of ,uS22 00014 099708 of -b453 00036 

©0010 0997Be 0218S 00006 099619 of 4bSa 00040 099808 01,5610 00030 

00012 099908 02053 00008 099848 01,5146 00008 099898 01.5707 00022 

20000} 199946 01920 00007 09990% 01,5458 20000 05924 00025 

200003 .999ue 01787 «60007 09997% 01,5770 00004  49998% 01,6081 20009 

00005 099978 21654 00008 099998 01,6062 ©0002 $,00008 01,6237 00008 

©0003 1,00008 01521 00001 $00000% 01,6394 00000 1500008 ©1,6394 00001 


age 


0878 Peal, 
t} 


0 
CUR,® LOWER 
PREG® LSM 


200018 o,4573 
000028 «, 4295 
000088 e,d4ai7 


063738 ©1,0400 
055938 01,0526 
057258 21,0650 
056618 of ,0772 
06045@ ©} ,0695 
202009 11017 
oO3U3® 01,4139 
oO491% P1,126) 
20032 ©), 1384 
06781% 71,1506 
21,1026 
©4.3750 
e1,1672 
©1,1995 
1 2817 
°1,2239 
21,236) 
=) ,2u83 
21,2006 
21,2720 
ob2348 04,2690 
083516 01,2972 
064750 23,5095 
o8b118 04,3217 
087308 04,3339 
08632e 04,3464 
069358 of, 3583 
090159 03,3706 
090908 04,3620 
091708 04,3950 
21,4072 
21,4494 
4317 


09BU18 wf SU17 
098708 of ,5539 
099068 vj, S604 
099308 01,5785 
699688 ©{,5905 


099998 of ,6272 
1000008 74,6594 


eooeesese 
2000) 
0.0000 
020000 
020000 
00008 
200004 
00003 
20009 
00007 
00006 
0002) 
00018 
000138 
00057 
00095 
00073 
00007 
00009 
00482 
00407 
0088 
00095 
00095 
00300 
00300 
00092 
0012) 
00353 
00416 
00425 
e022 
00337 
00327 
00350 
00335 
00140 
00558 
00439 
o0sod 
10320 
00370 
00843 
00545 
00845 
00310 
00453 
00115 
00140 
00152 
20450 
o0sde 
00157 
00337 
00455 
Oise 
00150 
20436 
0016) 
20370 
pop de 
00185 
00186 
00189 
0209 
20140 
00165 
00182 
20185 
00105 
00524 
00450 
00N45 
00433 
000% 
00819 
00548 
20104 
20097 
00080 
00088 
200089 
00508 
000% 
20076 
00080 
200009 
o0077 
00009 
000066 
26055 
00007 
100u9 
0006) 
00055 
00034 
20039 
10039 
00038 
00035 
20009 
2000) 


LOWER Low wargr 


; iW ae " vy i 1 t 


JANUARY 1973 


SITKA, ALASKA 


THCOTHOTHMAOAHHHRHCHOD 
XKKXRKMKKRKK MK KX KKK XK 


Wee Cee 7a) Ele) cle 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER 0 « waxinun @ = NEAN HIGHER X = MEAN 


Ono OTFM7HOA AA OmaoOoOD 


CHOHAHAHHHOZDGOOODOBD AOD 


x Xx 
123WU5678910 12 6Y 69 Tu 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER © = MEAN © = MEAN LONER <= MINIMUM — 


1.39922 022FBL0e FCopoagggoeo2OOFOGDH 


123U5678910 12 6Y 69 74M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE ©® -]} ownrnac tive ® = NEAN TIOE Xe STO CEVIATION 
OSS 


0.0 
XXX KK KKM HEX KK MK KK KK KX 


59 


12345676910 12 6H 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEANT SEARVEEVEt 


Figure B-45c 


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295 


Table B-45b 


LORGR LIMIT OF CLABS INTERVAL SHOWN, ALL HEIGHTS ARE NORMALJZ0O BY HALP THE DIURNAL RANGE 
ry 


5.000 PEGT, 


@ HIGHER HIGH WATER * MIGH WATER HOURLY VALUES 8 LOW WATER t] LOWER LOw water 
8 8 e 6 6 ' 

CLagse LOneR PREG, CUM,® LOWER PREQ, CUM,® Lower PRE, CuM,e LOWER PREG, CUM,® LOWER PREG, CUM, 
NO, @ LIMIT PREG, LIMIT PREG,® LgMry PREG,® LIMIT PREG .® LIMIT PREG, 
SCSSSESHSFHSHSSSH SOSH SSOSSTSSSSSHS SSO SSO HSELHSEHSHSSSOS SOOO SSH SHSHOSSSHHSSSSSSSHSHOSOSSS SOHO HSS HS HOHSHSSH ESSE SSESESHROESSSSEHSEOSD 
1o1e 108338 00004 000038 43,5336 00008 00001 14,5338 00000 200008 00095 00003 00008 000045 
1008 {eS222 00004 000008 14,5106 20003 000048 34,9009 00000 000008 00008 00004 00006 
99e 10F107 20004 200108 425038 20005 00009 4,408) 00002 .0002% 10625 0004 20000 90000 
986 10499) 20Clo 00081 44,4880 00006 00035 34,4352 00002 000048 00439 00008 20007 00035 
978 104870 60009 200308 41,4739 20010 c0025% 4,402) 60003 00088  ,0254 0040 00007 0024 
9Oe 104760 00019 00498 464599 000%  o0032% 453695 00008 00128 10009 40017 200003 ,0020 
Q5e 104645 00012 000618 43,4840 00016 00049 43,3360 00006 000188 a,0116 00022 00009 00033 
Ge 104530 600}6 c007K8 4.4299 o00$1 00000% 14,3038 10009 00037 00007 0040 
ade ie4uis 0023 0009B® Y,utdi .0019 200798 34,2709 00010 20027 00025 «= 9 0006 
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908 104908 00021 c0f6d8 4 ,3692 00085 oOLk9® 444723 00025 000998 o,f0u2 00049 20016 oONlT 
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BSe joSu9l 00037 00295 4,2940 00034 e0aous 4,008) 00064 o0$13 00048 o027e 
Bde 105375 00027 009228 14,2794 00030 004908 09782 0007) 00090 00046 00323 
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B2e 103140 60068 8604198 462499 o00S7 20402%. 49095 10098 00134 00060 40426 
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B08 102913 00055 008418 10219 00001 005258 8438 00118 00123 20076 90550 
798 108798 60009 605908 442046 900604 009899 8109 0128 00128 20070 0632 
70% i08o82 00072 00062 4,189 00070 000598 07784 001399 00127 20099 00734 
778 1028567 00085 oOTUSO 4,4 7aP 00082 oO7dse 07452 e0u9 00442 00403 00834 
7Oe 1o84S1 060085 008308 454597 00070 008319 47123 00154 e013 00102 90935 
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6% 1ol64S oOL1S 015438 41,0540 00133 of046%  ,uO23 00187 00154 oO118 = S017 
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o7e folui2 00140 016016 100250 00151 of e2be o4f0o 00185 00138 001Te 02129 
668 101297 001408 019486 43,0101 00147 e20759 03838 00174 00158 00397 o228o 
oSe 101382 00164 o2@10ee 09954 00179 o@25ue 03509 0018) 00154 00150 o@u2e2 
O4e 301066 00300 o@2698 ,9A02 00146 o2400% ,3184 00182 00143 00155 92576 
@3e 100951 00160 o24628e 49652 00190 08890 2652 0179 oo1ud 00104 8 8=6427h2 
o2@e 100835 e0lo2 o2d9ie 09502 00207 oa7or7e 2523 0177 oO8S8 00172 02914 
oie 100720 00349 027409 09353 00186 0a0G3s o219S 00170 00137 00176 03090 
608 100604 0037) e291 1e 09203 00209 oS1988 01866 o0177 00120 00200 03290 
$98 1.0489 00151 oS00ce 09053 00210 034088 01536 00173 o01od 00176 od47G 
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S¥e 100258 00194 o3418@ 8794 0223 o3852% 40881 00168 00155 0018) o S837 
Soe 100142 oO1Ta oSS9S0 08005 002aad 04006e 00552 001470 00100 200200 04045 
538 100027 00188 oS7TBhe 08455 00208 o4a7i1e 00223 00372 00157 00205 04250 
Sus 09912 00179 039598 28309 00204 04475% ©0405 00178 00153 o0ira e4b22 
S39 6979 =o 0154 =o HU10 = B15 =o ZO =«_ wp’ WW4® = QUSU =o 070 o01ol 00390 =n hols 
S20 09681 10225 043358 8006 50209 o4893% o,0762 00175 00153 00300 4777 
Sis 069565 60228 48036 47856 00216 051108 1091 =o 0175 00152 o0S7@ ,49Su 
508 09450 o0ad2 048058 e770? 00223 053325 0,149 0172 00182 00399 05152 
G9e =o ®334 =o 000 © op SUDUS = g 7557 = g O2NY =o SSHO% 4748 =o 01 BE 00149 00170 «= 5523 
abe 09219 =o 0196 =o SAONS =. 7H08 =n 0184 = 573.0% @,2077 00171 00158 00370 = 49S 
ave 09103 e0asu 054370 07258 00205 039359 ©,2U08 00373 00157 o02i7 05710 
aoe 08988 =660224 =o 50608 =. 7108 =o O2I1B =—«_ oo 81 49% =, 2734 =o 0 67 00449 o02i2 45922 
aSe 6887S 60219 658808 ,6959 0374 06323 «,3002 00106 20104 00100 «0082 
G4s 68757 60194 00730 46809 00109  c0492% o,339{ c0S61 00164 0019) =p OATS 
oye oAgue 00@0? oo28je 00689 0019) 000839 o,3719 00165 00152 00200 oOuTy 
uae oAS20 00195 004706 00510 00179 068018 «4048 00152 00170 00184 06054 
aie Bull 00206 «= b68ee 06360 00170 «=o F0S8% = ,4377 =o 0148 =«  FUDUF OF e011H oOtUI 0017O «= OUS4 
GOS 68295 =o 0186 = BHF = H240 =n 10S =o F2LO# «4705 «=o 0145 = gp FHU9® 01,0299 40138 21.2083 0185 7016 
398 04180 00157 070209 06001 00156 07372% 0/5034 00340 07088" ©f 0484 o0se3 ©1,2225 00166 07182 
388 = =ofo64 =o 0182 =o F208 = 5911 e012 0 75 3ue 00136 00152 975008 ef,2502 .0400 oF3ua 
376 86067949 = =60162 «=o P3708 «= g S702 = ws GLH «=o VP09F 0040) 00129 »7635% 01,250) ,0437 47479 
Sos 07833 00170 075408 05612 o0ida o7G44e 00333 00140 o777S% ef 2044 00357 o3ol7 
356 07718 00362 077038 05462 0014) 079829 « 001429 004ue 07925 04,2780 00170 07787 
3us 07003 00149 0785¢e 05313 001da 081349 9,6677 o0h2e3 00126 080509 ©1,2920 00139 07920 
S32 67487 = g OL SH =o F9BOH = g S1OF = od HLM «=o BAFZ* =e 7005 = OF BF «=p BUTZE 0401595 FOLFU 281848 04,3059 20143 48009 
Jas 07372 00125 obliie 05013 00152 083848 0, 7334 00120 085928 of 1780 00131 083158 03,3198 00148 06217 
jie e7250 = 0142 =o 82538 = BOK «=o 12H =«_ og BSL 2% wy THOR «=«_ WAH «=«_ BVO 0451965 e012 .64408 01,3336 0317 8530 
30° =o T14i =o OLB =o B3BHG = U7ZGH «=p OLE «=—« o BAU «0,799 = O12 00118 985568 ef, 3477 0129 ,BuO2 
2% 0702S 00348 o8S3o06 04565 004d! 06735 0,8319 00102 00104 066028 of ,3o0j37 004d 08604 
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279 §=—60794 =o O15 =p BY 7HG = g W2OH =o O11 «=o BUF =, 8977 00096 00105 8863 o1,3895 0517 8824 
208 066079 00094 20 8bo90 e4ile 00073 09022 02,9305 00092 20090 089008 0f,4035 200087 08914 
258 06564 160100 289648 8 43966 = UNF =o FPL109S @,9034 00062 0009 99050 ef,417H ~0302 o9012 
24s 00448 00104 090758 03816 00005 091948 0,9902 00078 095098 af. 5Po} 00088 098448 of, 4513 00004 090% 
23s 063383 o01t2 91 ASo 03067 00082 09a76® of 0291 00074 09458 of Sado 00081 092206 of ,4U53 0007S = 9469 
226 06217 00301 09g8oo 03517 00066 09342% 04,0019 00068 03631 00092 093168 04,4598 00008 09257 
aie 06402 00098 093840 03308 0008) 094238 04,0948 00064 ©4.3617 00078 093908 of 4732 00075 09332 
200 63980 00075 594596 43218 00008 094938 01,1277 00000 404002 90003 94559 0f,4873 40078 9410 
19¢ 65871 00075 095338 43008 00079  09505% 0f,1605 0003) e417 §=90001 099108 01,5010 00030 p944e 
188 05755 00067 090008 02910 00055 090a1% of, 1934 00048 04372 00052 095068 04,5150 00098 09504 
17@ = 05640 =o 0055 =o 905H8 = 2769 = 0:04 =o FHHS% @4,2202 004) #104557 00052 496208 01,5289 .0076 49580 
169 05525 00046 970e8 02019 00049 097129 ef ,259 00030 o1,4%ua 00055 090740 04,5429 200058 09038 
136 05409 00039 e97u1e 02470 00046 697588 01,2919 00034 24927 00040 097140 01,5508 0005) 09089 
146 05294 00035 0971738 02320 00042 098008 04,3248 00032 098798 of .5113 00037 097518 04,5707 00043 09733 
139 65178 =o 0030 «=o PHOS = 2IF1 «=» 0040 «=o FBUOF 443577 00024 499038 0145298 20047 497989 01,5847 40045 o97T7 
12 065003 60040 59649 4202) 60030 09870% 01,3905 00039 99229 o3,5483 cOOS7 196558 0003S 69810 
116 04907 00039 096886 01874 20049 098999 of ,u2su 00018 099408 01,5608 00028 098038 00027 09637 
108 =o @AS2 = FUSS =o PHAL® = 1722_~— 0081 §=—«_ Wn FRZOF 04,4562 60016 69956% 0165853 60031 »989u8 00030 8 8©=—, 9867 
9e 04716 00019 099408 01572 00019 099398 01 ,uB9 00013 00024 099169 00033 098968 
Be 64001 60022 699630 44422 00016 09956" 01,5219 0010 00036 8999348 0001S =n 992 
Ye o4485 60015 099788 41273 00014 099709 81,5548 00007 00019 =o 99548 0002) 99933 
os 04370 60009 499876 41183 00013 099634 0{,5877 00006 00010 099039 200013 =n P9UO 
So 04255 00004 299910 0097G 00009 099684 04,6205 00008 00081 099758 04,0902 00018 09904 
uo OL 00000 099956 00524 00003 099919 of 0530 00003 099978 0} 90904 00018 099000 01,7103 00018 09962 
ie 4024 00003 0999u6 00674 00006 099976 01 56068 00002 099999 of o71u% 00007 099930 of, 7244 00009 09994 
2s 03906 00093 099978 205295 00001 099998 01,7191 00003 $,0000% e1,7334 00004 099960 01,758 00000 09997 
19 063793 5000S 1600008 0375 00001 $00000% 0447519 00000 1500008 0147519 0002 4000009 #1,751 200003 490000 


296 


“lie ALANNAN AAA ad af i IL. 
i A i 
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a ies al 


CORDOVA. ALASKA = j= JANUARY 1973 


: CORDOVA, ALASKA 


COT9HRMBPADHOOOAMAOVGHOODADHO 
XKXXKXKKKKXKXKKXKKKKXXX 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER o @ waximun @ = NEAN HIGHER X = MEAN 


12345678910 12 61 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER © = MEAN = MEAN LOKEA X= MINIMUM 
2.2 


Om oF "89, W 99 UR RUC UU oOo) 


O88 mG OP OK00 BHO GH HTH00829099F980 


12345676910 i2 64 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE ©® -|} owrnat tio © = MEAN TIDE X= STD DEVIATION 
0. 
OF 


XX xxx xxXxxXxxxX KKK KK KKKKKKKKKKKKR 


12345676910 12 6H 69 7M 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-46c 


298 


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299 


Table B-46b 


LORER LIMIT OF CLASS INTERVAL OHOWN, ALL MESGHT® ARG NORMALJZED BY HALP THE OJURNAL RANGE 0197 FECT, 
6 


MIGHER HIGH WATER 8 HIGH WATER ® HOURLY VALUES e LOn WATER LOWER LOm maTeR 
° e Py e 
LOWER FREQ, CuUM,® LORER PREG, cum, Loner PREQo CuH,® LOWER FREQ, CuRe® LOnER breOe Cum, 
NO, @ LIMIT PREQ,® LIMIT PREG, Liniy PREG, LIMIT PREG,® LIMIT FREQ, 


SSO HSSSHSTHSSSTHHSSSHSSOSH SHES HEHE SSHSSHOOSOHSSSSSESAH SOO SECO TSSHHS OOH SOOSSCHSTOOHSTOSHSEH OSHS HH ECOH HEH OSE EHOEEEEEES HOODEO ESERE 

ore 1049S) 00004 0000) 1,409%4 o0COt e0001® 4,095) 00000 2000008 00083 00008 00001% o,4020 0000) 00003 
104839 0000 0007 14,4011 00005 = 0000% 4,0632 0000) 200018 250088 40003 00048 4150 40000 0003 
109728 o00la 000199 31,4070 00009 000358 {,adt2 00002 000039 00004 000098 «,4280 00003 00008 
LeGole c0013 20033 154530 20006 00021 43,3993 00003 00008 00009 400188 e,4409 000) 20006 
104504 20033 c00K0% 14,4380 00016 000378 43,3073 00008 00108 00009 ,0027# o,4539 0007 0013 
1e8392 20025 «00728 14,4248 20012 0049 34,3354 00007 00178 20020 20047 @,4669 ,0003 0016 
104280 = 0018 = 00908 166108 20013 20002 14,3035 00013 00299 00020 «=90007% 02,4799 0013 0030 
94s 104569 200022 04188 153908 00013 00075 34,2715 0014 0042 20031 ,0098% ©,4928 0009 0039 
93s 1.040387 20016 eOf268 4,3A27 00019 00092 1,25% 00018 200608 00025 00125 ©,5058 20006 00045 
gas 103945 ove? 00159 14,3689 000a3 o0OLS5® 11,2076 00023 e0083e 20034 001588 0,568 0082 20057 
9ie {23835 00027 oOLGae 4.3548 00086 oOLMiF y,iP57 00026 001098 000UG 20202% e,5317 2002) 00078 
908 103721 20039 eOR21% 3.39408 00032 oO17S® 41,1437 00033 001438 00039 024) o,54u7 2002S 00405 
698 te3o10 00040 e0RO1 14,3205 200035 00209 4,11318 00042 20,ese 20052 202939 ©,5577 20022 00125 
68s 1.3096 00039 003008 1.3125 00038 00247 1,0799 00045 202298 00053 203408 «5707 20057 o0lee 
878 e338 20058 003588 34,2984 00044 00291% 11,0479 00055 o02Bue 00066 e0412® 2.5850 200353 00395 
Boe 169274 20055 04138 14,2844 00040 o0331% 159160 00066 ,03508 00072 «9 0464% @,5966 60049 0euu 
OSs 123,02 00087 004708 14,2700 00003 o0sgue 209840 00077 204288 00078 005028 02,6096 20058 00303 
649 1063081 200069 00939 1.2503 00093 oouu7e 09521 00087 005148 00078 00640% «6225 0000) 00364 
aye 108939 00064 0000 1.2423 0006) 00808¢ 09203 00097 006119 00077 oO717% = 2,6555 2007S oOUST7 
626 102627 00072 00078 34,2282 0006) 005098 98862 00308 eO7158 00091 008098 @,6485 20090 00534 
Bie LokF1S 00307 cO7TBB® 442142 10008 00637 ,8563 00115 408309 20089 408978 @,6615 ,0085 0016 
808 {8603 00078 00860 34,2001 00003 007008 06243 0122 009538 20090 00967 e,674u 20098 00710 
798 fe@u@2 20088 ,094BS 14,4861 00066 «90766 47924 00128 410808 00120 e1107% o,6874 4010) 20814 
78% 108380 60093 10408 4561720 100%  .0802% 07004 o0S34 g12158 00110 o1217% o,7004 0307 0918 
7?e 102208 200% oll3doe 14,4580 20083 009458 07295 00148 o13o5e 00105 01323" 02,7333 200409 01027 
709 1028156 00095 ela29e 14,1439 00092 010579 06965 0035) ol S138 oth! o1453% 0,7263 00319 o114o 
758 102044 00107 oi3S0% 151299 0107 01544 466046 00159 o1o728 00110 ef543% o,7593 0106 ofed2 
74e $o1933 60075 olSd1% FottSB 00104 of848% 6327 00163 918358 00150 91693% o,7523 0112 g130u 
730 LolA@) 00827 01938 451018 00180 of3084 46007 00165 20008 o015S2 916258 0,7652 0122 41486 
72e 101709 00125 eloode 43,0879 001i? ol4eue 05088 00170 o2171% e,4A69 00123. 919478 0,7782 20142 olo2e 
71S $0597 oOh12 ol77S® Lo07EY cOLS4 o1618% 453508 00172 923438 ©,5039 0147 420958 00137 §=9 1 765 
70@ 108485 60107 018828 420598 o0117 o1736% 49049 00175 o2518% ©,5210 60140 y2esus 00115 41880 
099 101374 20436 o801F8 14,0456 o0136 01672 ,u729 c0177 26948 o©,5381 00152 923668 0,817) 00197 92030 
O85 tolze2 c0h24 c214a® 450315 00149 c2020% ,4H1y 00174 2868 045552 50145 o2531% 0,850) 00159 92475 
O79 $0150 00149 o2291% 14,0178 10148 caioo 440%) 00180 43049 5722 40155 »2686% ©,843} 00152 92327 
668 101038 00149 ok441% 41,0034 00159 o2325% S77) 00174 «432228 055893 00139 92825 ©,8560 ,0)02 42490 
eoSs 1.00926 0067 020088 09894 0177 o250ae 3452 00178 034008 ©6004 00163 029888 2,8690 200155 02645 
o4e 100615 0164 027090 =, 9753 =o 0194 = 2OVOF = BUSA] 0s N73 = SSVS% ©6235 = 0105 =o 31538 ©,8620 0170 262) 
o3e8 100703 00170 029390 29613 00181 o@8779 02813 00174 o3748e 0405 00173 5320 0,8909 20336 02956 
o2e 100591 00104 =o 31038 =, 9472 =o 0100 =o 058% = g 2493 = 0 0170 = SFLB® 006576 = 0179 = 35058 ©,9079 40357 43093 
O18 100479 20470 o3274e 49382 00402 03250 42174 00163 940808 2.6747 40194 o3700% 02,9209 40166 3262 
60 100367 10109 o34uee 49194 00178 =o 34288 = 1855 =o OOS o4241% ©,0918 ,01465 ,3aBue 00185 3447 
59e@ 100256 00107 030098 09051 00104 oboe2e? 01535 00366 044078 ©,7088 00158 o40us8 00385 e303) 
G65 100146 00387 o37900 48944 00179 63802 ,iaie6 wld 8445708 00190 42379 20189 =, 3621 
57s 150032 40187 39838 48770 00108 03990 ,0696 00159 ,u72K° 00107 ,auous 00170 = SPM 
Soe 69920 860200 8=—6o 4189S = BOSH =n O1HA = os WEVA2® = g OSTP =o 0155 = WBBS%® =o 7601 00164 e4S507® ©,9857 ,0156 e4)20 
550 09808 20a3o e4uiue 08489 00170 o4dues 00257 00149 o00328 o,7771 00191 047588 0©,9987 00149 04275 
54e 69697 =o 0815 =p HOS4H@ = g BFHM =o K1OS =«_ oo WBF = o,0062 «00145 §=« og SI 7O® @o7AU2 00170 94933% ©1,0117 20170 yddus 
S3e 09585 00210 8«—o4844e = 6208 §=—o 0190 ©=—s 0 HO9BF =o 0384 00307 95323% 2686113 001600 o5095* {,02u7 .0124 4569 
525 0947S) «=o 07H =o S020 = B0HB =n KROGH =o HUF =, 0705 00354 954778 2.86284 60173 o5206% ©1,0876 40183 44753 
Sis oS) 00205 052259 07927 00179 050824 01020 00156 05635% 00175 oD4419 01,0506 00170 04922 


Soe 00162 o9407@ 47787 0184 o5266% o,1340 00162 57978 00108 o5609% e{,0036 0174 45097 
ude 00199 =o F005 = 04H =o 17H =o SUWOF 01659 = 0 0450 =. 59538 00187 o5790% ©1,0765 0100 S256 
abe 00170 «=o S775® = 7506 «=o © HBS =o SOA?SF @,1979 00157 461108 20153 95949% 01,0895 10149 5405 
afte 00173 059496 47369 00200 05625% 0,2298 00157 62679 00153 961028 01,1025 ,0170 45575 
aoe o017S «561220 847225 «=o 019H =« 0 021% =y2617 00157 oueus 00169 e6271% Of,1155 .0367 45742 
u$e 00179 003018 47084 00178 06199% o,2937 00159 65839 00185 ,6456% ef i2b4 40195 »5958 
ude 00146 =o 04478 =, 94K =o 0104 «=o ©3O3% 0,325 00558 po7uie 00178 966348 ey ,14i4 40188 y»oh26 
u3e 00163 06010 46803 00168  06430% o,3576 00150 66978 001U4 26778% ef,1544 40189 46515 
uae 00148 =o OTSB8 = 5 HOEY =—§_ od HOF =«_ oo HOFEF @,389S 00159 p7056% 259991 0136 06914% ©1,1074 ,0174 6489 
ais 00172 009298 065228 0187 008508 o,4215 00154 e72108 ef ie2 001248 070428 ©f,1603 00189 06079 
4oe 00167 670978 46382 00145 069959 @,US34 00155 273659 Of,0333 0127 o7109% ©1,1933 .U179 6857 
390 00149 o724oe 0244 00174 071708 6,453 00149 075149 of,0503 20140 075S09* 01,2063 ° ,O171 07029 
yee 00142 o75868 40101 00158 oF327% 05573 00150 076659 100674 0128 o745S7* O1,2192 40173 y?e02 
378 00145 =o 75349 = 5900) oo D176 =o TS0S% 45492 0 0340 =o FH0S# 1.0845 oVIS1 67508% ©1,2322 40158 47500 
Jos 00128 =o %bo2% 45820 013% of640% «$812 00149 79548 00125 »97692% e1,2452 ,0142 67503 
338 00137 «678008 456079 60139 077759 a,6131 0145 80998 00126 1.2582 0116 976019 
sue 00430 079308 45539 0157 79119 @,6451 00139 .8236% ef o1357 90148 ei 2711 00182 97601 
338 00154 480048 45398 00147 80599 ©,6770 0013) 08370% ef,1528 0146 e1,2bu) 00359 = 7940 


1.2971 cO0l70 08310 
21,3100 0133 8242 
e1,3230 0137 98580 
1.5300 0139 8518 
21,3490 0088 8600 
e1e3049 0097 8703 
2155749 .0103 8606 
21,3879 ,0089 8695 
21.4006 ,0097 8992 
21,4138 ,0065 9077 
°1,4268 00301 09179 


Bae oe F237) =o O4S3S = B197% =. S2HHB- =o 0148 =o BI 77% 047090 00127 48496% 0141699 10130 
Sis 067125 =o 0161 083589 = 5118 =o 0125 «=o B302% 0, 7409 = 0124 = BHZ0® 0141869 40129 
308 oF013 «60102 «=o B4S9H =. 977 = 0133 =o BSS ©7728 00119 oB739% 21,2040 0117 
298 00902 00124 .8583% 44839 011% 065314 ©,8048 00110 8649 o1,2211 012d 
288 06790 00310 680948 44696 0104 6035% ©,8367 00105  .8954% of,2382 40102 
278 906078 100% 87898 44558 0133 08747% ©,8687 60102 49056" e1,2552 0081 
206 00560 00104 068940 04415 00093 068409 02,9006 00094 091508 ef o2725 00119 
258 06454 60118 490098 ,U27S 00101 089419 0,9326 00088 49238 of,2A94 40095 
249 6034S = 0104 = PULS® =» -g WASH =o 0073 =o FOU = 49645 = 0080 = g. PE1.8% 04450605 40099 
23s 6234 00094 092078 03996 20099 09129 09904 00070 093948 01,5235 00094 
228 60119 =o 008K §=— n FAAVG = -g FBS¥ =o 0082 =n GALGH 01,0284 060069 o9463% 143406 20081 
2is 00007 00093 093858 03713 00085 09279% 01,0603 00068 09531% 01,3577 000600 21,4398 2006) 09240 
208 05695 00084 094078 03578 00064 093049 0,092) 00060 095919 of 37UB 00064 e1,4527 00078 o9S17 
199 65784 60069 95308 ,343R 0000R o9432% 01,1242 00056 96479 0143918 0061 094708 21,4657 0081 09598 
18% 36072 00055 099938 43294 00056 09408% 0©f,1562 00055 o9701% 01,4089 40055 49525% 01,4767 0000 99457 
17e 063560 0042 o%e338 43151 00063 «0 O551% 01,1884 00008 = 750% 1.4260 60069 69594% 01,4910 .0066 9523 
166 65448 40051 090848 43010 00067  69618% e{,2200 0041 e979IF OL ,4U31 2004S 99637% ©1,5040 ,0V65 49586 
13% 65336 00043 697278 42870 00083 096719 ©{,2520 00036 .9827% ©1,4601 00050 99667% ©1,5175 0045 9630 
14% 65225 =o 004H =o PTIT¥® =. 27Z@ = 004H =o PTA T# 01,2839 00032 99AS9% Of ,U772 40043 097308 21,5506 ,0049 49679 
138 63413 = 0040 «=o FBI ® = =« g 2589 = 0.055 =o 97.73% 01,3159 00030 1.4943 .0045 _977S% 145455 40057 9750 
12 =o $001 00042 698655 .24UA 60041 098148 01,3478 20023 499128 mho5114 0037 o9H12% 01,5565 004 o97AE 
iis 04889 20034 090679 02308 00037 098509 01,3798 00020 09932% of d264 00027 098399 01,5095 00037 09620 
10° 66777 40028 «069915 42107 60031 098819 w{,4117 00017 o9948% ef obU55 40040 49860% e1,5424 0050 »9b5S 
oo 04666 00025 099408 o20a7 00029 099109 of 4436 00053 09961% el ,Sb620 00025 09905% 71,5954 200353 09688 

Be 64554 = 0018 =o FHSS = -g 1 BBG «= 0025S «=n PFFH® 01,4756 00010 p9971% 165797 40026 09931% o1,0084 40050 49918 

70 o4uu2 20012 099078 01746 20020 00010 099819 01,5967 00021 09952% e121 00015 09935 
os 04330 20009 099708 01606 00038 20008 09969% 01,0138 00015 09907% ef ,6343 9002) 09954 

$s 064218 60007 499848 14639 0010 00005 .9994% 01,6309 0010 21,0473 ,0013 49967 

ae 04407 00001 099850 oi3as 00009 00003 099978 21.0480 00009 ©1,0003 20036 09964 

Jo =o }995) 0000 §8=— on. FFES =« g J 1B = 00077 20002 699999 4.6650 0007 1.0732 0007 49994 

20 03643 = =60003 8499948 01044 9004 00003 1,0000% ©1,6821 20006 @1,6862 40007 469999 

19 63774 =o 0006 $0000U% 40903 00002 $00000% 04,6992 00000 4900009 190992 00001 4$00000% e1,69%2 ,0001 150000 


LALLA ha Laff 


UN eens my 


ll mm Halt af fof nL 
| Ber ee 


JANUARY 1973 


SELDOVIA, ALASKA 


12345678910 1e 64 79 


69 74 
MONTH OF THE YEAR YEAR (1969-1981) 
HIGH WATER 0 @ waxisun @ « MEAN HIGHER X = MEAN 


HOOO907FO0FM Ama mano 
SCOT9ODADOAOMAHOOAOODADA.SA 


123456768910 12 6 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER) owenean © = MEAN Lowen X= MENIMUN 
de Al 
Moo F®Gq_gm0” DDAOFRwA OHDOT 0OMFOFA080 
FFB HQ O9AF90 COMHAHHHHO8999°9900 
t 223 
O25 
12345676910 1i2 6y 69 74 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE «@ -} owrnat te © = MEAN TIDE X= STD DEVIATION 
0.5 
0. XX KKK KNX KKK FEK KK MWK KK KKK KKK KKH 
; 123%567686910 i2 6H 69 7N 719 


HONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-47c 


302 


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ateed® nvoo? 9t4n°seo 29609° @croe 9niges eS 
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eScst? noo? @tnn°te ege0g? 40¢0° 66oSE°t 209 
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anatt? 0000° €S2n°te awgan® s4toe e946°s 29 
angtte node 402n°t@ ea0n® 2gtoe Oseges 2g9 
e0ntt? ecto? Toin°te etnoc® 2ctoe egec*s 299 
ao00T? nnoo® Glin°te sgta¢g? g920° Moeges e249 
#5960° SLtoe 990n°T® eGsce? S4toe 9fOE°b 299 
26940° SLto° @20n°te wL.ec® egtoe O46£°S 269 
ant9oe 0000° Vhok° te wonac® £920° S20net 20d 
ant90e nnooe Ofof te w2ge2° satoe €90p9s ete 
a0450° 0000° feer°te w40g2? 6320° sotpes mee 
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292608 0000° Veak°to eogve? 620° Ootnst and 
292509 0000° Gatto alg22° eg00° 2genes agd 
992508 @@00° @O9C°Se wante® S4toe neenes 94 
26070? 9900° @s9f°te andes? Sato® 9tines eae 
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etsio® nnoo® ftsicte ascst? e900? {nnnes 209 
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eL0f0° nA00® Tén€*teo egeare 2ctoe 42@Sn°t 22a 
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asdto® nnoo® @2EC°So aB00s? 0000° 209n*t ane 
e2etoe 0000° gaci°te wh00t? 7n00° g9n?s 268 
e2etoe 0000° 9f20°to 96900° noo? 969n*l 298 
e2eto° 0000° oatiele eh260° t920° efdne?t 24e 
eefto® 0000° {vt<°le wgge0* mn00® Ogdv°s eee 
e2Et0° 0000° 460° wptg0® 9900° f2en°s woe 
e2¢t0° 0000° bSOE° Se 292560° 2gto° S98n°s 206 
a2Ctoe 0000° n00g°te ages? 0000° L06H*t ato 
e2rto® 9a00° @S562°te esoco® 700° 6none?t 226 
ann0oe 00009 2to2°te atsfo® 00008 Teop?t 26 
onn00e 0000° 99g2°lo also? nn00® C£Oges ano 
enn00® 0000° ete2°t= a40£0° ectoe 94°9S°t G6 
ono? 0000° C442°ko wgsto® 00008 atts*t 296 
ann0oe 0000° L2ce°teo wgzto® 0on0® Ootses 246 
ann00® 0000° beg2°to egito® ectoe 202s *t 296 
«7008 0000° ngg2°te anno? 00008 nneg?s 206 
£942° et20° Toen*t=® aht69° 400° d4etses 805 27700? 0000°¢ 9ec2°le sHn00? 0000° 4eeget 200t 
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SSS seeesreeeK ease ese eH gece eres ages etatesensatoeeeeseasseShaagaeetaseesaahagseetateessonsensgeacoeusasegeaateeesasarane 


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e °Wn3 °oddd waIMOT 2 “Wd *odu4 Y3N07 eSSV198 e °HNd "038d wamOd @ °Wnd °O3ud Y3M0q 
8 2 % s 8 
@ WILVM MOD 9OW 3W9YLXD @ HILVM HOTH “OW BW9HLX9 & « @ Y39LVM MOT °OW FW9YLND @ YILVM HOTH °OW JwaHiKa © 
°133a @40% JONVY TWNUNTO JHL 41VH AG O9ZTTVWHON Juv SLHOTIH TIV ONMOHg TWAMZLNI SEV1I 40 AIWI7 wdm0r 
Teek9os Vueviv “vIA0G1398 NOTLINAG NOLLNGTeLsta 


B/y-d@ STIL 


303 


& HJGHER HIGH HATER 9 HIGH HATER 8 HOURLY VALUES C) LOW WaTER LOWER Low WATER 
8 8 9 ® 8 

CLas@e LOmeR PREG, CUN,® LOnER FREQ, Cum.® LOWER FREQ, CuM,® LOWER PREO, CUM,® LOWER PREG, Cun, 
NO, @ LIMIT FREQ,® LIMIT p LIMIT PREG,© LIMIT PREQ.® LIMIT PREO, 
GHSHSSHSSHSESSHOSH SHH HSS HSSSSO SESH SSOTSSSOSSSSOSHHSHSSHO SHES STOSHHHSHSHSHHTO TSO SHH HOSS HC HCOSHS SH HE HSSH SSH SOSH SOK OSSegeseOTEREsseeg 
foie 1.5329 20004 000038 34,5320 20001 00001% 14,9329 00000 00090 00001 000018 2000) 00005 
tooe 20008 00008 4,519 00008 «00003 14,9006 0001 2.0003 0006 00078 200006 =, 0007 
990 00000 «600018 465053 20009 00008 14,4079 00003 200855 0004 00538 00008 0080 
980 00007 000198 43,4916 20003 e0011S 44,4354 00002 20,0428 00001 0003R8 00013 00030 
ove 00009 900288 14,4778 10008  00019% 14,4029 0005 2.00000 00005 00478 20028 40094 
960 0002) e00498 34,4649 60009 00088 14,3704 10008 2.0773 20030 .00a7s 20040 =, 0094 
9Se 00009 200588 4,450P 00034 o09043% 43,3379 00013 2.0046 «=90014 e00418 0004@ 60340 
Ge 10648) 60030 2600888 4.4305 200159 o0001% 14,3054 e010 eol118 60015 200508 20040 «=n 0160 
93e 124500 00033 00120% 1.4227 0002a2 00083 43,2729 00a) e,ia% 00016 000728 0005) 00237 
@2e 124239 06037 e0LSTS 3,0009 0008? eo1k2® 54,2400 00027 1403 00038 000908 00063 00300 
G1e@ 104118 20042 20499 4.3951 00088 =6o0i40® 34,2079 0031 01636 0028 01198 00049 0349 
908 103997 2004s eO242@ 31,3833 20041 o0181% 43,1754 00037 201808 00a 014358 0008 = , 0438 
B98 103876 20088 003008 1.3676 00037 00B18*% 14,4429 00048 05198) 00037 001828 20070 00514 
BOs 103755 60059 o095¥e 463538 00053 c0272% 4,4104 00094 eot154 0034 0a19e 20083 =, 0595 
87e jtodosu 00000 0042)e 43,3400 00058 oOS31% 14,0779 00060 eo2326 00002 o0as7e 20082 00077 
Boe 163513 20U6S 048K j{,3262 00058 o003869% 34,0484 0078 202499 0044 ,0S01e 00004 8 §«,07Uy 
B5e 10339) eourd 00505 105129 00004 00450% 14,0129 00082 20867! 00046 005478 00094 0003) 
B4e 103270 20076 00348 4.2987 10004 o0514® 9804 0094 @o2844 0054 00058 90890 
B3e 103149 00094 e0TaVe §452849 0007s e0S878® 89479 00107 23017 00052 20088 00977 
Bae 13028 00074 0080F 8 foe7ht 20007 000548 09554 00300 007928 02,3189 00062 00089 01007 
Bie 102907 00098 009018 io2SVu 00070 oorgue 208630 oOsi! 009038 e,3302 00004 00097 ollog 
60% 102786 20082 0983 4,243 200HS 00809 48505 c0127 91030% oo3954 0072 00100 8 oleeu 
798 102665 00080 ol0oSe 34,2298 00085 098958 06180 00129 3707 00075 00092 ot S36 
70% 102544 00089 off528 o2100 100%! 009BS% =, 7055 =o 0133 03879 = 0072 c0433 «9h 409 
77@ YoRu23 00104 of250 fo20a3 000%! 01070% 7830 0145 24052 0079 0015) 01000 
768 108302 06109 of361 161865 00092 0116089 7205 c0144 915808 e,4225 0084 oO't2 ollie 
758 102181 60099 oi4o1e 461747 cOlal 03a89% 46880 060548 617288 2.4397 40087 20094 = 1 B08 
748 102059 00128 o1568% 14,4609 060130 of419® 46555 00181 018798 ©4870 0114 0119 = 1925 
738 1ol93H 060083 olO71% 4o1472 00108  of527% 6230 0461 e2040@ e,4%u2 40095 00412 = 2057 
78s 101817 00135 e18008 poidhd 00186 ofos2e 05905 00165 02205% 294915 00120 00145 02160 
71e 010% 00147 01953 101196 00148 018018 05580 00169 05087 00129 0012) 02505 
708 151575 20136 e20918 11,1058 0010S 01905% 05255 00170 205260 00140 00540 o24a7 
o@s 101454 00125 022198 1,092) 00150 021158 24930 00168 e27118 e,5435 00158 00343 02590 
o8s 101335 00132 e2@5478 41,0783 O17? oa291e 04005 00177 028888 2,4605 0134 00155 o2743 
ove tel2i2 00163 025108 1.06495 00150 gure 04280 00170 03064 @,5778 00197 00158 02903 
eee 101091 00197 e@707@ 4.0507 00182 026299 2399S 00178 e017? 00328 03029 
oSe 100970 00140 e2BU7e 340309 00160 026168 23030 00164 00158 00155 03184 
Ode 100849 60178 S025 160252 o0173 o89¥1% 43305 00108 00293 = 9 0409 20330 43520 
o3e® 100728 00354 o3179@ 43,0094 c0179 o3170% 42980 0173 ©,6408 0175 00142 = SHO} 
8% 100606 00194 o3371@ «49956 c017% o3347% 42655 00160 e,6bu1 00170 00450 »Soia 
ole 100u8s 00194 oS5egs 09818 00159 055058 02330 00358 ©,06013 00184 0010 03720 
00% 100364 00168 oST3u8 09684 001%2 030988 02005 00332 @ 90986 00187 00355 03685 
S9e 200243 00109 o3899H 49543 10192 oF8¥9% 41680 0147 2.7158 0102 00334 4017 
GOs 10012e 00189 o4yAbe 09405 00104 o4O73e 01595 00140 oo 7331 00214 30325 o4s4a 
57s 00174 o42oee 09207 00192 042258 01030 e0l42a ©,7504 00186 00853 4275 
Soe 00162 «=oh425® 849130 ©=0o 0109 =o HVOF = 0708 =o 40 2.7676 0160 00134 =, 4409 
550 00154 =o US7H6@ =, B99P =—« ng. O1HS =p WSV3® =. 0380 =o 04S eo7849 ,0as3 00125 = W534 
gas 00186 047639 068354 00179 047508 00055 00340 2.8021 00183 00130 0409) 
Sie 00877 o494uge 08716 017d 040228 0,0270 e01a4 ©8194 00188 20107 04828 
Sae 00157 950978 48579 10186 o9108% 02,0595 0146 ©8306 0215 00355 = g WBS 
Sis 00150 052536 o84u4y 00172 09280% ©,0920 e0lue 2/8559 00180 Ole 05105 
Soe 00305 «=o S58186 =, 8803 ©=— oo 10S =o SUNS w,1244 =o 014 e,8712 019! 252808 01,0872 0152 d257 
a%e 00159 955776 48105 00192 05637% 02,1509 00149 ©,8884 0186 5466% 01,1003 200128 «= 5585 
ube 00148 057258 080488 00182 097688 o,4 094 00192 ©,9057 00173 060399 Of,11329 00348 055353 
ute 20169 958949 47899 0103 05952% o,2219 00151 2.9229 ,0193 58328 e1,1257 ,0159 »5e92 
wos 0035] 060408 07752 00193 001048 o,2a84u 00149 @,9402 00105 059979 ef, 1380 00345 05837 
ae 00345 004918 47614 00150 ocbasue 2009 00383 e,9574 Ole! 001588 00186 ,002y 
ade 00389 =o 3718 «= F477) =p ONYY «=o ©URAPF 0,319 = 0193 09747 50188 03469 ef,1043 40150 0179 
use 0051 00528e «47339 60180 065759 0,3519 00184 259920 0100 965060 1,177) 0150 .0530 
w2e =o 8485 = 0175 =p O9TE =, F2OL 00144 §=66718® ©3844 00197 .68708 01,0092 ,01u%  ,6653® 01,1900 ,0182 odiea 
Gis 08064 00147 ooB4us 07063 20155 008738 o,4169 00151 070219 01,0265 00151 068049 01,2028 00408 96080 
aos oTQ4uy 00147 009918 06945 00150 070a@3® a,uu%y 00160 071818 01,0037 00154 069589 ©3,2)57 00183 0666) 
399 =o 7824 00142 «671349 = g 78H = OLDS = =—«_ oo F1S9® ,4B19 0163 o7F4HS 150010 o0147? o7105% S1,2285 40459 o7023 
yas 07700 oO17t 073040 26650 001Sa o7S11% ©5444 00361 07505® of ,0762 00132 072379 ef ,2uiu 20352 o7h75 
378 =o 7579) OL22 =o TH20% =« g 1.8 = 01 FA =o TUNES = yS4O9 =o 0197 =p FOOAZ® O40055 20123 o7300% o$,a5U2 40380 o736} 
Jos 07458 00138 o7Soue 00374 00158 070018 0/9794 00155 00151 0030) 07522 
3Se 07337 014g 077088 o0a37? 00141 07742 2.6119 00150 00135 Olle oTosu 
jae o7210 00132 078400 26099 00135 07876% 2,644 00340 00148 21,2928 00S 5) 07705 
B30 «6067095 =o 180 §= on 79048 = SOF, 00155 00012% 2.0709 00145 o8258% 163048 0132 21,3050 032) 27686 
Sas 06974 00154 oFliae 05823 00138 081508 00,7094 00137 00132 04,3165 00100 07994 
sis 06853 00123 0883oe 05686 00187 002778 a, 7410 00134 001S28 03,3313 200404 0809 
3Oe c6732 00440 083758 55548 0122  08399% o,7744 0126 00132, e4,3442 ,O1IS 8210 
298 §=ob61) 0084S = =6852ue 848410 =o 0 08520% «,8069 00148 o01es ©4,5570 0100 8516 
288 06489 oONS1 060519 o527e 00183 08643 o, 8394 0011) 0013S 21,3099 00308 08424 
279 =o 0368 =o 0126 =n B77BG = g S135 = 10S =o WHO =0,8719 0107 00123 13627 oOVIS 0 BSSu 
268 06247 oOl1) 088908 2u9o7y 00099 08846 09044 00300 090908 01,2853 00086 01,3950 00097 9503) 
ase 06126 00104 oh9948 24859 00108 08953% 20,9369 00094 0918428 a1,5020 00104 0686938 01,4064 200080 08754 
24¢ 06005 60092 59980 ua 00100 09054 0,9694 00087 o9271% 165199 90086 289798 ef,4213 ,0092 ,6803 
ase 05884 00099 091859 9458u 000%! oF9144% 01,0019 00077 00080 090598 ey U sus 00070 26073 
228 «63763 §=60108 8692938 44446 «600K «=o PEALFO® 01,0344 0073 00069 991299 e1,4470 40080 8954 
2is eFo42 90073 o9Jo08 24308 00088 09312 01,0009 .00007 00084 92138 01,4598 20082 09030 
208 03521 2008s 194490 o41%0 00094 094039 01,0993 00065 095548 of, 5889 00075 092888 of ,W727 200094 09150 
199 25400 20080 095298 04033 00066 09469% of ,1318 00060 296013 ef oh0o1 0001 095488 01,4855 00080 09210 
188 «665279 =o 0073) = FHF = g FBVH_— so 065 =o PHBUF 4 y1O43 00056 99669% a1 ,4254 0001 094098 01,4984 0072 p%2b2 
178 05156 200049 090518 e375 00055 09589% 04,1968 00051 097208 a1 4407 00055 094039 of ,5112 40070 09552 
160 S036 00043 090900 03619 00004 096529 01,2293 ©0044 09705% 23,4979 00053 095178 ef ,5eu) 00054 09405 
156 04915 00037 097310 03484 00096 097089 01,2016 00040 04952 00061 Bi ,5369 20009 09474 
14ue 04794 00043 097740 3344 000S2 097019 01,2943 00033 04924 00052 21,5498 0000) 09535 
i3e 04073 00037 098119 03206 000405 09806" of, 3268 00029 21.5097 00047 21,5020 00000 09595 
1ae 04552 20039 095500 23068 00049 098939 of ,3593 00026 2105270 00040 ®1,5755 00007 o%eoa 
116 Gus 00031 0 98Bi0 02930 00037 098699 of 3918 000R0 09918® a) e5442 00043 21,9685 00040 09702 
108 o4310 00027 099088 02793 000a8 099179 wf U2dy 00048 09931% of 55615 00044 1,001) 0005) 09735) 
96 64489 60028 999398 42695 o0084 09941% 01,4568 00040 999478 efo5787 0040 21,0140 9004 9797 
6s 04908 00018 099548 02517 00014 099559 of, 489} 00034 0996019 01.5960 00033 ©{,0¢60 0030 09835 
Te 063947 = 0007 =«_ n 99618 = =«g 2379 =—« og KOXP «=«_son PUNTA 14,8218 0001) 00029 21,0397 ,0054 9887 
be 23820 20016 099708 224g e001 099848 01,5545 00009 00025 ©4,0525 00026 09915 
Se 63704 = 0000 §=« oo FRBUS = g 2104 =o 0004 «=n FPERBT® 04,5808 00007 69988% 94,0478 40028 ®41,0054 ,0059 9994 
Ge 63583 = 0006 §©= o 99908 = 4g. 5 966 =o 0006 ©= 0 9993% 01,6193 00006 499908 0146650 40022 099708 01,0782 ,Q019 49973 
Jo oduoa 20004 299948 01628 00003 09990% of 0518 00004 099988 of 0829 00039 099908 of ,09)4 00030 99990 
ao e334 200004 299998 10% 00001 099989 of 6045 00002 4000008 01,0995 00007 099979 01,7039 20000 0999 
is 03220 0000$ 4200008 01583 00002 $00000% 04,7168 00000 1900008 #167168 20003 $,0000% 01,7506 00008 $0000 


Table B-47b 


LOwOR LIMIT OP CLABB ENTERVAL BHOWN, ALL MEIJUHTG ARE NORMALIZED BY HALP THE DEUNNAL RANGE 


304 


9.038 PReT, 
8 


“AAALAC AA Aa 
veer irc 


SHAMMMIVAIA Uf ta 


ee i ce 


ANCHORAGE, ALASKA = = ~~ JANUARY 1973 


ANCHORAGE. ALASKA 


12345678910 le 64 69 7y 79 
MONTH OF THE YEAR YEAR (1969-1981) 


HIGH WATER  o « waxsnen ® © HEAN HIGHER X © MERN 


e9[9S890Rmey 


8 


Uo 
®OS98CHASTHARQRHOHHAED 


123WU5678910 j2 64 69 7M 19 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER one @ © HeAN Leven Xe MINIMUM 
exer 
UmeOOK0egoaD BHoovnoe nv oTH8He2SG208 
O9DBgmg OSS UD® CoOgmanHHOe8OFFFFSO@ 


123U5676910 ji2 64 69 74 719 
HGONTH OF THE YEAR YEAR (1963-1981) 
RANGE @® -@} owr;nat tive ® = MEAN TICE Xe STO UEVIATI EN 


768910 12 64 69 7u 19 
F THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-48c 


306 


200G4° 
a6efa? 
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e6nts® 
2p469° 
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#6459° 
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2926S° 
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209g? 
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e6bie® 
22892° 
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29605° 
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« °O2n4 


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0000°S tmroo® €ScS°t= w20000°S nn00° 0026° at r a 

9566° 0000° 92ES°te 29566° 0000° {220° 22 ® 2nDot? g2toe o2of°le 
9S66° 0000° @62S°te 29S66° 0000° 9926° af 8 ag2dee o6t2o° b0of°te 
9S66° 0000° 0L25°T= #9966° 000° @626° an 2 #609f° £920° fLet°te 
9S66° ono0® 2n2S*t= 99c566° 0000° TEio’ eS e Boner? ot2oe 9neicte 
2to6° nno0® ntes®te »9566° 0000° n9fo° a> a e920f° eteoe wlet*te 
a996° 6t20° 9AtS°T® 49566° 0000° Lofo® si a eL0g2° egsoe Oo4icte 
6n96° nnoo® aSIS*°te 29G66° 0000° 62n6° *@ * aS5492° vgo0® 29L4E° to 
$096° 0000° OFtS*T= 29G66° 0000° 29no® *6 a egaqse® @Rv0® ME4iete 
$096° 0000° ZOTS* T= 29566° mn0o° Sono? 20° ” #00se28 2groe 904n°to 
$096° no0® nL0oS*t® w2to6° 0000° 9256° att a 29°f2? of20° e49t°teo 
b9g6° z2eroe 9n0S°T® «216° 0000° 19S6° eet 2 wontee 940° 0S9t*te 
O0fne° 0000° etoS*t= a2166° 0000° {656° aft s andot® g2to° é2qf° te 
Ofne® 0000° Obon*t= a2too° 0000° 9296° ent a goat? @900° m6sf°te 
Ofn6° ecto® TIEN l= e2tbo° 0000° 6596° ast * ottate noo? 99st elo 
9626° 2gro® Ston*t= w2teo° 000v° 2696° a9t ® 2499Te 2g1oe eict*te 
491t6° 6t20° Loon*t= w2too° nn0o0° n2io° ect * astst? gA00° Olst°te 
4m6a° ea00° ecen’te 99986° nnoo® 4Sh0° eat * aannte @qu0° fant°te 
099@° Sito° Tsen®te »S2e6° 0000° 0oL6° sot s 200gte noo0e SSniete 
pega? 2¢y0° f2en°te eSs2ao° 0000° f296° 202 * agtete npooe 42ntote 
#Ssse° @A00® Socn*t® #S2@6° mn00° Sse6° #42 & aecet? e¢toe oriole 
S9ne° 2cro° Loin*t= etylo® 0000° 8e86° 222 & a0ntte 2ehoe bAgccte 
itce° ecto® erin’te etelo® nnoo° t266° ef2 6 Pr 0000° fngicte 
202e° Sito® Ttan*te aigso® 0000° nS66° ane ® 2000S? @@00° GIEL° to 
920e° nod? faon°’t= wLGlo° nno0o°® 40660° “S52 «8 at2o0° 0000° 4eef°teo 
2e6d° ea00° sson°te 6£696° 0000° 6500°b «92 * ah2e0° 0000° ogemet= 
Soed° 9900° 429n°t= #£696° 0000° 2s00°b #42 a at2@0° nn0o0? be2tcte 
40e2° ete2o° 009n* te #f696° nnovu® Seoo°t «g2 a #4L90° noo? fo2t°te 
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tobset 6S 
mgbseb 209 
99ttes Bh9 
boltes wed 
2ceres £9 
S923°s 9nd 
aociel #99 
Ogites #99 
eottet 249 
Gottes 299 
O27Tes 209 
Tomtey od 
fortes w#bd 
Zestey wad 
OQSt*s wd 
Costes end 
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torres age 
medtes wed 
9g4i°t ted 
oe4ses 208 
z2etes #8 
Ss@iet #2e 
eevtes e€8 
Oz2o1et ane 
Csolel wge 
9gotet 298 
osoe*s age 
tgOZet 298 
mg0eet 268 
attaes 206 
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2etert #26 
sree*t a€6 
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Tee2et #66 
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307 


Lower 
LIMyT 


1o2q%? 
1o2y593 
108308 
1e2a23 
1o2,38 
LeadoSs 
101969 
tetaaa 
Lei7e9 
Leil715 
Letedo 
1etsds 
Letg6d 
101375 
fela%y 
fel2o0e 
foty2i 
loiode 
1o00Se 
1o00A07 
1o0762 
100697 
Ledele 
1eosee 
1o0u4} 
100458 
100273 
100,89 
100,04 
109919 
09q3u 
oFAug 
09765 
09480 
09595 
09510 
o%u20 
095 G4 
0%356 
097) 
0% 07 
0902 
oAgi? 
oAaka 
ofa? 
09463 
04570 
oAuey 
08406 
oS8y24 
06939 
04;Su 
08969 
07984 
07900 
oats 
07730 
07545 
0756) 
o7uto 
0 F391 
0406 
o?a22 
07437 
o70S2 
00967 
00n8Q 
06798 
06713 
00628 
06545 
00uS9 
06374 
06289 
06204 
00419 
06935 
05950 
oSA65 
05780 
044% 
oSoil 
05520 
0Su4) 
05357 
05272 
0487 
0102 
oSni? 
04933 
04a48 
04765 
04678 
04594 
04509 
04424 
04539 
o42Sa 
04170 
0498S 
04909 


8 

FREQ, CUM,® 
FREQ,@ 

00001 00018 
00004 000008 
00004 e00108 
00012 2002a8 
0002) 200058 
20034 e007Te 
00036 eOlise 
00040 001S3e 
00u3S7 001908 
00061 e0eSis« 
20065 oOsiTe 
20065 0038ae 
00079 004618 
00082 o0SU3e 
o0uTy 00019e 
00089 007058 
00U83 007688 
00076 04oae 
e011? e09Aj\e 
o0U77 o1058e 
00092 011518 
00088 ol2y8e 
00309 ol S478 
00129 ol47oe 
00103 015798 
00125 o!70ae 
00135 01 83%e 
00137 o197oe 
0134 02109 
oO14u oee5as 
00187 o24uje 
00365 026008 
00189 027980 
e0@it o3uoee 
00187 o31958 
o0d23 eS4ioe 
00193 30048 
o0eta 38230 
00eu7 040708 
00235 043050 
00219 e4S2ue 
0208 o473ae 
00204 o493Se 
00239 «=o 51788 
002838 o5aise 
00217 050308 
00208 oSB386 
00186 obuese 
00109 061930 
00166 065546 
00177 06S308 
00155 060918 
00168 o68Sus 
00344 o704ue 
00350 «=o 74908 
00134 8=6o FI3U0 
00)65 o749Se 
00126 076250 
e020 o77une 
06150 79008 
e010 o80108 
00419 041288 
00107 082358 
oOlia oA3S50e 
00095 06uu5e 
00323 oASobs 
00301 oferye 
00320 087908 
00097 oSB879 
00103 o89A9G 
00100 oI0AWs 
oOdla 092038 
00070 098758 
00074 o9SU7e 
00065 oFG1 50 
00058 094740 
efUeu 095390 
00040 095754 
0005) 090256 
00037 0F063o 
00033 090999 
00036 97319 
00045 oI77o8 
00034 096108 
002K oIb5be 
00025 0 9Bo3e 
00028 096918 
00012 099038 
00019 = WAZ8 
00019 0994ae 
©0016 099586 
00007 099608 
00010 0987oe 
00009 099ASe 
00004 099908 
20004 099908 
00003 099978 
06000 099976 
20000 099978 
00001 099948 
©0001 1200008 


HIGH WATER ) 
9 
LOWER FREQ, Cum,® 
LImty PRE 
BH ESseseslenesesesas 
102477 60001 000019 
1o2385 .000R c00u3s 
1.2293 00008 000058 
1.2200 20009 000)4% 
$o2108 00014 00289 
102015 00019 c004Re 
101923 00049 000078 
101830 «00085 =e nova 
101738 00033 c0125% 
0164S 00044 091099 
101553 00040 002098 
$0146) 000383 002628 
1o130A 0001 eosaue 
1o127?6 00088 03818 
101183 = o002 s0duse 
101091 00072 005158 
14,0998 0000? 005019 
300906 00086 006078 
100818 0075 c0742e 
100721 00081 o0hese 
1.0628 .000%6 009189 
41,0536 010! 01019% 
120444 00095 ofiyae 
100351 001s6 012508 
100259 ec0/03 o1353# 
00106 c011F% o1451% 
1.0074 00le7 015788 
09984 00126 017038 
09869 «60149 03852% 
09796 = =00176 . 02028" 
09704 00184 oe@2iie 
09611 00170 =o S018 
09519 00203 ea2Soue 
09427 =o 019% = BBS 
093354 =00P12 =o 29928 
09242 =o 0218 = o S21 18 
09149 00226 oSasre 
09057 «60217 «=o SDS 
e894 0220 8 oS 8T4e 
oAAT2 «00226 =o WI. VF 
08779 =, 0244 = ps USM 
08687 00209 045538 
0659S =60238 86 ¥ae 
ofS0R 00206 049988 
084106 002uS 0S203% 
08319 =o 19H =o SVT 
28225 §=60206 §=— 0 $0039 
06132 00191 OAL 
oANbO 00188 05962% 
07947 =o 0176 = 0 1 9 BF 
07855 =o 0157 =o © SF 
07762 0015! 064009 
07670 00108 066348 
07578 =o 0146 = 0 781 F 
07485 = §=40148 169289 
07393 00135 070048 
07300 =o 0132 =o TOF 
720A 0141 o7337% 
07135 00130 o7407% 
07023 =o 0110 =o FS77% 
00930 00139 077108 
ob ASR 20109 07825% 
00748 00133 079969 
206053 c0110 80749 
00561 001e7 082019 
06408 00125 0 89208 
00376 00102 084289 
00284 00136 065439 
0019 00098 boars 
2609R 008% .6728% 
06906 «009 068198 
oSMN13 00070 088898 
o5Aat 00072 «=o 8908 
05729 0007! 090518 
05636 00070 091018 
05546 o0072 091734 
05451 00070 «= o MAUS 
05359 00070 0931 3% 
05206 00009 093029 
05174 00001 094208 
05081 20049 o9uris 
04989 00054 095259 
24896 460039 95048 
04804 00048 oF611% 
ose 00037 096U9R 
04619 00042 09691% 
04527 =o 0007 «=o 9 F.BB 
04434 = 00GR =o PT HOP 
04340 00031 094118 
o4Ru9 008A 0 GAS9G 
415% 20032 o9A718% 
0464 «60028 98989 
03972 00031 099308 
03460 00018 099488 
03787 20080 099088 
03695 00016 0998u8 
03608 00003 099878 
03510 00008 099998 
e347 00004 099998 
332% ~60000 099998 
03237 «60001 1000008 


Table B-48b 


LOMER LIMIT OF CLASB SNTERVAL BHOWN, ALL HEJUMTS ARE NORMALIZED BY HALP THE DIURNAL HANGE 
MSGHER HIGH WATER 8 


HOURLY VALUES ® 
s 
LOWER FREQ. CuM,® 
LIMIT FREQ 
Seecoetonessevgnassoons 
1.2477 00000 000008 
1.2199 0000) 000018 
1o1¥2) 20003 00048 
10104} 20007 000108 
foijou 00le 000228 
101086 c001 00409 
1.0808 e0u2as 0006ue 
1.0529 003) 20094ue 
1.0251 00043 oO{ 378 
09973 = 0 0051 201888 
20969H 60065 02538 
09416 00079 003328 
09136 00103 o0U3ue 
08459 =o 0114 = OU 
0A584 00134 006828 
0A303 0142 008248 
oA025 00109 09738 
oV74e 00154 olte7e 
27468 00158 012858 
07190 =o 0166 =o 1S 
2691) 00165 = 1615* 
26033 00468 o17A3e 
06355 00176 019608 
26076 00172 o21328 
05798 001975 023058 
205520 00169 024748 
05e4) 00170 26u4e 
04963 00164 = 26048 
04685 ©0166 e297Kue 
e407 00160 o Si 348 
04426 00159 o32938 
03850 00160 034530 
03972 00140 035998 
03293 onde oS7H1e 
03015 00138 0 38798 
e273? 00135 o4014e 
02458 e013) 04, uS5e 
02180 00126 42728 
01902 00126 043988 
01023 00123 045218 
01345 00120 o4o4u7e 
01067 00320 047078 
00788 00120 o4 BATE 
09510 «00115 50028 
00232 «600117 =o S208 
200046 00319 052398 
20,0325 e0110 053558 
©,0003 00116 Sue 
2,088) 00310 055878 
@o1160 00116 oS7038 
@o/436 00110 058199 
eo17l6 00}17 059368 
2.1995 01th ob0U7e 
2.?273 c0l17 61638 
2.255) 00119 062839 
@,283y 0118 64018 
2.3108 0012) 06522¢ 
2.3586 o01A1 066458 
eo3064 00124 67679 
oe, 3943 00123 068908 
e422) 00124 o7014e 
@,4499 00127 071418 
oo4778 ented 07265% 
2.5056 e0ise 073978 
0.3334 oO13t 075298 
2.5013 00327 076568 
25894 00128 077638 
© 96109 e013!) 079158 
2 6448 00429 of043e 
@e67d6 800130 081738 
257004 00132 83058 
©,7282 00130 084358 
2.7564 00326 85598 
7839 00123 08682% 
6117 00115 087978 
2,839 o0ifo 89138 
©, A674 00110 090238 
© ,A952 00400 091258 
0.9231 00096 092198 
2.9509 00090 093098 
9787 000B4 093938 
21.9066 00076 094728 
e1,9344 00073 095458 
21.0022 00066 o9611% 
21,090 00062 196738 
11179 00087 097298 
o1,1457 00083 o97A% 
e1.1735 00044 098258 
21,2014 00040 0 FH648 
21,2292 00031 
e1.2570 0024 
01,2849 0002) 
o1,3127 00054 099558 
21,3405 00013 099688 
a1,3o84 00011 099798 
3962 ©0008 o99R78 
21.4240 0005 
21.4519 0005 
21,4797 00002 
21.5075 00001 
21.9353 ©0000 


308 


14.050 PRET, 


LOW WATER 8 
Lower PREQ, CUM,S 
LIMIT PRE 
Seoeeocgesccevvsscens 
©2192 00008 o00018 
e,232a 00001 000028 
202455 200003 000058 
20258? 0000! 200008 
eo2718 0V004 000108 
=.aAS0 00007 000168 
202962 00008 000258 
eodii3 00007 o0031e 
23245 00010 000426 
oo5377 00004 000468 
2o35UR 00015 200018 
2. 5h40 00019 ,vdbue 
25771 00033 000930 
2.3903 00022 001198 
224035 00026 =n ON 418 
204166 00024 00105% 
©, 4P98 00028 = 01948 
©,4u29 000248 02228 
2.4561 00034 202578 
2.4693 20038 ,ve9s¢ 
eo4Aed 00036 ooSdie 
24956 00046 03708 
269968 0003A o04i4e 
205219 00051 004058 
20535) 00046 005128 
© oS4b2 00003 005758 
209614 00060 200348 
2 .57u6 00049 o0ebue 
eoSA77 00061 2074uSe 
©,6009 00061 008068 
2.6140 00082 206880 
e.ca72 00061 009098 
e,ou0u 00078 o10u7e 
250535 00996 ol1use 
20667 00109 os252e4 
2.6799 60110 eiso2e 
200950 00120 014830 
oo7062 00134 16178 
27193 00108 ol Veue 
eo7ses 00133 018578 
@o7US7 90156 o2013e 
2.7588 00149 21022 
2.7720 014g o230oe 
27451 00165 ,2471e 
©7983 00156 oeb2eb? 
2/8115 0017! 027989 
200246 00194 o299le 
26378 00168 031008 
2.6510 00165 033458 
©6641 00198 035438 
2.6773 90197 037408 
©,6904 00171 039108 
209036 00164 040748 
209168 eut73 42478 
209299 0176 o44ese 
209431 00195 046168 
209562 00187 048058 
2 o.969U 00197 050018 
2.9A26 00162 51638 
209957 00163 053078 
21,0089 00208 055008 
21,0220 00207 
21,0352 00163 059378 
24,0484 0010p 000978 
2100615 10192 62889 
2100747 00168 264508 
23,0879 00176 006328 
101010 00174 068078 
2101142 00179 009058 
o1o1273 00186 071726 
2101405 00194 073050 
2101537 00176 075418 
©1016648 00192 o77330 
21.1800 00578 o791e 
e1o1931 00192 o81use 
@1020603 00203 2083008 
©102e195 00159 o84o5e 
21.2326 00150 20 8615% 
21,2454 00132 087468 
2102590 o01ed 088708 
el,evei 00104 ob974KG 
23,2853 00114 090898 
21.2964 20089 091788 
erosil6 00085 092029 
21,5248 00006 093288 
21.3379 90078 094068 
1.3511 00076 8=— , 9UB2e 
©1,3642 00076 095578 
103774 20061 496188 
21.5906 00065 oVoRse 
e1 4037 00055 097508 
2104169 60053 097918 
o1o4301 00048 098369 
214432 00043 098798 
2104564 00029 099088 
21.4695 00034 299429 
21,4A27 00022 099038 
2104959 oON1A 299818 
21.5090 20009 = 99908 
©1.5222 00007 099986 
1.5353 ©0002 1.00004 


LOWER LOW WATER 


LOWER FREQ, 
LIMIT 
Sooesessogeseces 
206504 0004 
©,6052 00008 
2.0740 00008 
2.0826 40000 
6910 .000) 
e,700u 00012 
2.7092 ,0009 
2.7180 ould 
e.7eo? 00018 
2.7555 0002eu 
e.74us 0031 
07531 00037 
e,7019 024 
eoTT07 00037 
207795 00046 
©, 7bAS 20058 
2.797) 00040 
2.6058 ,0069 
oeS1uo 20043 
2.8230 20070 
©8322 20076 
2.8410 0006 
2.8498 2007 
2e85A6 00100 
28674 20092 
2.5762 00095 
28849 20072 
© ,8937 20095 
2.9025 00084 
2,915 40100 
2/9201 00094 
2.9289 40089 
o,9377 e0ste 
2.9465 0107 
209553 0125 
2,904} 00128 
2.9728 00134 
eo9810 §= 0125 
2.9904 00100 
2.9992 0164 
°1,9080 20130 
©1,0368 200140 
©1,0250 00149 
1.0344 20326 
21,0432 40119 
®1,0519 0354 
©1,0607 0164 
21,0095 0035) 
©1,0783 0010) 
1,087) 00363 
21,0959 00157 
21,1047 00185 
o1.1135 00389 
e1.le23s 20222 
Pioisiv 00195 
©1,1398 20e19 
©1,1486 00186 
21,1574 0022) 
®1,1o62 0215 
©1,1750 00219 
21,1638 09198 
101926 00234 
©1,2014 00228 
e1,2id) 0028 
°1.2189 20189 
2102277 40164 
21.2365 0163 
21,2453 00152 
21,2541 00155 
21,2629 00116 
e127 00340 
©1.2605 00143 
21,2692 00097 
©1,2980 20122 
°1,3068 00407 
e1.3150 20088 
e1,seuy 20086 
21,5532 90096 
©1,3420 00098 
21.3508 0094 
21,3596 00094 
21,3684 200095 
1,377) o0uT!a 
©1,3659 00084 
21,3947 0064 
21,4035 00073 
2104125 20075 
e1,4ei) 00060 
21,4299 00067 
21,4387 0058 
e1,4475 0048 
©1,4562 0034 
21,4650 00039 
#1,4736 00045 
21,4626 0033 
21.4914 0025 
21,5002 200013 
©1,5090 0015 
©1.5178 ,0010 
21,5266 0000 
2155553 0004 


CUM, 
FREQ, 
eeece 
00003 
00003 
00008 
00010 
00012 
00024 
00033 
0005) 
00069 
00092 
e0lau 
00}6) 
00385 
00222 
00268 
00327 
00367 
00435 
e047e 
00549 
00625 
20090 
00765 
00674 
09963 
01059 
oli3o 
ol22o 
03509 
01409 
01500 
01590 
0170) 
01809 
of 93a 
02062 
02197 

oes22 

02428 

02592 

e727 

02668 

03017 

0314S 

o326u 

03418 

03582 

03732 

03894 

04056 

e42is 

045% 

04565 

04808 

04999 

05218 

05404 

o5025 

05840 

06059 

06257 

0649] 

06719 

06937 

o7l2o 

07290 

o7474 

07626 

07784 

07899 

06039 

08382 

06279 

08405 

08509 

06597 

Oe} 

08777 

08870 

18970 

09064 

09159 

9231 

09314 

09398 

09474 

09545 

09605 

09072 

09730 

09778 

09812 

09651 

09896 

09926 

09954 

09967 

09982 

29993 

09999 
1.0000 


“ThalallallahaANAMANAn all a lal 


Mi 


=e ST] 


4 MANA ba LAA Aadall 
: i} Ne ree 


JANUARY 1973 


= 
= Zs 
z= 
z= 
2 


2 


Figure B-49a 


KODIAK, ALASKA 


{u) 0. 
[oq nnOFnnp7 29090” 


F8oTROCHOHOTOHOACTZOODG HOD 
Kx«KKXKX XK XX 
79 


12345678910 ie 64 69 74 
MONTH OF THE YEAR YEAR (1963-1981) 


aie HIGH WATER o-naxinum © © MEAN HIGHER =X = MERN 


mooooaoono0o00 Dogo 008F7FOMDAMaAMoOOOAD 


DOOD, 09 FH gm FFT HOCOFHHHTFHDOOO8O® 


12345678910 12 6H 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


D D LOW WATER © = NEAN © = MEAN LOWER Ke MINIMUN 


Dn ee oo aunBneaoVOfDF2HF OO000 


1.3G°CT 292990008 PHOBHHAHHLOHHAXLSOSSUOD 


0. 
12345678910 12 6H 69 ee 719 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE o -} owrwac tie © = NEAN TIDE Xe STD DEVIATION 
0. xKKXKKKKKKXKX KKK KKM KK KKK KKK KKK KK 
ll) 5.5 : 
123456786910 le 6 69 7u 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-49c 


310 


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tson’te asone? 
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Onin*t= antte® 
Seon’ts e920e° 
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zosn’te sceed* 
Ongn®te ascend? 
oenn*te ef9LL° 
grnn’ts annsc? 
Secn’ts 200S2° 
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Satn°’ts 20¢69° 
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SL02°s wot a 296018 @800° 6662°te moose? 0000° meege?s 269 
tyt2et | w02 a 260089 mn00® dno2°te w60ge? S.toe Oboges 20d 
dnt2*h e«t2 « #5960° 2650 Gogerte wfece® 900° 9noget etd 
fetect we22 8 affeo® nnoo® nng2°te soneg? ectoe 2aoget e922 
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Ss22°t oen2 r) 29740° noo? enae?te antt¢® 2croe mSOnes and 
tee2*st es2 «@ #20408 n70o® 0692°te w2yo2! egtoe 0607s 264 
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goc2°t ace a ant90® noo? Gese’lo w6tLe® ot20° Zones wed 
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fnse't eee a alGEo? 7900? bag2°te s0gfet? 2ctoe @nfnes s2@ 
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2eo2°s 99f ® 2£920° 0000° S2t2°t= a9 ifs? 800° 9enn’s 299 
fes2e°t eff 6 af920° 0000° NL02*te wg2zete S4toae Z2Sn°t 440 
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Tesg2°t wOn * e2ecso? 0000° otlet te segso® 900° Of9%pet 206 
4992°t) ath r w2etoe 0000° @9gt°t= w#2010° 9g00° 999net sto 
{Oo2*s een * a2eto® 0000° dtal te wnteo® a@00° 20dn°t 226 
oroe’t wih fe e2ft0° nnd0® Ga,t*b= wa2g0* e800 efdnet sf6 
S4o2°)) ann * 29p00® 0000° Nntgt*te wofno® 0000° padoet ene 
Ttoget § aSn 2 #@900° 0000° 2993% te weird? 7n00® OCOnes #696 
Lnoctt e9n a #99009 0000° btOT° to sgogo? noo? 9nen?t 296 
qeoc’s elf a 2g@00? 0000° OC9st®*t= afsto? egtoe 299n’t #46 
orte?t ean a #99008 0000° @0St*t@ w6t20° @erue gton*t 96 
SStg*t 6h a #99009 0000° Gont°teo wegto® fnoo® {Son?t 266 
Tete?t 206 rf] 2@900® n00® 90nt°te wge00® noo? 696net #2004 
92ac°s ofS 8 annoo? nnoo? NStb°teo eyn00° Prove 620g°s af0t 
RACHTAATK RARER K SKS KKH SSAA KoA Hee HH ASKeHHKKH KK ee eee Rae KeHeeeKeReKeHKagkgageeesesaseresHetagsestetena 
LIwI1 8 ‘ON @ e °O3ud 1Iwl] 09 Sng Aftwtd) = @ °ON 
wgmot essviie @ °HNY ®o3ju4 93m01 a °Hnd °O3a4 439404 eg8v19 
r) a a r) r) 


@ WALVM MOD “OW BH39NLXD © HILVM HOTH “OW AWILXI @ 


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JONVY TWNSNTGO 3HL 47VH AG AaZTIWVWHON Juv 


v¥sviy MV TdOn 
F67-d PTIPL 


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SLH9L3H 11¥ 8NMOHS IVAMMLNT SSV¥19 40 LIWIT waK07 


NOTLINGZ NOTANGTalera 


311 


e 
8 
CLagée 


13s 
12s 
118 
108 


LOMBG LIMIT OF CLAGB INTERVAL GHOWN, ALL HEIGHT® ARE NORMALJZEO BY HALP THE OZURNAL RANGE odio FEET, 
t 


HIGHER HIGH waATER ° 


LOwER 
Linyt 


1oS0a5 
1.4917 
124809 
10470) 
104593 
104403 
104377 
104209 
10410) 
104053 
1o3gau 
103830 
1e3728 
1eSo20 
103512 
1eduod 
1032%6 
1031,88 
103080 
102897) 
108860) 
102755 
102047 
102539 
1,243) 
1Lo@s23 
1o2@215 
102107 
101999 
101890 
401782 
Lolo7d 
101566 
foluse 
1oi3So 
boi2de 
fotpda 
1elo2e 
100918 
100809 
109703 
100593 
100485 
100377 
100269 
10016) 
100055 
09948 
09837 
09728 
0%620 
09512 
09404 
09296 
09188 
09980 
28972 
08864 
08755 
0Go47 
06539 
08454 
08323 
04215 
08507 
07999 
0789) 
07785 
07674 
07566 
07456 
073S0 
07242 
07134 
07026 
00918 
06610 
00702 
00593 
06485 
00377 
00269 
eojo1 
00y53 
0594S 
05637 
05729 
oSo21 
05512 
05404 
05296 
05568 
03080 
04972 
0464 
04750 
04648 
04559 
04431 
o4325 
04715 


pREQ, 


SSSCoSeseesesesassens 


0000) 
00009 
00009 
0013 
00038 
00027 
00022 
20049 
00042 
00036 
00042 
00S) 
00064 
00049 
00072 
00054 
00049 
00US4 
20090 
00084 
00U6d 
00087 
00094 
20076 
00060 
00093 
00103 
00104 
20100 
e0lle 
00118 
00309 
0124 
e0s16 
00139 
00163 
00182 
00173 
017s 
00187 
0084 

00199 
00156 
00107 
00193 
00203 
00166 
00807 
0019 
00190 
00165 
00370 
00187 
00800 
00172 
00165 
o0lO4 
00152 
00164 

00149 
00100 
00148 
00170 
00134 
00157 
00176 
e0l2u 
00135 
001309 
00126 
oO1S1 

00127 
00139 
00100 
00134 
00133 
00318 
00084 
00096 
00073 
00099 
00004 
00069 


+00US7 


00U64 
00045 
00042 
00040 
000435 
00040 
0002} 
0002S 
e00lo 
00010 
00018 
s0v2e 
00007 
00007 
00004 
00U07 
000046 


e 
Cums 
FREQ 


HIGH WATER 


LOwER 
LIMIT 
Ceoeesee 
1.5029 
1.4876 
104726 
1.4979 
1447 
104878 
404128 
103979 
103829 
1.3080 
103530 
403384 
1.3231 
1.3082 
1.2932 
102783 
102633 
102484 
1.2330 
102189 
102039 
401886 
101736 
101586 
1,1437 
101287 
101158 
1.0988 
1.08390 
1.0669 
100540 
1.0390 
400244 
100094 
09942 
29792 
290U5 
29493 
2934G 
09194 
09045 
28895 
o874B 
08596 
o84u? 
068297 
oG148 
07998 
07849 
27699 
07S49 
07400 
07250 
07104 
00951 
00808 
066032 
00808 
06353 
06208 
06088 
25905 
05755 
05606 
05456 
05307 
05157 
05008 
04858 
04709 
24559 
04440 
04260 
041th 
03901 
03811 
03062 
03512 
03303 
03213 
03064 
o29ha 
0270S 
02615 
02466 
o2316 
02167 
02017 
01668 
01718 
01509 
01419 
01270 
01120 
00971 
00821 
50672 
0052P 
00373 
00223 
20074 


PREG, 


00003 
00008 
00000 
00013 
00016 
00087 
00030 
0002 
000a? 
00039 
00046 
00038 
00052 
00095 
00000 
00045 
00005 
00048 
00089 
007s 
00007 
00060 
00086 
00083 
00090 
00101 
001ed 
00128 
0014) 
00145 
0014S 
00131 
00358 
00130 
00109 
00136 
00153 
00102 
0017S 


00108 


00102 
00109 
001599 
00160 
00103 
00194 
00172 
00177 
00105 
00184 
0017? 
00460 
00190 
00168 
00203 
00489 
00100 
00179 
00108 
00370 
00190 
00106 
00104 
010d 
00147 
00138 
00154 
00150 
00120 
ootas 
00115 
00102 
00110 
00099 
00088 
00095 
00086 
00085 
00094 
00073 
00079 
00009 
00078 
00003 
00095 
00095 
00057 
00046 
00033 
00043 
00040 
00030 
00050 
000as 
00023 
00012 
00009 
00008 
00040 
00004 
00005 


Table B-49b 


ss HOURLY VALUEO LOw waTgR LOWER LOw wafer 
e 

Cume® LOWER PREQ, LOneR FREQ, ® Lower FREQ, Cun, 
LIMIT OREO LIMTY LIMIT PREG, 
SCeerTO ose eseses SSCCTEK EHS EESESR SESE 
0000 5025 00000 1900018 00003 00003 
00009 41,4710 00008 000058 200030 00003 00003 
000159 41,4395 000028 000038 00010e 00005 00004 
000268 14,4080 00005 000088 200e28 00004 00009 
oVOK4® 43,3705 00008 000108 o00SSe 00000 00089 
00071 34,3449 00010 00208 0005se 00018 0030 
eO102% 4,333 o0014 00578 000809 00009 40039 
o01a3% 34,2619 0016 00539 oolaie 00020 = 0007 
00153% 4,2504 0019 00728 o01o1e 00024 =, 0094 
00193 41,2189 0023 ,0095% 002008 00036 90507 
00R8}0F 43,4074 00025 01208 002588 ©,5572 0048 40555 
oORVOS 49,4558 00033 001539 003278 0/5093 200030 00594 
00508 441243 00038 00f898 003898 0,5615 0004e o0aS7 

00303 43,0928 10040 02359 004088 ©,5936 0045 

00423% 4,06013 00083 20003 

004088 31,0296 00063 00073 

005334 099028 00072 00097 

00S81% «49667 00075 20003 

000408 9352 00083 00007 

00713" ,9037 00090 00403 

007798 08722 00100 00338 

008598 06409 00108 o03he 

009458 08091 00115 o01eu 

010268 07776 00119 00363 

of116% 7461 00127 00304 

ofasoe 07140 0013? 00093 

01343% = 68034 0143 0033) 

of 4718 06515 00148 ee 

of632% 46200 00350 00430 

of758% 45885 00160 00820 

01903e 05570 00162 003Se 

02034 4255 c0lod 00337 

o2191% 44939 00160 00340 

e2@341%  =,4b26 = 0370 0172 

085308 04509 00108 00303 

0260608 03994 =o 0465 00358 

00160 00378 

001608 00304 

00168 00357 

00308 00379 

00174 00400. 

00104 00355 

00170 00352 

00360 00104 

00167 00352 

00167 00433 

00163 00333 

00160 052678 p1,0062 0152 

00164 o54uBe 01,0103 0149 

00158 055958 01,0305 0157 

00168 057530 01,0420 00350 

00170 059128 ©f,0547 40170 

0017) 060799 01,0069 0145 

0172 002379 01,0790 00354 

00370 003649 ©1,0943 00398 

o017e 0054S o1,1033 0se2 

00577 060798 of ,115u 00303 

00370 00610 ©1,1275 0I4o 

00372 06955% 01,1397 005os 

00366 00104 

0036) 00807 

o7157® @,4205 00163 00143 

00158 00197 

00353 23.2003 00146 

e046 ©1,2125 00372 

00443 @1,2240 00152 

001396 080558 e1,0900 0015! ©1,2367 001ed 

0014) ®101064 0093 21,2489 40198 

00333 2401229 00126 ©1,2010 001de 

00127 e1o13o3 00107 1,273) 20152 

00120 085760% 01,1558 00117 ©1,2053 Oe ae) 

00118 08695% efol%2e 20096 ©1,2974 00090 

00310 48808 ©§,18667 0119 01,3096 0133 

00107 089128 ©4205! 00105 ©4,3217 20088 

00102 090948 ef o2210 60114 21,3338 0095 

00097 691108 ef92380 .0009 e1,3400 0079 

00007 4919869 efo2545 e010! 01,356) 00087 

00082 «49280% of 62709 0104 e1,3702 00% 

00074 093558 of 2874 00079 00095 

00078 094aS® of, 3039 00071 00036 

00070 094959 of 3203 00070 0007) 

00059 095548 @},5308 00003 20069 

00057 996119 efo5S532 0054 00000 

0005e 096079 0163697 00001 00057 

00052 697198 ef,3601 00003 00060 

00ue 097019 w104026 00040 00008 

000U4 098028 ©} 54190 00040 2104794 00003 

097208 01,239 00034 098379 of 54355 09043 OL 491o 00037 

097739 01,2711 00033 69869% 0154819 e0046 21,5037 0045 

03020 «=o 0U20 =o FB9S® 154084 40041 105150 90043 

03341 00022 «=n PPIT® @1 4848 40037 2105280 = 0058 

21,3057 00016 ,99359 of,5013 0027 1,940) 0034 

09915% wf,3972 00015 699519 0156177 ,003U ®1,952¢2 0042 

099399 01,4287 00012 09963% of Shu2 00032 ©1,5044 90039 

09902" 01,4602 0011 0997K9 2165906 00023 099208 91,5768 0033 

099749 04,4917 00008 9983 @1,%071 ©1,58086 0019 

09983% 01,5232 0007 499908 01,5835 21.0008 0030 

099859 01,5548 0000 ey,0429 40010 

099959 01,5603 0U0S 21,025) 00030 

099999 01,0178 00002 $,0000% e},0329 oOST2 90004 

$60000% 04,0493 ©0000 41,0000" =1,0493 21,0495 20004 


312 


TINAAAAAMAAAAA AL 


Terry il 


eL 


SAA 


st 


errr 


HOURLY TIOE HE TOHTS 
OUTCH HARBOR. ALASKA JANUARY 1973 


Figure B-50a 


Equivalent Gaussian 
Distribution 


Hourly 


ms 
0.01 0.1-30 -20 10 -o 50 0 90 20 30 99.9 99.99 
Diurnal Range = 3.69 ft 


Figure B-50b 


313 


DUTCH HARBOR. ALASKA 


®eFe2000000 
xxXXK XK KX X 


xo 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR. YEAR (1963-1981) 


HIGH WATER ao & maxinon @ © NEON HIGHER X = MERN 


BNonoawmaeaDlHooeada 


x x 


123U56789810 12 6u 69 7u 79 
MONTH OF THE YEAR YEAR (1963-1981) 


LOW WATER © = NEAN = MEAN LOWEA X= MININUN 


x 
12isiusici isle wie feu 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © oe OIWURNAL TIDE © = MEAN TIOE X= STO DEVIATION 
OS 
x X 
Xx xXXxy x % KRKKK KKK KKK KKK HK K KK 
S52 
12345676910 12 6H 69 74 79 


MONTH OF THE YEAR YEAR (1963-1981) 
Mein Slt} bleWiett 


Figure B-50c 


314 


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pnoo0® 
0000° 
@900° 
0000° 
@900° 
0000° 
noo? 
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zoe 
2qro° 
0000° 
@900° 
G.toe 
0000° 
zqsoe 
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noo? 
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egroe 
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9e00° 
900° 
tego® 
700° 
@900° 
ee00° 
9900° 
40¢0° 
ot20° 
sito° 
ecto° 
6t20° 
etzo° 
20¢o° 
eqroe 
S.to® 


°ejus 
*wNd = °aaag 


P) 


Osat*2= 90000°S nndo® n0ed° eS e e 
@995°Zs e9506° 00° 40<° e2 r eectse @g00° eogd°teo eLsgse® 700° aadtet e226 
9ast°ze e2fee®  e900°  ssoe° ef e eanM0S® S2t0® O4nd?te seege® mn00° Ssnetes sts 
f£0ST°2® es2e0° nn0o° tate? Pm) r 299en° gatoe @egs°te sogec® et2o° O2Ot°s enS 
tent*2e eleaio® nnoo® 402e° eS s 2f69n? erto° SOC4°te 2040E° @900° 9605°s 89S 
Occt*2e eigco’ 900° fe2e° 29 8 etogne £920° C224°te veee02° @g00° 2402°% 299 
9S20°2@ gen%e® 2gto° este° ys 8 egoen® @900° Tnbeete agoge® 0000° enla*t 48 
pgth?2e e@tse® 900° n¢ne? 28 e atten® @900° @S04°S2 agen2® fn00° ne2z*t segs 
2e08°22 e0gho® nndo® o1se® 26 e ef2tn® €920° 9409%S2 atgez® 700° ee22°s eS 
0008°2° s9Qf0° Gato® 99se° 20% 2 909Rf° 2eto° near te eL0g2° @g00° sateet 209 
4200°2® eft26° @900° 1999° ett of] egeif® 40€0° 2se9*te estse2® Sato? tgn2es 0f9 
sneg0°Ze efzto° 2gto° 4g4e° 2s 8 etenge $L10° 0249°T® annge® pn00® 42seet #29 
2940°22 etece? nn00° {tee° eff s eonete 40goe 4n99°t= s00g2° 2gtoe 209@°s £9 
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9190°2e e0998° t2zo° On0e° e9t a 2£942° 40€0° O0n9°to asfz2° noo? o¢ee*t 299 
€¢n0°Z= 20n9e° nn0o® 9tte° edt e 29gne2e 40£0° wlgo°te egote® 9@00° 900295 #49 
tgg0°2e 296S58° a900° Zoto® ot e eontee 9@00° Sf29°te wgote? ot20° teoaet 299 
6920°22 960Se° £920° 8926° wot r) 2t902¢ gltoe £Gt9°se sogar? @g@00° 459¢°S 969 
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poto°2= egste® 2cto° otme® at2 * ensat? SLtoe @g90S°Te w499%° Satoe eoeges ats 
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26960°t® s9snc° 2gto° @640° 092 * 2960T° gg00° LLSS°32 26960° 0000° eesees #92 
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@256°S2 sents? 0000° 0S66° 202 ® 04190° 9a00° 2tns°te st2e0° ag00° ecéees a@d 
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£9go°se ef90L° 2cto° Sotoetl ef a 22040° 9a00® Omes*te woes0® @e00° teecet 208 
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n9eL°t® eigtn® egto® Oott*s sin s e9900° mpoo® @nef°te #@g00° 0000° oa4ts*t 246 
2eegd°t@ eSf0n°® zcito® 99nt*t ean s annooe 0000° 994E°TeS e9900° nnoo® ss2s*t 296 
oeda°t® ender? 40£0° TnSt*t eon 2 2nn700® on00e Megt*te ennoa® 0000° TELS?s 266 
LtLacte e%eS5¢° ee00° Argotet 006 a anp00e 0000° bogg*te snn00® 00008 Lomget 2001 
SL9L°T® eeost® 2ato® Togtesh SS e enn0o® nnode otst°te enndo0® noo? Zengset at0t 
SSHKSSTSSS oe He Hse S ee seleses sees asst seseeeasavese ss esses este seseaestSeseeesesaeesaeesesessesaseseyssoensecesessoacvessevatheasseseteny 
Aftwi? 2 °maud 1twId) ¢ °ON @ e °OJud LTnI7 0 ow OM|nd ATHI9 08 °ON 
uym07 208 fWND) = ded) = aMOT og SSVIDe -g °wN9) 8 «9°8384 8 =89m07 2 fund )«=—° ad) = MOT eSSV 4 
s t 2 s 2 Cy 


B3ILVM HOD °OW 3W9HLX9 @ HFLVM HOTH “OW 3WdHLNF 


*1a3a {ne°t 


teecses 


VSVIV *HOGHVH HILNG 


e0S-d 9T9eL 


2 49LVM MOT °OW BW94Lk9 © HFLVM HOLM “OW Jwayind © 
J9NVe TNHNTG 341 d1VH AG GIZPIVHHON Juv S1HOTIH 17¥ SNMOHS TWAUMZINE SSVI 40 ATWIT 4aM07 


NOTLINN NOTANGTaLer 


315 


LUwER 
LIMyT 


1.9002 
1eS34o 
1eS2ii 
105075 
104939 
104803 
1e4507 
104531 
1od395 
104259 
1e4;23 
1.03988 
103852 
Le37i6 
1.03580 
1oduau 
103308 
1o3172 
la3030 
102900 
1eByou 
102029 
1oau9y 
102357 
102221 
102085 
1e1949 
101613 
101677 
10154) 
101405 
101270 
1o1134 
100998 
100662 
100726 
100590 
100454 
100318 
100162 
100046 
09911 
09775 
09639 
09503 
oO? 
09234 
09095 
04959 
08823 
08h 
08552 
o8uleo 
08260 
04,44 
08008 
oVa72 
07730 
07600 
oTuou 
07329 
07493 
07057 
0092) 
00785 
26649 
06513 
00377 
0024} 
06105 
05970 
oSaSu 
036098 
05562 
oSd2o 
05290 
09454 
05018 
04882 
04746 
o4olt 
04475 
04339 
04205 
0407 
0393) 
03795 
03659 
03523 
03366 


6 eeeessee 


PREG, 


00002 
00002 
00003 
000000 
00008 
00003 
200002 
00015 
00005 
00008 
0001) 
00008 
00014 
e0udt 
00017 
00018 
000382 
0005) 
00054 
00086 
00056 
00044 
00002 
000Su 
00075 
00054 
00083 
0008s 
20072 
00059 
00084 
00107 
00325 
00120 
00102 
00153 
00149 
00135 
00104 
00176 
00159 
00182 
00183 
00185 
oO177 
©0200 
00185 
00164 
0020) 
00194 
00192 
00200 
00186 
00194 
o02@2u 
00233 
00206 
00182 
00192 
00186 
002alo 
00200 
00177 
00186 
00170 
00186 
20176 
00158 
00179 
00159 
00132 
00117 
00146 
00120 
0122 
00120 
00099 
00105 
00086 
00095 
000% 
00084 
00060 
00031 
00065 
00056 
00060 
00044 
00045 
00041 
00053 
00050 
00029 
00C17 
00027 
00032 
00026 
00024 
00011 
00006 
00u03 


HIGH WATER ) 

8 

LOnER FREQ, CUM,® 

LIAIT FREQ,® 
eeee Seoooecegvese 


1.9402 
1.9313 
1oS1da 
1.49795 
1.4808 
104636 
1.0467 
1.4298 
1.4129 
1.3959 
103790 
1.3621 
1.3452 
1.3262 
103143 
102944 
102775 
122606 
1.2436 
1.2207 
1.2098 
101929 
1.1759 
101590 
401441 
101252 
1.1083 
1.0943 
1.0744 
1.05795 
100406 
100236 
1.0007 
29898 
09729 
09500 
09390 
09221 
09082 
08885 
08713 
06344 
08375 
08206 
28036 
27607 
07698 
07529 
07300 
07190 
07021 
06852 
06685 
oOS13 
06344 
0175 
06006 
05839 
05667 
09498 
05329 
05100 
04990 
04824 
04052 
o44Gy 
o43ia 
o414u 
03978 
03806 
03637 
23407 
03298 
03129 
07960 
02790 
02621 
02452 
02263 
o2ijg 
o1944G 
01775 
01606 
ol 437 
01267 
01098 
00920 
00760 
00594 
00424 
0252 
00083 
200066 
200256 
@,0425 
©,059u 
600763 
©0932 
01102 
e271 
@o1440 


00001 
00008 
00001 
00008 
00008 
00003 
00006 
00003 
00008 
00008 
00038 
00008 
00013 
0008) 
00034 
00032 
00038 
00036 
00033 
00047 
00038 
200600 
00048 
0005S! 
00088 
00074 
00085 
0010) 
00101 
00108 
06103 
00130 
001i? 
o01s? 
00129 
00145 
00139 
00142 
00126 
00140 
00138 
00159 
0016) 
007d 
00196 
00189 
00161 
00172 
001% 
ooast 
00178 
00191 
00208 
00198 
00192 
00232 
00239 
00178 
e02lo 
00214 
00208 
00203 
00233 
o02eu 
00237 
00207 
00185 
00185 
00197 
00104 
00103 
00148 
001582 
00105 
00148 
eolas 
00186 
00120 
00090 
00095 
00068 
00060 
00009 
00047 
00042 
00034 
00037 
00029 
00022 
00059 
00018 
00015 
000160 
000135 
00038 
00009 
©0008 
00007 
00007 
000028 
00003 


000018 
000028 
000058 
000048 
000068 
000098 
000158 
000188 
0002oe 
00051° 
000024 
000sie 
000059 
000668 
001208 
001See 
001eee 
0225° 
00a58e 
00305e 
o0S4Se 
004039 
004d1% 
005026 
00500% 
000348 
0o7e20® 
008219 
009229 
ofos0e 
o113ae 
olause 
ei 300% 
of 4o7e 
of020% 
oi?7ae 
o19ise 
0a093e 
oai79e 
023199 
o2u77e 
020378 
027988 
oao7ie 
031088 
033579 
035188 
036908 
o 38079 
040978 
o4a7se 
o44ooe 
o4o7Ue 
o4A7ae 
050648 
052968 
05515° 
056948 
059308 
061249 
063319 
o6SSue 
0O7479 
009742 
071885 
073958 
075804 
o7 VOUS 
079028 
08140% 
083098 
084578 
086099 
087748 
06921% 
090464 
091728 
092928 
o93b2e 
094776 
095u58 
090058 
09654e 
o9701% 
o9TUSO 
097778 
098146 
o9buU se 
098059 
0986ue 
099024 
099370 
099558 
099468 
29964u8 
099728 
099604 
099678 
099949 
199978 
4000008 


Table B-50b 


LOmER® LIMIT OF CLABO INTER 
STaneMintan Ran I ue VAL OHOWN, ALL HEJGHTO ARE NORMALIZED BY HALP THE OJUANAL RANGE 


HOURLY VALUED @ 
8 
Lower FREQ, Cun,@ 
GUMIT PRE 
SOSCoOSo OSE DOOONS 

41,9462 00000 000008 
109110 00000 200008 
104738 00000 000048 
1.4305 00004 000029 
1.3993 00002 000048 
1.302) 00003 000078 
103248 00005 e00lae 
1.2876 00009 000248 
1.2504 0001a 000338 
4o2%hi 00017 000508 
401759 0022 ,o00728 
101367 00026 200908 
101014 00038 001368 
1.0042 000409 001858 
41,0270 20056 e02uye 
09898 00072 003159 
09525 00085 004008 
09853 00094 0049u8 
06784 00110 000048 
04408 00124 007288 
08036 00140 00078 
07004 00148 410158 
0729 00166 011818 
06919 00186 of3078 
90547 00192 015598 
06174 00808 017078 
05802 00221 019898 
05430 00235 o222e38 
05057 00247 o24708 
04085 ©0260 027308 
04313 00264 o299u8 
03940 ooeve 032008 
93508 00283 035498 
031% 00276 038259 
02623 00277? 041028 
02454 00268 o43708 
02079 00263 Hose 

01706 00a4s 

oidda 00¢26 

00962 =o 0218 

205980 00208 

002k7 00386 

©,0155 00184 

0/0528 00175 

©,0900 ce? 

e,i272 00163 

201048 00149 

2017 + =o0kue 

2.2389 =o 0194 

00430 

00129 

00123 

e0l2e 

OOo ee) 

00346 

00106 

oOlia 

00104 

00104 

00400 

00096 

00098 

©,7602 00092 

2.7974 00096 
2.8346 00090 852° 
ee8719 00093 86558 
2,909} 00088 Oe 
2.9463 00090 ,883u8 
2.9836 00085 89198 
21.9208 00082 90019 
21,0580 00082 090838 
©$,0953 0008) 091058 
2101325 0076 92408 
2151097 00072 093129 
1.2070 00069 093828 
of ,2u4e 00068 094498 
e1,2014 00060 095108 
01,3187 00062 095718 
21,3559 0005) 096240 
01,3931 00082 096768 
21,4304 10046 97228 
21,4076 00042 097OU8 
21,5048 e006 097998 
©1552) 00033 098358 
01.5793 00030 098628 
21.6165 00027 098648 
©1,6538 0022 99118 
21,6910 00019 099308 
21,7282 00017 099N78 
21576055 00034 499618 
#1,80a7 00058 099728 
©1,8399 00007 99798 
©1,8772 00007 099868 
o1,9144 00004 299908 
21,9516 00004 499938 
21,9689 0003 299968 
2,026) 20002 99978 
22,0033 00001 099998 
©2,1006 00008 $,00008 
22,1376 00000 %$.00008 
22.1750 0000 1,00008% 


316 


L 
Lower 


01.0048 
@),0373 
0100098 
21,1023 
153348 
e1 01073 
©451996 
eleeses 
0402649 
©$,2e974 
0403299 
eloso2eu 
0153949 
eloda7a 
01,4999 
oho492u 
elo R49 
o4.9574 
©1,5899 
©) ,0224 
©1060549 
©} ,0074 
2107199 
e4,752u 
e1,7849 
0106175 
©1,8500 
©1,6825 
@1.9150 
21,9475 
21.9800 
22.0125 
©2,0450 
2200775 
22,1100 
2.1425 
22.1750 


Ow WATER 
PREO, 


SOOCCCOOO OS EOOEOOEED 


00008 
00001 
00008 
00006 
00007 
00010 
00014 
00024 
00020 
00022 
00024 
00036 
00045 
00052 
00056 
00062 
0070 
0000S 
00073 
00098 
Olt? 
00119 
00129 
00138 
0015) 
00147 
00170 
00170 
00163 
e017? 
00148 
00173 
00176 
00140 
00140 
00144 
00139 
0014) 
00132 
00117 
o0sa3 
o0ted 
00198 
001400 
oO117 
00096 
00105 
oOlal 
00440 
e012 
09106 
00105 
00109 
041d 
00117 
00103 
00106 
00103 
00114 
00129 
00120 
00140 
o01d2a 
00137 
o0j4d 
0015) 
e0137 
00142 
00177 
o0lod 
00109 
00178 
00459 
00164 
00165 
00559 
00154 
00136 
00130 
00138 
o01S6 
00116 
00137 
o01al 
00100 
00089 
00073 
00085 
00066 
00048 
00043 
00045 
00026 
00023 
00020 
00012 
00008 
00012 
00003 
00003 
00003 


$0043 PEET, 


000018 
000048 
0000Ge 
000000 
000478 o,2080 
000278 o,2479 
000438 o,3078 
0006058 «,32%o 
0008648 eo, 3u7S 
001008 Jory 
003308 


21,0026 
@1,0625 


©1,1016 
e1.20i7 
©1,2215 
e1o24su 
1.2012 
1.263) 
°1,3010 
21,3208 
o1,3407 
21,3000 
21,3804 
©1,4003 
ei) ,4202 
04400 
04,4599 
01,4798 
@4,49% 
21,5195 
©4,5394 
21,5992 
057%} 
21,5989 
@1,6168 
©10367 
@4,6585 
01,0764 


o49778 
250868 
051998 
ed3108 
054218 
055278 


077909 
079008 
081258 
62848 
264360 


24,7976 
106175 
24 49373 
01,6572 
©1,8770 
21,8909 
01,9168 
24,9366 
21,9565 
©1,9764 
©1.9902 
72,016) 
22,0360 
22,0558 
©2,0757 


©2,1750 


LOWER Lom wavER 


PREG, Cua, 
FROG, 
SCoooocones 
00008 00002 
00008. .0003 
00003 00000 
00002 00008 
00006 0008G 
200014 00027 
20000 §=, 0033 
00018 00004 
2000289 00072 
00023 200095 
10033 =, 0428 
00027 00455 
c0030 00392 
200042 o0edu 
00007 00284 
20003 00344 
20068 00432 
00074 90486 
00066 00582 
00075 00027 
00097 00724 
00060 00804 
20090 00694 
00109 03003 
00309 §=yiite 
00189 olass 
00805 ol ¥s2 
00413 of Gus 
00108 01549 
00330 01079 
20000 01708 
00345 of 693 
0083) o2044 
00sau 02167 
0033) 02299 
00831 0@430 
00565, e202 
00458 oa7Ti 
00857 02928 
00128) 03048 
0039) 03199 
00450 03357 
00103 03520 
o01re 03092 
60158 3854 
00106 HON? 
001d 04384 
00399 04300 
00198 04978 
00205 04783 
20179 04902 
00190 05152 
20184 «© S330 
20205 05544 
00190 05739 
00109 05908 
00207 0618S 
00387 06302 
20184 6486 
c017TS =» 6064 
00372 00633 
2020) 07033 
00345 07170 
00106 =n FUG 
00360 07510 
00170 07080 
00340 07624 
00170 07994 
00140 08337 
00136 08273 
00842 08415 
00142 06557 
001So 06092 
00424 08836 
0032) 08937 
00107 09044 
90084 «9428 
00067 o921o 
00083 09299 
00hto 09415 
00078 09493 
00050 09549 
00060 
200059 09000 
200044 09782 
00060 09772 
00032 09804 
50033 9637 
70029 «= 9866 
000284 09890 
0002) = 9914 
002) 09932 
00038 09943 
00008 09950 
00015 09905 
00037 09962 
00003 09989 
40005 «©9980 
90003 09992 
10002 9994 
00000 00000 


MHHW 
MHW 


i ANAND na AAMAS 
eT 


N TRA 


MSL 


MLW 
MLLW 


MHHW 
MHW 


MS 


ce 


MLW 
MLLW 


HOURLY TIDE “HEIGHTS 
SWEEPER COVE (ADAK ISLAND) ALASKA JANUARY 1973 


Figure B-5la 


Equivalent Gaussion 


Distribution 
x Hourly 


cS 
0.01 0.1 -30 -20 10 -o 50 a 90 20 30 99.9 99.99 
Diurnal Range = 3.89 ft 


Figure B-51b 


Extreme Monthly LW 


3) 1 


SN EER ERS COVES  ALASINA 


12345678910 jie 64 69 74 719 
MONTH OF THE YEAR YEAR (1969-1981) 
HIGH WATER 0 = maxinun @ = NEAN HIGHER X = MEAN 
-0 e 3 ; 
Stain aioe ae ia aie 


Powe cenee ceo (coe 


x 
x~*xxx~ X 


x x x x x 
12345678910 je 6 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER em =wnean © = MEAN LOWER X= MINIMUM 


123456786910 12 64 69 74M 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE © =} owrnat tive © = MEAN TIDE Xe STD DEVIATION 
x 
0.0 x be Sage XKKKKKXKKKKKKKKKK KX 
Xxx xXx X 
' 12345676910 i2 6H 69 7N 719 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-5lc 


318 


0000°! nnoo® @s62°ze 20000°S nnoo® 6tn9° 
9S806° 0000® afe2°2= 29566" noo? nns9® 
9806° 00008 €n42°22 w2ho6° 0000° 6999° 
9506° 0000° an92°28 e2366° 0000° £649° 
9566° p00? Nose°2® #2166° 0000° at69° 
etoo° noo? O9n2e*22® a2166° 0000° {n04° 
8996° 0000° S952°22 a2toe® 0000° 49t4° 
0996" 0000° tL22°2e w2too° 0000° 262k? 
8996° 0000° 9Lt2°25 w2t6o° gg0o0° Ltn? 
9996° nn00® 2902°2@ «gz206° zgto° Tnsa? 
Szgo° mno0® Leet 2=® 9f696° nnoo° 9994° 
tee? 0000° feet *2e wendo° nn00® Tel? 
Se.6° noo? @641°22 25096° noo? Stoa° 
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s 
8 
CLAgSe 
8 


LOweR 
LINgT 


128886 
128706 
108520 
108345 
108,05 
107985 
107805 
1oTo2S 
1o74us 
1e7264 
1eTo84 
1206904 
Loeo7au 
1e@544 
Leeayou 
106,83 
106005 
109825 
105043 
1o0Su63 
1052483 
109103 
1.4922 
Led7ug 
104562 
14382 
104202 
1e4o22 
1o3auy 
1o$66) 
1o3uby 
10330) 
103121 
10294) 
1oa76} 
102560 
102u00 
Lo22eu 
102040 
101860 
1ot680 
101499 
101319 
101139 
100959 
100779 
1,0599 
1.004u19 
100236 
100056 
09878 
09698 
09518 
09338 
09457 
08977 
08797 
04617 
08u37 
08237 
007% 
07896 
27716 
07536 
07356 
07176 
00996 
06815 
06635 
06455 
00275 
06095 
05915 
03734 
05554 
S374 
03494 
oSyid 
04834 
04654 
04473 
04295 
e415 
03933 
03753 
03573 
03392 
o32i2 
o3032 
2852 
o2072 
02u9a 
e232 
02134 
01954 
01774 
015% 
elail 
of231 
«1050 
20870 


FREQ, 


00002 
00008 
00003 
00008 
00006 
00005 
20006 
©0003 
00008 
00008 
20009 
e001) 
o001d 
00012 
00012 
00017 
00026 
00024 
00015 
00024 
00024 
00U34 
00038 
00035 
00038 
00034 
00064 
00049 
00064 
00082 
00070 
00067 
00084 
00086 
00085 
00090 
00113 
eolle 
00122 
001135 
00138 
00124 
00157 
0193 
00137 
00160 
00139 
00180 
00483 
0073 
00173 
00180 
00382 
00182 
00308 
00168 
00194 
001% 
00194 
00194 
00196 
00226 
00195 
00219 
00194 
00218 
00206 
00212 
00197 
00197 
00173 
o0R14 
00174 
00183 
o017S 
00194 
00146 
pia 
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e013Sa 
00109 
00122 
Ou i) 
00118 
00099 
00079 
o0lle 
200079 
00069 
00086 
00052 
00045 
00047 
20050 
00046 
00032 
00026 
00016 
00014 
00009 
00005 


8 
CUM,8 
FREQ,@ 


000088 
000058 
000068 
000098 
e0014e 
000186 
000246 
00028e 
200358 
0004)e 
2005Re 
000638 
000708 
200898 
001018 
001188 
003due 
001650 
001808 
002058 
008208 
202008 
o0a9ee 
003330 
o0371e 
200059 
004608 
005196 
eO%Voo 
000280 
200986 
o0Tboe 
008u78 
00%3as 
o1015e 
ollo3e 
ol@i7e 
ol S2be 
o14Sge 
olSode 
ol701e 
016250 
01962e 
021350 
022930 
24530 
225948 
027729 
029568 
odi29e 
o35018 
o548ge 
30656 
o3bUSe 
0401 5a 
041 6ee 
oU373e 
045086 
047688 
o4fS3e 
051uge 
oS57$8 
255688 
057660 
059808 
061908 
064026 
060156 
008129 
070098 
oT16ae 
073958 
o7S6TS 
077508 
079238 
efi jae 
of2o28 
o64iee 
ob d330 
o8oole 
087708 
06 H988 
90108 
091350 
092330 
095128 
o9U2ue 
095030 
298726 
090558 
0971086 
097548 
098008 
0965us8 
298968 
099288 
0995ae 
299728 
o99Aoe 
099958 
1.0000¢ 


HIGH WATER 


LOnwER 


FREQ 


00011 
00003 


Table B-51b 


LORER LIMIT OF CLASS INTERVAL BROWN, ALL HEIGHTS ARE NORMALIZED BY HALP THE DIURNAL RANGE 
HIGHER HIGH WATER e 2 


8 HOURLY VALUE® 
8 
CUHe® LOWER PREQ. 
LIMg? 


1.8886 
00008 14,8468 
00000% 14,8049 
00008% 14,7634 
00010" 43,7213 
000168 43,6795 
00089 43,6377 
e00a6% 34,5959 
00032 34,5540 
000399 43,8422 
000508 4,4704 
00089 34,4286 
00070 41,3668 
000899 4,39450 
00106 43,3034 
001199 4,2613 
00139 49,2195 
oOlOl® Yos777 
eO167% 4461359 
e0as3® 14,0940 
00244 34,0522 
00275 4,0104 
00319% 09686 
003028 09208 
004319 208850 
004598 06434 
00S13% 06013 
oOS71e 07595 
006488 o7hT7 
007168 26759 
008018 ob S41 
008968 05922 
0099ue 05504 
030888 05086 
of 19ue 04608 
of3i3e 04250 
014558 23631 
039708 e343 
016898 02995 
010199 §= 2577 
01905e 02159 
021088 0174) 
o2253e oi322 
024068 20904 
025748 00486 
o271o8 00068 
02847% @,0350 
03009® 00,0768 
05178 09,4187 
03352% 0,1605 
o3523¢ 0,202) 
03721 w,2hdy 
03900% 0,2859 
04104% 59,3278 
04302% 0,30% 
04499% w,uiia 
047018 o,4532 
049068 ©,u4950 
05107% 02,5368 
05302 0,5787 
064928 02,6205 
0$0629 2,662) 
05856% 06,7041 
06060% 07459 
06a35e 
063998 
065968 
0676068 
06947e 
o7149¢ 
073308 
o7S11% 
077109 
078628 
080769 
0826039 
084559 
066158 


087098 03732 


o{,8750 
09168 
09586 


02514 


400000% o2,2932 


Soeoesoess 


320 


e LOW WATER LOWER LOW waTER 
® ® 

CuM,% LOWER FREQ, CUM,® LOWER PREG, TUM, 
LIMIT PRE LIMIT FREQ, 
Sooeeeosoaeoooeseces SHoeeecoresessvccssy 
1oRo34 00001 00008 00002 
1.2278 00002 200002 00003 
401922 0003 20006 §=,0008 

101567 0005 00008 40017 

Loi2it 00008 00003 0020 

1.08655 0004 20014 90034 

1.0800 00013 00080 00050 

400144 40005 00035 2008) 
09788 00007 20027 00108 

09433 = 0010 00033 =, 04 Uy 
09077 90040 200045 90386 
08722 40032 20042 40229 
08366 ©=—, 0017 00050 0279 
08010 0015 00007 90346 

07655 40033 20055 =, 0404 
o7P99 =, 0029 00077 =, 0478 
00943 40026 00067 40545 
00588 00050 00055 20000 
06252 00046 00075 00075 

od876 00042 000% 0077) 
05521 20060 00092 «40863 

25165 0058 200307 ,0970 
04809 0008 00078 «41048 
04454 00076 o0iau olla 

04098 40090 00092 =n h26 

03742 20091 200097 ol3o 

03387 =o 01 16 00310 «=o L 477 
05031 00110 00128 = 1006 
o2b75 = 0117 00124 = S729 
a2320 =o 0148 00125 41855 

0964 00104 oOSS5. 01966 

01608 0124 cO110 =p 2070 
o1ass 00140 00330 02185 
200897 =p 01.26 00346 42329 

0054) 00136 o032) 02430 
00166 §«40125 0014S = 2592 
o33S6% ec0170 0151 o0127 =o 2719 
00115 eOl22 92844 
00125 0133 = 2075 
0010! 00156 = S112 
00122 00327 93239 
00136 00330 =. 3309 
00140 00177 o35u6 
0014s 00879 «= S725 
00120 00158 »3663 
00134 00352 94035 
00133 o0S72 = WOT 
00158 035408 of ,i213§ 00179 04386 

00120 00205 94594 
0012 00205 04790 
00140 00157 04953 
00135 00155 95308 
00120 201% 45504 
20123 20210 5520 
00133 00202 S722 
00140 20207 45929 
00134 204380 0611S 
00149 00394 06310 
0013) 0022) 06530 
0014? 00239 0750 
00144 200204 ,69S3 

00134 955848 01,4309 40224 o7ITT 
001U2 = 5525% ©1,4530 90396 o7373 
20143 96668 0f,475) e0fee = 7538 

00181 0d8498 of 4972 00492 07690 
00187 060358 of 5193 00175 07605 
0172 962078 ©f,5414 .0J0S 8028 
00170 ©1,5635 00144 06472 

00227 01,5056 00360 08332 

00173 ©1,0078 ,0§)S2 8484 

00188 21,6299  .0\44 8628 

09033" 152618 0220 150520 e040 98773 
091238 152973 20210 1,074) 00330 98904 
o9als® e1od329 40199 150962 40S10 09019 
092928 23,3685 00221 e1,7s63 00308 09128 
093708 ©f,4040 0213 1.7404 ,0085 921) 
o9UU98 144396 20227? o8260% 04,7625 4,009) 09504 
095208 ef ,47S52 00106 o84326 of, 7646 00069 OL) 
095868 0165107 00166 085978 01,6007 00080 09450 
09647% of ,S40S 0170 01,6269 ,008) ,9530 
097048 1.5819 60557 ©128510 »000® 9604 
097508 efc0174 00158 090058 04,873) 0004) 09044 
097928 01,0530 90148 .9a3S® 01,8952 0007 9712 
098329 01,0886 0126 93588 o1,9173 50030 9748 
00108 94668 01,9394 4,004) 09789 

20093 095598 01,9015 20030 a) 

000683 20026 «=, 9BUG 

00072 00019 09605 

099508 1.8664 000! 20025 99890 
0990S$% ©1,9020 20084 20022 09912 
099748 ef ,9375 60037 20013 9925 
099849 of 9731 20033 02,0942 20020 09945 
099868 22,0087 10018 2.1163 .0033 99956 
299908 ad,0442 90026 2251584 60005 49962 
2099948 02,0798 00021 22.1005 00085 09975 
099968 o2,1154 000138 ©2,1426 00006 09985 
09998 22,1509 00005 099619 ©2,2047 00006 29989 
099998 32,1865 00010 099919 02,2266 90003 09992 
20000% e2.2220 60005 699968 22,2499 40008 49995 
200008 22.2576 0002 99988 ©2,2711 0002 49997 
00000 e2,2932 90002 4500008 92,2932 ,0005 14,0000 


$00ud FEET, 
8 


26 
‘ HOURLY TIDE HEIGHTS 
MASSACRE BAY (ATTU ISLAND) ALASKA JANUARY 1973 


Figure B-52a 


Equivalent Gaussian 
Distribution 


Extreme Monthly LW 


0.01 0.1 -30 -20 10 -o 50 0 90 20 30 99.9 99.99 
Diurnal Range = 3.41 ft 


Figure B-52b 


321 


MASSACRE BAY. ALASKA 


12345678910 le 64 69 74; 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER o «maximum © «= EAN HIGHER X = MEAN 


12345678910 12 6u 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER © = MEAN © = MEAN LOWEA X= MINIMUM 


12345676916 i2 64 69 74Y 719 
HONTH OF THE YEAR YEAR (1963-1981) 
RANGE .® .- ownrnat tie © = MEAN TIDE Xe STD DEVIATION 


KKK KKK KKK MK KKK KK KK 


12345676910 12 6H 69 7M 79 
MONTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-52c 


pice 


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9506° 0000° 9¢£2°22 29566° 0000° 0¢09° ee 

9Se0° 0000° tH22°2* 29G60° 0000° Ant9e af 

9S06° 0000" dnt2°22 29566° 0000° n9z9° en 

9S66° nnoo® £502°22 99566° 0000° tere? eS 

C AY Yoo 0000° 6563°22 99G66° 0000° @on9° 29 

900° nat ?*2e e9566° ae@00° §199° wd 

0000° OLLt*22 wagge° 0000° 2£49° 08 

0000" 949%°22 99996° 0000° 6ne9? 26 

pnoo® Tast*2= s99ne° 0000° £969° 208 
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noo? fort 2s etgse° 900° bots? ezt 
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poo? no2t°*2e e4ng6° 2cto° tance ant 
0o00° OTtt*2s satse® 9e00° 0ss4° ast 
£920° 9t0t°2e e0sne° 700° 499L° a9t 
9900° $2600°28 s99f6° @900° ec? ait 
0000° 4290°Ze eg626° £920° foed® eet 
9900° {£L0°2" aS506° 0000° atoe? wot 
0000° 6£90°2* eS5506° 0000° ncte® 902 
on00® ng0°Ze 2S¢06° agto® toae° at2 
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noo? €400°2* s6g2e° ot2o° 9g09° 292 
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9900° 9696°T® annsd® 2ato° f0f6° e0f 
2e99° pnco® 2096°S] eztne? 990c° O2ne° abt 
Sito® 40S6°t® aseec® n0o® 4£S6° 22f 
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9900° O¢to°te ef299° @sto° $000°S w#9¢ 
$4to° 9f06°%® aton9? 2gto° zZato’l west 
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G.t08 Latette 9900° MLttet 29n 
40<0° £60a°te £920° te2tet ehh 
@800° o66d* te £920° aont*t sen 
zeroe n06d°te @tzo° m2st*s son 


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eot2s? ge00° OfLL°%2 atoog? 600° 9222°t 35S 
e2ess® 40f0° nned?te epyog® 700° _fnfe2et 29S 
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oL9tn® sitoe 4999°3e sonag? S4t0°® osez*s 209 
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anger? oLto° 6499%te Moo? nn0ges #29 
2605f° nnooe® nasrrte mn00® Tolget a9 
a5onge g4toe Oond®te noo? gaeget en9 
eoger? 9g00° 9609°T® 6192° S4to® Sofees 299 
a202et? 6t20° 20¢9°t=> #00g2° ago? 2uSces 299 
22902° £920° 4029°S2 aatne? 0000° 629¢°s 249 
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aS292® e900? ot09°te es2g2° 7n0o® 299G°S 209 
gage? egroe N2oS°te ale2e° ob2oe O46G°s 202 
ag9gne® 700° Ofes°te ai902° 0000° 96%°s abd 
e2tnee glsee 9f45°32 at902° 700° Cbenes 222 
eif22" of20° @nas°te egtoe® 9900° Ogtmet e£4 
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2499t® sltoe M92S°t= a6Egt® ectoe Qbdn°s wad 
atent? et20° OLtS° t= an0nt? 640° Stopes sed 
eelet? 0000° 9L0S°te wg2et? 0000° TeOges mod 
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angtte acto? 4een°te wdntt® @900° s9es°s #9 
acsote @900° foan°te afsor® 9@00° 2efs°s s2e 
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2t200° pnoo0® pogn?t= 069602 @900° 919G°t ane 
2LL00° egro° OTSM°te e1400° 0000° qg4s°s | #S@ 
29740? @900° Qtnnete e4180° 2ctoe oses*t 299 
208S90° zqroe @2gn°te sonl0® @900° £966°S 249 
29260° 0000 d22n°te egse0® ectoe ne09es age 
292508 0000° ELtnete ad2g0° nn00® 0029°S 268 
#92609 7700? ef0n*t= s2gn0° 9900° 4tf£o°s 206 
229n0® 2G50° Snot*te egeso? nn0o® ngneet eto 
atsfoe 0000° OSGef°te sisc0° n00® 3sS9°s) azo 
absrtoe ppoo® 9$40°bo w4060° 0000° 9999°s 2£6 
aL0€0° g@00° 299f°te2 w40f0° noo? Ga49°s an6 
aoteoe 2atoe 495E°T® ef€920° 00002 2069°3 #S6 
#99009 0000° fdnf°te #6920° 0000° 6t0a°s 296 
#9900° 0000° O4Ef°bo ef920° 000° ogte*s 246 
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annoo? 00008 Oore?*te mot2o® @g00° O9£2°% 466 
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8 e ® ry] 8 r 
@ B9LVM MOD °OW SW9YLXS 29 YILVM HATH SOW 3W3YLXFI @ r a YILVM MOT °OW 3W39YLxX3 w YILVM HOTH OW IwdMLXd @ 
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Teerset (18ST ALLY) VHSVI¥Y “Ava JudVSSYH NOSLINNS NOTANelylsta 


eccs-d PTdeL 


323 


° MIQOHER HIGH WATER 9 HIGH WATER 
8 e 
CLAgss8e LOwgeR FREQ, CUM.® LOWER FREQ, 
NO, © LIMyT FREQ,® LIMIT 
SSSSSSSSSSSESSSHSHSHSSSSSSSSHOSSSHHS HHH EE SSHSSHSSSESSES 
foie te%eod 0000) 000038 $7003 00003 
1008 {tefudy 2000u 000008 41,7435 00003 
99e 107283 10004 e001V@ 4.7226 0002 
98e 107122 060006 c0010% 157034 0005 
97s 100962 20006 e002de 4,o8uu 20008 
968 106802 00004 c0027% 4.6654 40003 
992 106642 10004 0031® j4ee40u 0008 
Que {e6u84 e0u0u 000308 1 ,6275 00003 
Q3e 15632) e0U0u 000408 14,0085 09009 
Q2e 10161 20012 0005d® 34,5895 00012 
91% 106000 00010 000603 1.5708 20009 
908 1,596840 20022 ,0085® 14,5515 0007 
898 105640 o0012 000978 43,5326 0018 
B62 165519 00018 001099 465156 00013 
87s 1055599 00015 eOl24e 4 ,49ud 00019 
Boe 105199 c0019 01448 444756 20084 
6Se 165039 20016 001608 14,4566 0048s 
Bue 104878 00028 001898 164376 00026 
B3e 104718 00024 eO213® 14,4187 00022 
B2e 1.4588 ,0039 402528 14,3997 0020 
B1e 104397 20040 02928 1,380? 00032 
808 104237 200028 003218 153617 00029 
798 104077 00027 005488 14,5427 00086 
78e 103917 10039 o09876 34,3238 20081 
778 e3S7%6 00058 eO4US8 4,30u8 00037 
Joe 103596 00037 004828 14,2858 00044 
730 jo3use 00042 005248 1 5e60AR 00052 
Tus 103275 00057 00561e 14,2478 00008 
7T3e 165415 00064 006438 14,2289 00097 
722 102995 20097 007008 1.2099 00103 
71% 102795 0070 007708 451909 0078 
708 te@eya 00079 00B50G 101719 00097 
6% 16au74 000% 009490 151529 00087 
68% 102314 20085 oFOSL8 104359 00125 
o7e 108353 oOLi? 011488 1.4150 00126 
668 101993 00130 ol27Be 34,0960 00105 
o5e 161833 00123 of601@ 3.0770 00092 
o4e folo7s 00117 o1S168® 14,0560 00083 
63% 1ol512 00139 016578 34,0390 20086 
625 101382 00174 018288 34,0201 00102 
O18 101192 00157 of9865% 14,0013 00106 
608 telo3! 00160 o2)4oo 09824 00108 
59s 1.087} 00129 22e74e 29631 00103 
582 100711 00109 23840 o9Uuy 00104 
S7e 1200530 00129 025130 09252 00119 
S68 100390 0099 oa@bies 29062 0116 
558 100230 00335 v274ee 08872 ©=o012? 
S4e 120070 00148 026939 08682 00152 
53e 09909 c0112 od0078  ,849R 0159 
Sas 09749 00130 oS idue 08302 00148 
Sie 69989 .0112 »3a50* 8133 0176 
Soe 09428 00132 033860 07923 00180 
49s 09268 00154 o354a8 07733 0017S 
ubs 09108 00162 oS V0Ue 07543 00182 
ays 08946 00139 oSbo3e 07383 00104 
uoe 08787 =6, 0183 =n 40108 = ag FHO4 = 0206 
a$e 08027 =94 0189 =o 4204S = gH 9VKU =n 0206 
aus 08467 00202 040070 06784 00187 
ase 08306 00180 04 bBo 26594 00180 
uae 06446 20208 047956 0640u 00166 
ais 07986 o0177 049788 06214 00174 
408 07826 20207 051780 26088 00172 
390 07665 00193 o537ee 05835 00170 
3be 07505 00195 055008 205045 00168 
376 07345 00190 oS7578 05455 00191 
3oe 0384 00223 099808 052605 00106 
358 oVoRu 00219 061996 050%6 00198 
3ue 26664 20186 065848 o48BG 001%! 
330 06704 00376 ooS630 04696 00102 
320 06543 60189 6752s 24506 00200 
Sis 06383 00183 o693an 4316 eoedt 
308 e6223 «60175 =o 7K108 e4127 00208 
2%¢ 06062 00168 o7e778 03937 o0ees 
286 03902 06144 074166 3749 00253 
are 05742 =00199 89 n PSTV8 03557 = 0234 
269 05584 001354 077288 23307 00231 
23e oSu2i 00147 84 787S¢ 03177 = e244 
gue 05204 00148 ob024e 02988 00203 
ase oS 04 00153 081778 02798 00234 
220 04949 =o ON 4 083208 02608 00214 
21s 04780 00153 oSU7¥o 02418 00162 
206 04620 00136 28610 .2228 00140 
198 04459 00139 ob 7u9e 02039 00195 
166 04299 00144 oAB90e o18ug 00117 
176 04139 00116 o900K8 01659 00078 
166 03979 = 60129 VL IT8 21469 00006 
136 03616 20120 092578 01279 00055 
14s 03656 00109 095668 21090 200356 
13s 03498 00108 oI47U8 00900 00037 
128 03337 2.0082 69550% 40710 0040 
iis 03177 20086 e90USe 00520 00033 
10 e3017 20063 497088 200330 0047 
9s 02457 20064 097098 00140 000393 
As 02696 s0U73 296438 ©,0049 00038 
Te 62536 e0UUy 095860% ©,0239 0003Sa 
be 02376 60025 o991d% 040429 0026 
Se odes 00027 099349 02,0619 60018 
ds ©2055 00030 099698 0,0409 00014 
Je o1895 60019 299888 «,099R8 0009 
20 01734 20006 099900 ©,1108 00007 
1s 01574 2©0U06 1000008 o,1378 00008 


00001" 
000048 
000078 
00012a% 
000348 
00017e 
000d0% 
000859 
000528 
000K4e 
000S3% 
000018 
eocTas 
00086% 
e0101% 
001198 
005 58% 
o0loue 
00166% 
002068 
ooesbe 
002078 
o0adse 
005348 
003714 
00415e 
00406% 
005319 
00568 
006918 
007708 
00867% 
00055% 
010799 
012059 
013108 
014038 
of 4968 
01 5h38 
016858 
ol 79s 
018996 
20024 
021068 
eeeebe 
o2@Saye 
024098 
026308 
027098 
oa9yee 
030938 
o3au3e 
o3418% 
o3ou1% 
037859 
oS 9918 
041908 
043848 
04504u8 
047498 
odease 
050998 
052059 
054U6% 
o5os7e 
o5be3¢ 
06024% 
oo2i2® 
004038 
006038 
066248 
o70s28 
072569 
074698 
o77e3® 
079548 
061985 
084049 
06655% 
088u9e 
090108 
091508 
09305% 
094228 


4000008 


Table B-52b 


LOMER LIMIT OF CLASS INTERVAL SHON, ALL HEJGHTS ARE NORMALIZEN BY HALE THE OSURNAL RANGE 
° LOW WATER 


Lower 
LIMIT 


SlHeeeIeHOGSasgnesseees 


107003 
1.7203 
1.6603 
1.0402 
1.0002 
1.9002 
1,520) 
1,480! 
104404 
1.4000 
1.3600 
41,3200 
102799 
1.2599 
101999 
101598 
151198 
1.0798 
1.0397 
49997 
09597 
09196 
0879 
085% 
07995 
0799S 
07195 
06794 
06390 
03994 
05593 
S193 
04793 
04392 
03992 
23592 
03194 
0279 
e239 
01990 
03590 
01190 
20789 
00389 
2,001) 
20412 
© ,08i2 
e.iel2 
eo1o13 
o,2013 
@,2413 
0 ,28614 
o,32l4 
e 3014 
@,4015 
2,441 
24815 
25216 
2,56)6 
©,6016 
2 6417 
©,6817 
e fel? 
2.7018 
@,8018 
28418 
2, 8819 
°,9219 
29019 
©1,0020 
1.0420 
©1,0820 
ei ied 
©1,162) 
e4,2021 
e1 2422 
01,2822 
e1o3ee2 
21,3023 
e1,4023 
©1,4u25 
01,4824 
et oS52au 
ef ,5o2u 
21,6025 
©1,6425 
21,6825 
e1,7226 
©1,7626 
21,8026 
e1,6427 
1,4827 
e1,9227 
©1,9628 
22,0028 
22,0426 
22,0829 
02,1229 
22,1029 
°2,2030 
22,2430 


HOURLY VALUCB 


1.708 FEET, 
e 


LOwWER LOm mATER 


PREG, PREO, Lower FREQ, CUM, 
GInGT FREQ, 

Sooo oeeseoseeD OoSeedeogooecesoosoons 

00000 000008 398686 00001 00008 00008 
00008 000018 1.2305 0001 200000 40008 
00008 200002% 151055 0008 00005 40000 
00003 00003 101004 0008 20008 «90084 
00002 2.0008 43853 0008 20000 40017 
©0004 ,0009% 14,0002 0016 00005 4002) 
00005 ,00148 120551 00017 0000 «9 00d0 
00006 .00d0® 100800 40038 e00ld 40030 
00010 .0030% 9649 0022 20016 ,00S2 
001d o0041% 49499 0023 0001S 40067 
00014 ,0058% 9148 40032 00018 0080 
00019 000748 0997 000au 20020 00100 
00924 000988 Oe) 00028 20Ua4 00127 
00033 = =0131% 48095 0043 20029 40)Se 
00044 = =640175% 7740 40038 00026 «90384 
00053 =,0229% 47393 0042 20040 ,0e2u 
00066 002958 07043 00058 20039 00259 
20078 60373% 6692 0058 00040 = 02.99 
00080 ,0453% po3ut 00070 00040 «40339 
00086 §=640538% 65990 40000 00052 = 0394 
00092 006318 05639 00084 200060 00454 
00104 ,07348 45268 0076 00078 40529 
oot 008458 4037 00104 00078 00007 
00125 009708 04586 00099 00086 00093 
oOLS9 = =of110% pHado 0093 00084 40778 
00155 o1265% 23685 00103 200080 00897 
00165 «6614308 3534 10108 00120 90977 
00183) =o hO13S = BLBY = ONL 00403 91080 
00397 o18io0e 02832 00149 00420 03200 
00193 02003 oadbi 00153 ee ery es 
o0ei) o2@2148 42130 40189 00327 = 1440 
00ai19 o2usye 01780 o0fo! 00100 01546 
©0430 02b0u9 142d 00106 o0ise 01078 
00a@34 28988 41078 .O01%a 0034S = B24 
0025) o3149% ,0727 10165 00326 =p 1947 
00272 «= BU21% =, OS7G ©=—«_ 0 01 SB 00327 = =,2074 
00285 «43705% .0025 0148 00320 92394 
00a99 =, 40058 00143 00156 92550 
00298 43028 00132 00340 = 2490 
00282 =, 4S Bue e012 00150 92640 
00267 re 00123 00359 02795 
002u8 00137 00150 8 ,2949 
00229 00120 001d 03109 
002th 00408 00155 oSdou 
00a03 00125 93798 04,0894 00157 «=p BUOY 
00192 00098 «4 3897% 01,0807 ,0158 43599 
00182 00428 ,4024e ei,crdy 40169 43748 
00174" 00102 941208 04,094) 50383 43930 
00167 oO1kt 101356 00196 04128 
003ue 00415 ®10137S 00300 W287 
06146 00430 01,1595 00189 o4b%e 
00340 00127 «645899 o4,1808 0238 4714 
00335 0012) 047108 ©1,2025 0230 4950 
003382 20315  4825% ej,geue2 0215 e503 
00132 00106 «9 49S0% 1,2458 40212 45575 
0023 00413 950438 of,2075 .0e27? 5002 
e0lee 00120 «=o d163% 1,282 ,0e47 4 Sbu9 
00346 eOfeS 5265% 01,3109 ,02c29 e078 
00116 00144 54008 01,8326 0238 6515 
00410 00420 055208 of, $5u2 o02k5 06529 
00109 00118 056380 ©1,3759 200239 06766 
00100 00433 957719 Of,5976 0200 ,o973 
00305 00133 959038 144193 40195 07108 
00108 00156 60598 00164 = 7552 
0010) 00140 061798 00393 07540 
00103 00340 003199 of, 4bU5 00369 o7Tha 
00094 00146 064659 ©§,5060 00572 07886 
00093 48696 91,0852 10158 66238 91,6276  ,0187 8073 
00097 «687938 1.1202 o0176 o6799% 04,5493 0°59 ,bcu2 
00095 «= BB487® 0151553 0166 669698 01,5710  Oi?e ,84tu 
00088 48975% 101904 00210 o7179% 01,5927  OLO7 58584 
00093 090688 0492255 00198 073748 of ,0) 44 00345 obl2e 
00090 «= 94588 ef 52606 10193 o7567% 04,6300 0132  bbSu 
00086 092448 of ,2957 00205 077728 ©1,6577 e0seu 08976 
00088 093298 01,3308 00209 079838 ef 0794 00315 09093 
00080 994098 453058 0194 81758 e1,7011 0009) 09384 
0007S 094848 ©} ,4009 00193 2063099 7227 20097 09264 
00066 «995508 2154360 00166 8555 ef,74uu 40009 49550 
0006d o9612% efo4V1$ cOL63 o8697% 1,760) ,007K8 ,94a8 
0057 496698 $5062 00158 88559 61,7876 ,0074 49504 
00052 o9722% efed413 00153 490068 ©1,86095 40083 49584 
00047 497688 ef o5FoU 40190 o91588 4,631) 40048 yVO32 
00003 §=o9B11% ofo6114 50133 292918 09,0488 20043 69675 
00036 098478 ©} ,0U65 20120 094118 Of ,8745 20046 09719 
©0032 09679% 1.6816 0103 095139 21,8962 00040 69759 
00022 099028 el o71o7 00081 2095948 of ,9178 200044 0980U 
00021 099258 167818 00066 2096629 ©{,9599 0004) 09845 
00017 099408 01,7869 00064 97278 Of, 9012 20028 o9O7y 
00015 0699558 ©18220 0001 o97K7% 1,9829 ,0025 498% 
00011 999668 ©f 6571 00038 69825% @2,)048 .OUlL 09906 
00008 09975% 01,8921 00038 00016 09945 
00007 o99R2% 04,9272 0040 20009 =, 9934 
00007 o9988% e},9623 20028 00088 8649952 
00004 099928 01,9974 0017 099UT® w2,0¥15 20015 09906 
20002 099959 @2,032% 00011 099588 —2,1129 00015 09985 
00002 099969 e2.0676 00017 099758 a2,h 50 00008 09984 
00002 0999R® o2,1027 00053 0998H8 w2,tso$ 00005 09989 
0000) 099998 e2o1 377 200004 099928 22,1780 2000) 09992 
20000 $,0000% «2.1728 00003 099968 22,1996 20005 09997 
20000 $.00008 a2,2079 000% 49998% ©2,2213 0002 49998 
20000 $0000 a&@o2430 10002 3500008 e2,2430 000d 150000 


324 


p lalallala Mt. 


xl T i ner i i } ry 


NUSHAGAK BAY (CLARKS POINT) ALASKA JANUARY 1973 


NUSHAGAK BAY, ALASKA 


8 
o®n 00 o 
Bg ru] Op 


CHOOMOAMDHOOAGHAOHOBHOO 
KxXXRKKXKXX 


12345678910 12 64 69 74 79 
HONTH OF THE YEAR YEAR (1968-1981) 


HIGH WATER 0 « naxinvx @ © WEAN HIGHER X © MERN 


-0.7 


2DaomnoovoF%00 PODRO8009R aA AoA oOe 


-1,24¢2 1° 


O%>5 2H9G2HAFHHHHHHOH920000 


®o0 © 


x **Xy%xX 


123WU5678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER oenepn © WEAN LONER X= MINIMUM 


oO o 
oo : 
a) O,0°% DMMOR9VADOF0F0OMOHO8 


1.y¢2929°990 ©0008 CHHHAHAHOHHO2999R90D 


GS) 
12345676910 12 6y 69 7M 19 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE = DIURNAL TIDE @ = MEAN TIOE Xe STO DEVIATION 
i) 
0 KKXKKKXKXMKKKX KKK KKK KKK KKK KKK KX KX 
=) 55) 
123456786910 12 6 69 7 719 


MONTH OF THE YEAR YEAR (1963-1981) 
MEAN SEA LEVEL 


Figure B-53c 


326 


a 3 3}zxjgueemese  es@ees, i 


0000S sztoe S09S*T® 20000°S sato® q140°s 8 ry 

@tee° 9n00° £95S°t® aS2ee° 0000° dn40°h r a202g° gsetoe GQank°te stogn® Sato® thneet 
0996° pnao?® t2ss*te aS296° nno0o® tecoet a 292089 9@00° Mini?te sogen? 0000° canaet 
£296° 0000° Oans®*te atele® @@00° nteoet a e6f62° of20° Zork te aogtn® 0o00® o0saes 
S2ee° no0® ernS°te 2f6960° 900° engo°s e otd2° e2eso° OSEL to saath? @800° fnSe°s 
te.6° Mn00® 96£5°S® »S096° 0000° 2ee0°s 8 a9eqs2e sltoe O0£S° Se sRgo2n® @900° 44Se°t 
é£16° noo? noeS*t® ~5096° nn00° 9ta0°s 8 eetne® mod? 4928°So aftan® @900° or9ert 
fe9e° 00008 £tES°te 2t956° noo? 0560°S a 2e9f2° GLtoe S22c°to ef2tn® ohe0e on9aee 
{696° m700® teeS*ts we@tso® S.t0° neooes a afot2? Cr Cere?te wpoac? mnogo? @492°5 
6n96° S.t0° 6225°TS w2nte® £920° eroret a asote® £920° @ntecte n0ggg® 9@00° 2scees 
nane? otzo® Lets*t® 261406° nnoo® 2g01es 2 senet® @900° OOTE* Te wacac? 900° Ondart 
$20° 0000° 9MtIS*l@ 25506" egto® 9ecres a angit? @a00° wSut*te aneogé 9900° Ogd2°s 
1S26° $4308 n0ts*te anoee® 2gto° ortres 8 9499T° @900° 9TOL°T® aa6G¢° ae00? pteeet 
406° 0000° 290S°te@ e2118° 9e00° astret r eoLSte ot20° GLoe to ge0gg* 00° ene2°h 
6406° 9900° 020S°%® aneou® ezgto° datset 8 209Ete 9@00° {Coe°te agong? ertoe 2egeet 
Sooe@® aeto® olon*te efsse° 200° veers * e2cet? @g00° Voue’te sgscg® 2gt0° stoa*t 
099e° Sito® dson*t= wsone® ge00%  Ssztet e enatt® nh00® onger’te az02eg* 9900° anodes 
peog? 9700° Sean’te eiisa° noo? oeatet e eOntte zeioe GOG2*te antic? 2qtoe feos 
onee® 0000° ssen’te esece® on0o0° geacres 8 2600? noo? 9942°%° s2u62° otz20° 4roges 
Onge® G.toe ztean*te ebyze° 9900° Asit°t ry #S960° noo? neserte ef9L2° @900° to0ges 
Sone? 6.t0° O4en®t® e2020° ee0oo° Vorret 2 at2o0° noo? @eg2°te sG6492° 900° Saget 
ee2e° 99009 g2in°te antte® 0000° nents ® 4190° nnoo°? bn92°te 29962" 7n00° oles 
z202e° £e20° 9ggn°t= antte® 9e00° esntes a eff go? 9@o0° ©652°12 wnnge® 2ctoe robes 
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n0ne° 2gs0° setn’ts 24999° zsto° soet*tl eSf a oSdtoe 0000° Q602°Te® sonts® mnoo0® osscet 
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Sits? £920° fees°’te efaas° zgto° Z2ot2*s e2n s 29900° nnoo® 90gt*t= 20460° noo? 4ode°t 
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sons? £920° 4tsi°ts as09n? nnoo® 4onme°t afS r onno0® nn0o® Ognst*teo apnd0® nnoo® Totnes 
SSHSKHSHAH KK AHTAAHKA TAHA S AHHH KTH HKHS HS SSA SHAHAAAHAS ees as VERS e gages avHsHeaeaegeKsegsdseetsaesangestsaasasaseetogassesesega 
e °o3u4 dtwl)) 2 °03u4 1IWI1  « °ON @ oe °O3u4 atwid 9 °naud AHI oe ON 
e °wNd) “ead YyaMOT 8 “WN2 “*O3H4 BaMOT eSSVI3e 6 °wN9) = ° 38d) = =—aMOT 0 Oe CW) = 38d) = OT = 88899 

8 2 s s 2 8 

@ WILVM MOS 9OW 3W9HAX9 @ YILVM HOTH “OW BWIHLAT © e @ YALYM MOT °OW AW9ULX9 @ YFLVM HOTH °OW JnduLnd 2 


"Laad 279% 


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BONVH TWNYNTO 3HL 41VH AB G3ZI1VWsON Juv 
(19 $84HvV19) vHSv IV 


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SLHOI3H T1V SNMOHS TWASRLNT SEV19 40 LIWI7 ¥9"07 


NOILINNY NOTLNalalsta 


S21, 


LORGR LIMIT OF CLAO¥ INTERVAL BHOWN, ALL WEJGHTO ARE NORMALIZLD BY HALP ‘THE 
HOURLY VALUES 


cy HIGHER HIGH WATER t) 
8 ) 
Chasse Lumer Pata, CuM,e 
NO, © LIMIT PRUQ,® 
COSeSEooeeeeoaovesscacesegss 
101% £04104 00003 000018 
1008 {e818 20004 000000 
9%e 1.3927 00000 e0010e 
900 105839 0024 e00S1e 
ore 1.3752 200015 000008 
960 1eso0S 0002) e0007e 
QSe 103577 00022 2 00A%e 
948 303090 00028 0114e 
Q3e 1e3u02 00034 o01doe 
92e 103315 00057 0018Se 
ie teo3228 00027 e02@{oe 
900° Leds4y 00042 ooasie 
898 103053 00042 0029se 
O80 108906 00045 005300 
67s 1.4878 00061 005978 
66e 10279} 00039 o043oe 
BSe 102703 6048 ,04BSe 
O4e fePolo 0005a 005380 
63s 102529 00051 005608 
Bae aud) 00089 200USe 
B1e 162354 60059 .070Se 
60% 102267 00046 007548 
790 102179 00074 00825e 
788 102092 e007) 008978 
7T7e teeo04 00088 0098ue 
76e {e117 00080 010658 
75® 1018630 20086 11510 
Tue 1.1742 00082 ol23Se 
738) 101655 00080 oldi3se 
Tae 101508 00089 014026 
Vie $o1480 00303 013058 
7O® 101393 00088 o1 S930 
69s 151308 00106 010988 
o8e 101218 oOlto 01 50be 
o7e jsolydt 00132 o194je 
O66 101043 00135 e2070e 
12009560 00155 eeasoe 
1008609 0013) 023610 
120781 0014o eeSo7e 
100694 00162 20098 
100606 o0loy 028300 
100519 00134 02I04e 
1euus2 00346 031080 
1ooyda 00138 o32uBe 
S7e 100257 00172 034208 
Soe 100170 00146 033000 
SSe 100082 00207 oSV720 
Sus 09995 003393 039200 
S30 09907 00192 o4i17e 
sae 09820 oO174 42800 
Sie 09733 00180 044oBe 
Soe 09645 00180 o40ube 
ues 09558 00207 048550 
ube o%u7h 00as6 S098 
uve 09383 00177 oS2oho 
doe 09296 00190 054590 
ae 09208 00229 050860 
ago =o M24 00802 © 549U8 
u3e oF03d 00168 0605686 
uae 08946 o0aly eb2716 
ale 06659 00380 
aoe 048772 00165 
390 08684 8 §=40383 
3be 06597 00186 
370 08509 =o 0150 
Soe o4u22 00162 073030 
3Se 06535 00177 074800 
jue 06247 o0lo4 070400 
33e 08460 00344 oT7A1e 
32e 06073 00168 o79U40 
3ie 07985 00149 o8u9be 
Soe 07898 00122 082208 
2%e 07810 00149 085000 
260 07723 o01Sa 085050 
27¢ §=oFo3e = 0104 o800ue 
20¢ 07546 200098 087029 
25° o%uel 2009S «= B 7978 
24e 07374 00122 089196 
236 07286 00094 090108 
22s 07499 00092 091026 
aie o7ytt 00089 091910 
206 oTo2u 00007 092560 
19° 2609357 00104 093590 
188 oOA49 00064 2942te 
17e 06762 00059 oFUK SO 
168 00675 00089 A 
158 06587 20042 oi Se 
146 00500 00054 096000 
136 ebul2 20062 097200 
126 e6325 00045 097708 
11 062368 60046 p%8io8 
108 00150 00054 098696 
9% 06063 00037 099008 
be 05976 00027 099330 
7s 05886 00015 09946 
66 0380) 00013 099648 
Se 03713 00007 099690 
ae »So26 00015 099BUe 
3e 05539 00004 o99RbG 
2s) (5451 20009 499976 
is oS3ou 00903 4000008 


HIGH WATER e 
9 
Lower FREQ, 
LIMIT PRee 
Coooeeesseesggeas 
1.4104 00008 0000 
1.3976 00008 20003% 
1o38uo 00015 00010% 
103718 00011 eooaré 
1,359) 20015 200424 
103403 00019 000019 
103355 000287 000088 
103207 00083 004138 
1.3080 00088 00s4is 
1.2952 00031 001738 
1o282u 00042 00215¢ 
122696 00030 ooause 
e250 0040 00ab5¢ 
Yo2day 00040 eosese 
1.2313 20042 003008 
102186 00046 004yse 
1.2058 00001 e0G7ye 
101950 00087 005309 
101802 00001 00S91e 
1.1675 20007 00058% 
101547 00066 oo72ue 
101419 00073 oove7s 
1.1292 00073 008708 
Joilog 00004 009618 
101036 00099 ofoo0e 
1.0908 o01ts ofi7ae 
100781 00098 12708 
1,0653 e019 oi3098 
400525 00105 =o 4958 
1.0399 00105 015998 
1.0270 00114 o1733e 
100142 001e7 01 840% 
1.0034 00381 os%o1e 
09887 00154 020958 
09759 = 40129 = pe2eus 
09031 eo1dd 023088 
09508 00178 25479 
09376 00142 020098 
09248 00164 028530 
09120 00105 =o $0188 
06992 0013 oSib1e 
208805 00109 033508 
06737 00158 03508¢ 
08009 00180 030868 
08482 00156 oSAa3e 
08354 00105 8 =940098 
06226 oor? 041808 
06098 00170 043508 
07974 00170 045208 
©7843-0159 =, WeBus 
07715 00161 048058 
07587 = 130 =n u9998 
07400 00104 051008 
07332 00176 053509 
07204 001357 054958 
07077 00108 056019 
00949 = 0173 
06821 001oa 
066095 00175 
00506 00108 
06438 0010 
06310 0017? 
00182 00155 
06059 00109 
05927 o01o! 
05799 00150 
05072 00334 
05544 00136 
05416 00138 
05288 0014) 
Slot 00130 
05033 001a9 
04905 Oe we 
04777 00120 
04650 00153 
04522 00101 
o439q o01ay 
04207 00118 
04139 00104 
04051 00007 
03863 8 =,0093 
03756 =o 0095 
03628 00009 
23800 8= 0057 
03372 00060 
03248 000608 094958 
03117 00056 095498 
02989 00000 090098 
02462 60058 696079 
02734 00055 097228 
02606 00050 0977608 
02478 00032 296004 
02354 00048 098569 
2223 00031 09AbOe 
020995 00025 099428 
01967 00028 099390 
01640 ©=6.60022 =o 992 
01712 60022 o99bue 
01564 00007 0999 
01457 00007 09998 
o13a® 00002 $00000% 


Table B-53b 


1.3507 
1.3210 
1,2913 
{o2olo 
102519 
1.2022 
101728 
1014286 
$oil5t 
1.0830 
1.0537 
1.0240 
299U3 
09646 
29348 
0905) 
08750 
A 
08160 

07805 00120 

27566 §©0 0126 

07269 o0i3e 

06972 00136 

06075 e0las 

06378 00150 

2608} 00186 

05784 00155 

03487 00163 

03190 0016S 

4893 00167 

204595 00169 

04298 =o 0174 

04001 = 0 009 

03704 eoi7a 

o 3407 00170 

o31l0 00168 

02813 00108 

o2Slo 00165 

o2e19 00107 

01922 00354 

01625 00157 

mere) 00156 

0105) oosud 

00734 00144 

0457 00340 

00139 00338 

@,0158 00140 

©0455 oOlus 

0,0732 00107 

@,1049  0lue 

eo1546 e010) 

@,1043 00368 

©1940 001U6 

0.2237 00149 

00162 

00163 

00156 

00369 

00172 

00189 

00189 

00183 

00149 

OO CH 

00339 

o0lsa 

eola? 

00127 

eolad 

00115 

e012 

00103 

00107 

00102 

00005 

00303 

00086 

00080 

00070 

00073 

00005 

00089 

00049 

e1,9149 ©0049 

2101446 60043 

10174) ©0038 

©1,2040 00035 

1.2537 0003! 

e1,2034 00028 

01,2934 00026 

°1,3226 ©0024 

21,3525 00017 

21.3623 00015 

1.4120 00010 

e1,4ul? 00008 

o4714 00005 

1.5011 00003 

21,5306 00003 

21,5005 ©0000 


328 


OSURNAL RANGE 


-6 LOm wavER 


Lower 


204536 
©o4677 
eo4817 
2.4957 
© 05097 
e,da37 
o,S377 
205517 
205057 
o,3797 
0/5938 
© ,6078 
@,60218 
©,6358 
@,0498 
©0638 
©,0778 
200918 
@,7058 
207198 
©,7339 
eo7u79 
07019 
eeT7S9 
2,7899 
©6039 
©,6479 
©,6319 
© ,6459 
© 08600 
e.6740 
e,8880 
2.9020 
209160 
209300 
e940 
209580 
2.¥¥20 


° 
oV0S1® ©f,0003 


O1o0141 

o1,0261 

1,042! 

01,086) 

©0070! 
° 


083198 
e8udae 
065588 01,3542 


101262 
0101402 


0866098 0451682 
087729 —4,1822 
068798 04,1962 
oA8981% 1.2102 
el .daua 
e1o2382 
102523 
eho2bo3 
©1,2003 
2943 
e1.30635 
eios2a3 
eio5303 
o1,5503 
o1os0u3 
01,5784 
©},392e0 
09BO2% of ,400u 
ei,4a04 
es ousud 
01,4484 
099578 of 94624 
099728 wf oUTOu 
404904 
2099908 of ,50uu 
21,5165 
e1,5825 
2155405 
©1,5005 


1,0000% 
1,0000° 


0000! 
00004 
00048 
00022 
00020 
00025 
00033 
00043 
00001 
00072 
000607 
00079 
00097 
00113 
00128 
00120 
00120 
00135 
00128 
00182 
0014a 
00151 
00153 
00180 
00140 
00143 
e0136 
00170 
00153 
00149 
00136 
00130 
00150 
00144 
0014) 
00144 
00135 
00130 
00135 
00144 
00128 
00153 
00130 
00133 
00156 
00134 
00159 
00437 
00130 
00145 
0147 
00170 
09108 
00147 
00147 
00138 
00157 
00120 
00135 
00153 
00130 
00149 
00134 
00112 
00132 
00450 
00107 
00097 
00096 
0013) 
00082 
00060 
00083 
00083 
00081 
00082 
00093 
00068 
00083 
00076 
00008 
00077 
00076 
00074 
00007 
0000) 
00000 
00002 
00051 
000403 
00045 
00031 
00030 
00020 
00030 
00016 
00016 
00016 
00040 
00002 
00008 


9,048 FEET, 
6 


LOweR 
LUAIT 


©1,0574 
01,0073 
059908 ©f,0771 
21,0870 
1.0969 
©1,1067 
065958 04,3106 
oO731% 01,1265 
068529 04,1303 
©1,14o2 
1,1564 
©103059 
074280 of 1750 
©4,18Se 
21,1955 
24,2054 
1.2132 
080598 of 22394 
©4,2350 
©4,2446 
e4,25u7 
0864009 ef ,2646 
o4,274u 
21,2845 
e4,e9ue 
©4,3040 
04,5139 
o{,3237 
e1,5330 
04.3435 
24.3533 
092008 of, 5032 
092770 of, S73} 
o1,3829 
©1,3926 
©1.4027 
104125 
21,4226 
e1.4sey 
eo, 4424 
01,4520 
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OL 4737 
21,4816 
©1,4916 
01,5013 
099920 Of ,5112 
©1,5210 
21,5309 


1.00008 ©},5009 


LOwER LOW WATER 


00004 


CHOOSH OHS O HOSS E SOS LESEOoOEoOSSEROOER 


FREQ, CUM, 
PREG, 
00003 00003 
00003 00000 
00008 00010 
00003 000135 
20053 00027 
90025 00052 
00024 00076 
00080 00106 
00030 00130 
000359 00875 
00006 024s 
200390 00280 
0006) 00344 
00004 004028 
00060 00462 
00070 00536 
0087 00025 
00009 200094 
00075 00708 
00075 © 0843 
00099 00942 
00320 01064 
00084 ollde 
00129 ol2e7y 
0034) of Gig 
00124 01535 
00327 olood 
00126 01788 
00350 01918 
00558 02070 
00194 02230 
001% 02426 
00169 02595 
00384 02776 
00362 02956 
00169 o3)27 
00366 03293 
00450 03454 
0087S 03620 
00157 03783 
00109 05952 
00193 04445 
00199 04544 
00593 04535 
003% o4734 
00196 04927 
00879 
00142 
00166 
00200 
00355 
00342 
00397 
00833 
20192 
dled 
0017S 
00120 
20320 
00108 
00180 
00108 
00330 
00108 
200300 
o0lau 
00123 
00090 
00138 
00309 
00185 
00070 
00303 
e03t2 
o0hia 
20100 
004035 
00090 
00302 
00004 
00084 
00090 
200088 
200072 
00006 
00030 
000%2 
00048 
00037 
00049 
20039 
00040 
20036 
0002) 
00022 
00019 
00022 
o00l@ 
40006 
20000 


26 
HQURLY TIDE HEIGHTS 
8T. NICHAEL. ALASKA JANUARY 1973 


Figure B-54a 


Extreme Monthly HW 
20 
MHHW 


MHW - Equivalent Gaussian 
OF Distribution 


MSL 


-O 
MLW 
MLLW 


Extreme Monthly LW 


Cer 


0.01 0.1 -30 -20 10 -O 50 o 90 20 30 99.9 99.99 
Diurnal Range = 3.58 ft 


Figure B-54b 


329 


ST. MICHAEL. ALASKA 


a 
paeg® ®=oO®g 
o 


eoe0OF®2eea6 Ge00oR0 


KKK XXKKXX XY YL D5 


12345678910 le 64 69 74 79 
MONTH OF THE YEAR YEAR (1965-1981) 


HIGH WATER @enaxinon © & KEAN HIGHER X © MERN 


123WU56788s:10 il2 6 69 7 79 
MONTH OF THE YEAR YEAR (1963-19861) 
LOW WATER oweneen ® = NeAW LeNeR Xe MINT MUN 


123U5678910 ile 6y 69 7 79 
MONTH OF THE YEAR YEAR (1963-1981) 
RANGE oa - owrnac tie @ = NeAN 1108 Xe STO DEVIATION 


= 


0.5 
0.0 KK KKM MK KKK HEM MMMM KKK KKK KH KKK KX 
9,5 


12 10 12 6H 69 7u 79 
TEAR YEAR (1963-1981) 
EAN SEA LEVEL 


Figure B-54c 


3456769 
MONTH OF THE 
M 


330 


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2200°Se e655" ag00e genes 269 
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4590°%® agoae® noo? C2ece*t 249 
99S0°T® atce2* 900° f2oc°t 299 
$dn0°te af9L2° Ssetoe C20e°t 269 
fecoete egege® nn00® eaters 20d 
Bo20°te ennge® Soto? 22zaet até 
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4206° ansite eqtoe 229y2t eSd 
Sfgo° af2or? @@00° 224e°t 292 
on4o° eSest° @e@00° 22euet ead 
£696° adnnt® @6t0° 226e°t ed 
t9og6° eOtgr® ge00? 2206°t wed 
Odno® aae2t? nncoe 2esoet 208 
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4826° enett® ectoe 22fe°t #20 
9016° efSore 2gtoe 2ene*t ef8@ 
SO0to° #f260° eg00° 22S6°t #70 
£t06° sf€£@0° 0000° 2290°t 958 
22oa°s effe0° et2oe 22Lo°s 29° 
TEge°’s entoo® eqtoe 2286°% 448 
ef4e°e #2e9n0° 0000° 2266°s eee 
ange°e e8en0® 0000° t200°2 #68 
4sse°e e#2en0° @g00° telore2 206 
S9nv°s #6620° eg00? tzeoce alo 
MLie°e #2#40€0° mn00® tekore 26 
fezu°=s s£920° eqtoe Tenore sf6 
Sete°= ePfto® nnooe® tesoe2 sno 
0018 #@@00° 0000° te90°2 256 
©008°= #900 000° t2z0°2 #96 
dtol°e ef800° 0000° teeoce 46 
92ul°*o 2ae00° OQoov® teooee 96 
Sf£ci°e 2#9900° mno0e teotree 266 
£n94°2 ann00® 0000° Tatre2 2003 
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331 


Table B-54b 


LOME® LIMIT OF CLABS JNTERVAL BHOWN, ALL HEJGHT® ARE NORMALIZED BY HALP THE DIURNAL RANGE 1.700 FEET, 


© WIGHER AIQH WATER 8 HIGH WATER HOURLY VALUED e 40 WATER 8 LOWER Lon marer 
8 ® 8 

LOwgr PREG CUM,@ LOWER FREQ, Lower FREQo Cum,e@ LOOKER PREG, CUM,® LOWER pree, Cun, 

LIMIT LIMIT LIMIT PREG, LIMIT PREG LIMIT PREG, 


SSHHSTH HOSS SHE HSSOS HHT HHH HHH SST OHHHOS TO OSSOHOTSHSHGGESeSSHSeGASALAEEOHSE 
20122) 00000 00008 3072 0001 000019 20002 «40002 
2,0842 00000 000008 03705 00004 2000Se 2935 20005 00006 
2.0403 00000 000048 03550 00003 000098 Boru 200006 00014 
2.0086 0004 000088 = «43352 00013 .00228 2.3213 000% 0024 
1.9708 00001 000038 03148 00019 000378 2,335) 20006 00030 
1.9326 00003 000068 02039 00021 000578 ©, 3490 00019 00049 
1,6947 00003 200098 2732 00026 000838 ©3029 20030 00078 
1.856% 00004  ,0033% 2926 0027 00025 =, 0100 
4.8188 00000 0019  a@319 0028 00035 40138 
1.7800 00007 000259 02113 00039 00044 00179 
107430 00040 000359 01906 00033 00047 00226 
1.7051 00012 o00u7e 01099 00033 200056 00284 
106072 0018 0060 1493 0033 00050 40330 
106293 c0017 c0077® 1886 0042 00056 =, 0392 
1.5914 00018 000958 01080 000398 09078 oOo? 
105535 00023 ,0118% ,0873 0048 20080 = 0547 
105156 00028 ,0140% ,0607 0037 000568 40005 
Lo4777 00030 01708 0400 40040 00086 =, 0092 
1.4398 00030 0021388 00as3 200048 20U88 00779 
104019 c0042 .0254% 0047 0054 20099 = 0678 
1.3040 0004u8 003028 00,0160 00066 00097 00976 
1o3261 00052 00355% 50366 0051 0011S = 1088 
102882 00060 .0415% 250873 0069 09105 61194 
102502 00063 ,04778 ©,0779 40063 00130 «41530 
102123 00070 0986 © ,0039 20116 91446 
1o1746 10070 01193 = 0056 00149 = 1595 
101365 00078 201399 0086 0013S = =1728 
100986 00078 .0774% 1606 10056 00125 = 9185u 
100607? 0083 08578 1812 40069 20130 = 1984 
100228 «600090 409478 @62019 40073 00160 42150 

09849 = 0094 = 10448 @,2225 40096 oON7) e232 
09470 =o 0098 = g K438B% op2us2 40087 00109 §=,2u94 
0909} 00098 12369 62638 0078 00380 §=.207) 
8712 «00302 61338% 2.2845 40106 00190 =p 264 
05333 §=—0097 «= g 130% «3052 =. 0090 00187 =, 3047 
07954 «40106 91842 053258 0098 00371 03218 
07575 00106 01651% 0,5465 o0lel 00176 03594 
073% 00106 00118 20202 43596 
06817 =o 0109 00126 0017S = 43709 
206438 §=0 0198 04084 = 0145 00213 8 =«43982 
206058 00321 o,4aa 00125 00380 8 =n di 62 
05079 «=o 01 BL 022259 2,498 0132 021g ,43Tu 
09300 «660823 = 23488 ©,4704 yOLud 00184 = =,4558 
0492) 20333 = 2U82% 0,491) 0013S 00182 4740 
04542 00133 00138 e2931% 02,8903 40226 4405 
e463 00137 o01au 030758 |,9045 001,79 oSidu 
03784 =o 0447 00152 32278 ©,9180 0162 45306 
03405 00156 0305S® 055737 00164 o33958 29,9319 00190 05496 
23020 =o 01 0 03215 ©5044 0147 43838 2,9458 40140 5635 
2047 = o0174 43389 ©,6150 0181 037198 ©.9597 40169 45605 
02208 =o 0170 = 3558% 02,6357 90190 o39098 259735 0102 45966 
01889 =o 0177 =o S736% @o6503 =o 0107 «= WOH =, FKTU =. 01 B84 = gS 
0150 00178 o3913% ©6770 00197 042738 81,0013 00174 00320 
e113! 00180 .4093% ©6076 0220 ,Wu9se® 9140152 .0177 46501 
09752 00185 042788 ©,71863 00213 04700% ©1,9290 e01e? 26028 
00373 00192 o4470% @,7390 00232 049388 ©1,0429 00135 06763 
@,0006 00191 04662% 22,7596 00200 051448 ©1,0568 00166 06929 
2.0386 00190  UA5!* e,7803 0211 053558 91,0707 40149 47078 
@00705 00192 65043% ©,8009 0232 $5878 9160646 40138 Tele 
201144 00197 «= 5240% 2.8216 0223 988110 P1,09RU 40124 47340 
©,152@) 00194 oS43U® o,04u22 00247 000278 91,1123 00330 07470 
251902 00202 65630% 258629 40200 op2288 21,1262 0121 07591 
2,228} 00213 «= 5849% 02,8836 0202 .ou29e P101401 00127 = 7718 
©e26600 00209 660598 ©,9042 0230 966408 9151539 oagit 07629 
©,3039 00214 062728 ©,9249 00162 266228 &1,1676 20135 07964 
203418 30210 964908 069455 40159 69819 81,1417 ,0118 ,8082 
o 3797 0212 067028 259662 00169 071508 "161956 00105 06187 
204176 00213 96915% 259868 0162 073328 81,2095 40110 68297 
02,4555 00209 071248 01,0075 00179 o7511% P1.e23d 00330 06427 
©4934 ©0200 073238 o1,0281 00155 076008 91,2372 001d 08540 
205313 00200 675248 01,0488 01K? 76138 B1.2511 01'S = 86053 
255692 060203 07725% 0150699 0186 179698 21.2650 0110 8769 
2,607) 00399 679238 01,0901 00137 981968 91,2788 ,0108 8677 
206450 «=o 0197 =o BL Z0® 154108 50134 ,82408 M1,2927 40094 68974 
©0630 00164 08305% of o131d oOlal o8302e °1,3066 20089 09064 
2.7209 00184 84899 9191921 0126 «9 84878 §1,3205 40077 49137 
2.7588 =o O1TL «=« op BHHOF 101727 =o 0129 «=p BH1HH H1e334U OITL 69249 
2,797 00156 08816" of 1050 00121 087386 21, 34R2 20058 09307 
208346 00144 069608 a1o2141 00124 288619 91,302) 00077 09384 
0/8725 00134 090948 ef o2hu7 e0tt2 069739 ©1,3760 09058 09442 
©,9104 00198 092138 1 ,2554 o0l22 290958 91,3899 20055 09497 

00194 60122 086025% ©,34%% 0077 209483 00108 93208 1e2760 00116 092118 81.4037 40050 49553 

00009 e0ll2 087378 0,378, 00047 ©,9862 00097 e9U17® o1 92967 00100 e9B110 P1,4176 00058 o9ol 

05625 00104 046418 ©,4089 00047 0960779 01,0241 00089 095069 of 3173 00086 093968 91,4315 20060 09077 

oSo37 =o 0121 089618 664399 60037 097348 01,0620 00080 095878 a163380 90096 p~9U938 81,4454 ,0U42 49719 

05452 =o 0112 «=o FO7$® = ,4695 =o 0042 = on 97SO% 01,0999 60067 096548 153587 o0073 695658 9104593 ,0030 49749 

25266 00119 091988 ©,5000 20082 097769 01,1378 00060 097158 163793 00008 o9O3UM $1,478) 20030 09779 

05081 e01lo 093028 0.5305 00046 098239 01,1757 00057 097718 01,4000 00053 2090878 21,4670 200039 09818 

04895 00098 094008 0.5010 00037 09800" of,2130 00050 098218 01,4206 00057 0974U8 21,5009 2003) 09849 

04710 00096 694978 045918 000287 098679 04,2515 0004) 09862% of ,4ujs 00001 098058 91,5144 20030 29879 

04524 00072 095048 099119 01,2694 00035 098978 01,4619 00027 298328 &1,52A6 09014 99893 

04339 §=660083 = 90520 099$6F 01,3274 060026 49925% 01,4826 0037 698699 91.5475 ,0024 9917 

041453 00077 097298 099548 01,3053 00023 099488 01,5053 0003) 099008 91,5564 20019 09936 

©3908 40059 .97K7¢ 099759 01,4032 00046 99964U% 0155239 0025 499258 ©1,5793 0017 69953 

03782 20062 o9bU98 09980 e{,aui} 00013 099778 of ,Suu6 00038 099408 @1,5Hu2 OU 09965 

03597 =60039 = g PUB 099659 01,4790 00009 99986% 0155652 10023 199608 91,59A0 40011 09976 

odul} 00038 699208 05169 00006 099928 2©f,5859 00012 099788 21,6119 20006 09983 

03226 §=660030 0 o 99S OS 099969 01,5548 00004 69996% ©15600605 10009 99878 ©1,60258 .0005 9987 

03040 00018 099740 099989 01,9927 ©0002 09999% of ,o272 20004 099918 01,0397 20005 09992 

02855 00014 oI9Rbe 09998% 01,6306 00001 120000% 01,6479 20008 099978 21,6535 29003 09995 

02609 40012 1000009 269269 60002 100000% 0146685 060000 1400009 2156685 20003 1000008 e{,6085 40008 1.0000 


332 


essegeaess C8eacsecs secseeg 

2ei2ai 20002 00008 a.32a1 
2c103S 0003 20005 2,0%}6 0002 
200850 60000 200008 2,014 00001 
200664 60002 000008 P.od0e 000° 
200479 060005 200118 8.0001 0008! 
200293 00009 000208 4,90% 00018 
2.0108 002 e003R 1,939) 00018 
109922 00006 00388 34,9087 090280 
1e9737 =,0015 ,00536 14,8762 0086 
109554 00017 00009 1,84079 00030 
1e%3oo0 ©0023 000988 14,8172 00039 
109180 = 0012 = OF04% 11,7867 20044 
108995 .0014 00118 14,7502 0084 
108609 0033 c0151% $67257 0078 
1eSeau 20020 eO170% 1.0952 00048 
108438 60026 001908 150647 0077 
1042535 00038 008348 4 ,osuy 00090 
108007 00039 002798 4.0038 0007S 
1.7882 20030 003038 1.5733 00118 
176% 00048 003518 10542R 00119 
107511 00045 =o 090% 145123 00137 
1e7325 00054 004519 1,4818 00153 
107139 00059 005098 41,4843 00152 
106954 0044 005508 14,4208 6103 
106768 0007] 200218 34,3903 00109 
100583 00066 c00A7S 14,3598 00192 
106397 10075 c07e3* 34,3290 ~ oQ208 
Leo2t2 00066 08248 14,2989 0215 
100020 90068 0897 4.2684 40206 
1oSA44 00087 ,09448 41,2379 0208 
105655 00415 01099 14,2074 50190 
105470 0080 of1798 161709 0194 
1oS28u e0i12 el29u® 151404 00190 
105099 60127 =o L41T® «151159 00193 
104913 00118 0193S@ 1,084 00194 
104728 20133 olbo?® 14,0550 0217 
1e4542 cOlS7 016048 140248 0200 
104357 00140 019458 09940 ooatd 
10047} 00125 020708 49638 40183 
1o39Ro =o 0145 =p 2214@ = 9330 =o 0170 
103800 0337 o23739 49085 0195 
1eSo1S 00169 2540 48720 00106 
fodu29 60364 627048 8415 0151 
{e324u 20190 028948 208110 00192 
1.3056 00172 030068 0780S 00155 
1o8a73 00178 oseuue 07501 00199 
108687 20179 34238 847196 00134 
102502 00175 635988 6891 00146 
Lea@sio =, 0151 o3ST49G = 586 =o 0199 
LediS1 00469 = S94B8 = 284 =o 013 
101945 00157 40748 45976 40144 
feol7@0 0103 o4#37® 45674 00144 
101574 60163 44008 45306 o0141 
101388 60175 48758 5061 0015! 
401203 00157 o47328 44757 40140 
1ol017? e017 oe4¥Ob8 4u452 20113 
1.0832 o0t6u 050728 4149 00145 
100640 00176 052400 03842 00150 
1.0401 00179 «= S42Be = 355Y = 01 BS. 
100275 00167 055938 ,323P 0146 
100090 o0178 08779 2927 00186 
09904 00176 $9506 02622 00193 
09719 0017o 001209 2317 00105 
09533 00139 0026050 02012 0013 
09308 00148 204008 01708 00104 
09162 00154 065608 1403 0131 
08977 = =o0143 =o 7039 = 098 =p O11 
06794 00154 008540 00793 00100 
05600 00119 009730 00488 20008 
08420 =o 0828 =o FL01% «40183 10091 
ef23S 20133 672348 ©0122 20079 
06049 =60124 67358 0.0427 60080 
07804 =o 0142 =o FUVGH% ©0732 00075 
e778 = =60139 =n 70388 80,1037 40001 
74930131 077698 oi 3ut 00072 
07307 «00119 078848 @,1646 40059 
07122 00103 80 79918 01984 00065 
06936 00122 081138 262256 00081 
00754 00140 682596 ws ,25ot 00073 
06565 60124 683838 042866 10062 
06380 00124 085035 e317) 00073 


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26 
HOURLY TIDE HEIGHTS 
HONOLULU, HAWAII JANUARY 1973 


Figure B-55a 


yo 


Distribution 


Extreme Monthly HW 


ST 
Extreme Monthly LW 


-20 ———- 
0.01 0.1-30 -20 10 -o o 90 20 30 99.9 99.99 
Diurnal eee 1.89 ft 


Figure B-55b 


333 


HONOLULU, HAWATI 


12345678910 12 64 69 74 79 
MONTH OF THE YEAR YEAR (1963-1981) 


HIGH WATER genwaxinon © WEAN HIGHER © X @ NERN 


®aoouaoavanaoaaoaetnanaanoaga 
COGOGHaoaTnFTAGOFOHGOGSA 


123US5678910 ji2 6 69 7M 719 
MONTH OF THE YEAR YEAR (1963-1981) 
LOW WATER) oe nea @ © NEAH LeNeR Xa NINTMUN 
2.3 
a oo 2” en®®®8F08Reggan aoa 


See OGGoGcaneae® C®CHOBACGCADOOOBOHOOOBADDA 


123W¥s678910 i2 6y 69 74 719 
MONTH GF THE YEAR YEAR (1963-1981) 
RANGE @ -] owarnat toe @ = NEA TIOE Xe STD DEVIATION 
0.5 
x XK 
ee a ae X ye HEX RK KKK KKKKKKKKK KKH 
“"323%5676910 12 Gu 69 7H 79 
MGNTH OF THE YEAR YEAR (1963-1981) 


MEAN SEA LEVEL 


Figure B-55c 


334 


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9900° Seg2°*te 29566° zgto° Ogit*t 2 

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ecto® wece*te eiLglo® 0000° aost?l 6 

900° 9992°te elclo® 0000° Teoret 209 

zeroe ££92°S® eigdo® 0000° C9dt°h wf 

9900° fes2°t= eLgle° 9900° 9natet e@ 

9900° 6252°Te s6no6° nn00° 626t°t 6 

9900° 9Ln2°te 25096° nnoo° ro2*t wot 
@rt0° nene?’ts of956° 900° Mo02°s aft 
60¢0° zlg2°te shine® nnoo® 9uteet wet 
£920° etge°te sdgne® 900° os22°t eff 
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zero? Stz2°te eng26° 0000° mane2°b ast 
zcro® 2912%te ancze® 0000° 4os2*s «9 
40¢0° OTte*te encges® 0000° Oosett eut 
noo? 4502°t® ens2o° nnoo® 2492°s) eet 
foz0° Go02*te eft26° 2gto° Ssa2°t wot 
£920° Tool te 26406° nnoo® gge2°t 202 
8@00° Ooot*te® eS506° mn00° O2z62°F gt2 
eto? g900° Onat®*te afeso° 00° roogtt e22 
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£299° zcroe {nit?te einoe® 2eto° gotcel en2 
Song? noo? Tegt*te eatag? 700° ts2cet S2 
Anno? £920° erot te e2.19° 0000° frig’) 292 
neg? 0000 9ast°t= s2iea° @@00° Otrgth 262 
veto? 620° nggt?te engog? 250° oons*t «92 
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9est° S.toe bog0*t® eS194° Sito° Sson*t edn 
Seng? 0000 @nco*te e00Sd* 800° afdn*h esr 
beng? 400° 9690°T® e2tnd® zrto° T2en°t enn 
tree poo? mng90°te stg2c* GLto° f0on*s Sn 
OL0f°° = nnoo® teso*te esotc® 9g00° 996n°t e9n 
9z0c° 99008 ofSO°t= sao? nn0o° 690S°S) edn 
ofo2° 7008 L9n0*te onis9® ae900° tots*t e@n 
Sog2° 8900° ngn0°te 69999° 2ctoe m£2c*t een 


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egqse? s2toe $220°te naQh¢9° 2gtoe rosset e2fS 
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2@to2? SLt0° 90g6° #€92g° ee00? 922q*t 8h9 
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e2ngt? pn00® 1046° e2gts? 40¢0° teforet «f9 
eget? 0000° on96° a¢can® nn00o® T4reel #9 
e964t? 0000° 46056° etean® 2gtoe 9gS9°s #69 
goat? noo? nnge? 86ndn® 400° 6£99°S 299 
angat? nn00® Bono? e2nin?® Satoe® tedo°t 249 
attate g900° 6fn6° e9tne 0on0° p0eget 299 
af29te 0000° 40f6° a9tn® 9e00° 4ee9°t 469 
ef2ote @900° S2£46° 2640n° 6420° 6969°t 802 
estste 0000° 296° e99at? £0¢0° 260g*t ohh 
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2§6£0° 0000° fele°e x#04¢0° 0000° 4edg?t 226 
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26t20° 28008 b2el°e we9600° 00008 002e*t 46 
e2eto° 0000° 6984°2 e7900° noo? fe2e°t 296 
a2ctoe nn00® QbuL°= enn00® 0000° 99f6°T 866 
4092° eco? Zago*te ewgi9° 2gto° 4igs*t 205 29900° nnd? n9¢L°= enn00® oono® anmert 200t 
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) 


® °oaud AtwlT) 6 “aud AtwIy  ¢« °ON « a °O4y4 lIwl1 6 Soda AtwId) 0 @ “ON 
@ °whd *ejag = 43M07 e °Wnd odjud 84 39"09 2SSvije @ °HNd e-em 6 °Hnd °ojad y3m01 2gSv19 
s s e a 8 a 
@ Y9LVM MOT °OW 3W9HLX2 © BALVM HOTH °OW JHIHLXT 2 a @ S3LVM 901 °OW 4W94dK9 @ YFLV4Y HOH SOW Indalnd # 
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1eeg9e6t IfvmvH ¢NINIONOH NOLLINAd NOTANGTyLsTa. 


eqc-d 2TdeL 


339 


Table B-55b 


LOmel LIMIT OF CLASS INTERVAL SHOMN, ALL HEIGHTS ARE NORMALIZED BY WALP THE DIURNAL RANGE 0948 PEET, 
s HIGHER AJGH WATER a HIGH WATER e HOURLY VALUES a LOW WATER e LOWER LOW waTeR 
8 * e e ’ 

CLAs8e LUneR FREQ, CUM.® LOWER FREQ, CUM,* LoweR FREQ, Cum, LOweR PREG, CUM,® LOWER PREG, Cur, 
NO, @ LIMIT FREQ,® LIMIT FREUo® LIMIT FREG,® LIMIT FREQ oS LIMIT FREQ, 
SHOES SS SOSS HS SCHSH SOS SSSESSISHS ESS TH SS SH HSH SH SHS HSHSH TFS SHS HSHS STS SHH HSS HSH TSHSOSE SHH STEHT SSH SHSTOS ES HTESS ETS SE SHEE EEOSOSEEeEEES 
tole 10953) 20004 000018 41,9531 0000! 00001% 41,9534 20000 0000 .0743 0001 200018 2577 40001 40003 
1008 109309 40004 000038 3.9280 20001 00002% 1.9206 00000 00008  .0007 0001 200018 e268} 20000 00004 
998 109207 0004 00004 14,9029 .0005 .0007% 41,8881 20008 00018 c0470 20004  .00058 e,2784 40003 00003 
988 1209045 20019 20013 4,86778 0007  00035% 14,8557 000) 00002 «60333 50004 0010 a,2888 0000 0003 
978 1.8883 20010 000288 31,8526 00016 e00d1* 14,8232 20002 000048 00196 20008 000188 ©,2992 20000 20003 
Goo 10872! 00009 «=p 00348 4.8275 0013 c0043S 34,7907 00005 c0007® 40059 40009 900278 0,309 0003 0000 
95% 124559 200022 000568 4,802u 200081 00004 4,7582 00004 eOON1® ©0078 00059 000408 a,3199 60000 00006 
Que 108397 e0uls 200718 1.7773 00019 000848 14,7257 00006 000178 e,0215 00019 000658 «,3303 00008 00040 
93e 108235 20024 20095 14,7522 20031 0115 456933 00008  .0025% ©,0392 20024 .0069* o,3407 ,0004 40015 
920 108073 00027 eOl22e@ 1,727) 00057 0015a8% 1,6608 00009 0003ue 0489 00019 001098 a3510 00007 e0022 
91s e791) 20025) =a OL4T#® 3,7020 60048 002008 14,6283 o0012 00045% 250626 00033 01428 o,3614 0004 0026 
908 107749 oud} 0178 14,0709 0041 00241% 14,5958 0012 90058% @c0?03 oV034 cO017S® oo371B8 90007 0034 
699 107587 00037 00@1S% 1.0517 00050 e0291% 14,5633 00016 00074 22,0900 00038 002138 0,382) 00018 00052 
680 jtolues 00040 002558 1.6266 000582 o0d44® 14,5509 00038 00092% e,1056 00039 00252% a,3925 00010 00062 
O7e 107203 §=20042 «00297 156015 00000 00404% 41,4984 00024 ,0116% eoll7S c0043 24029 001k e0074 
Bee Lo7101 60059 00356% 10574 20004 00407% 14,4659 00025 o0141* e310 10039 00030 0090 
BSe 106939 60062 c041BS 445513 00078 o0545% 43,4334 00029 01708 1447 =, 0050 00028 = O11 
84s 100777 .00S0 00409 4.5202 o0084 o0629% 14,4010 00033 02048 01584 = 0080 00024 00334 
B35 1eb615 20074 ,0S43Se 34,5011 000% «=o OF 39% 14,3685 00038 ,O2428 o,f721 00058 00089 = 0953 
B28 100453 00056 = S99 43,4760 00380 00829% 14,3360 00039 .0281% 02,1858 0054 0002) 0374 
Bie 106291 20064 200OU8 43,4508 o010F c093S1® 453035 00046 05278 051995 40058 0022 04% 
608 100429 00074 007348 45,4257 0018! ef052% 34,2710 20046 20575 ao.a2is2 00003 000484 00219 
798 108967 00070 008048 34,4006 c0116 of1608% 14,2386 00054 ,0H27% o2269 40043 00028 8 8=,024u7 
78e 155805 200835 c0UB7e 14,3755 001S6 01304" 4,206) 00054 204808 2406 2005S 00058 00286 
778 105643 00102 «=n 0989S 143504 00110 o1414® 461736 00059 40540 eea542 40059 00037 0322 
Tee 105u84 00098 =p L087% 14,3255 00132 o1540% 1,141) 00062 906028 e,2679 0073 00035 40358 
756 105319 00110 01197 1.3002 00138 016648 14,1086 00065 .0666% 2816 00005 00036 403% 
7ue soS\,S7 00102 012998 1,275) 00110 017949 14,0762 00066 007339 252953 00075 20031 00427 
738 104995 60123 0 14220 «4.2499 =o 0183S = L9S7# «81,0437 00067 408008 25090 10008 200050 840484 
72@ 104833 60348 =o LS71% 162248 00133 o@0F1® $60312 00073 90873 @53227 0007 00060 90543 
71¢ 1o4e%1 e0t3e ol707@ 43,4997 00133 o22048 09787 ©0078 00951% e@,3364 00085 00062 00005 
708 104509 c0123 018508 4o174K 00181 o2345% ,9463 0081 o1032e ©3401 00087 200068 = 0073 
Fe 164348 6015S =o 198S9 101495 00137 «=a eu4bee = g. 94 33H =o 0080 =o KH12% 23638 40078 0007) 0743 
088 109186 60338 021218 51244 c0149 o2631%. 4AB13 20084 411908 ©,5775 40103 20066 «40810 
O%s 104024 c0157 o2278@ 440993 0141 e2772% 8488 00085 41281% 3912 0078 00077? 50686 
66% 105862 00174 o2451% 1.0742 00127 02899% ,8403 00085 o1365% o,4048 40097 00105 90994 
oSe 123700 00159 020108 4.0490 0011? 030}0% 07639 00090 014558 00100 200094 01085 
o4e 103538 00138 o27488 34,0239 o0133 03149% 47514 60090 415458 00101 00818 = 203 
63s 303376 00187 629358 49988 60147 032958 47189 00094 416408 ovlo2 00310 =o bh SSS 
o2e 1eS2iu 00181 050868 09737 00144 034408 20864 00092 017329 2.4596 00106 00100 ol Gy 
o1% 163052 00381 edgo7# §=,9486 =o 13S =o S873% = =« 6539 =o 0.093 = 1B 25% 4733 0118 00107 of52h 
608 102890 60133 34019 49235 o01351 03704 46215 00099 419248 @,4870 0121 0027 =n S047 
59 102728 00165 035090 08984 00113 038178 05890 00096 o2020% 29007 o0107 eONS7 01784 
$80 102566 16188 37548 8733 60144 o3%02% 45565 00100 92120% oa,5144 0123 00337 =o 924 
S7e 162404 017} o3924e 8 =, Hua} 00126 ©=6e HOH7® =. F240 =o 09H ~ 22188 e526! 00140 0030S = 2084 
See 1c@2de 00169 040938 08230 00117 042048 o49lo 00305 083238 065418 00125 20105 o2bug 
5Se* 104080 00166 048599 07970 00tas 043278 04991 00309 024328 00,5554 00155 00149 02398 
Sde 101918 06199 o4455e 47728 cO0112 o4439% 44266 00107 62539% 265691 00145 00184 82582 
S3e 10175 00168 o4o250 8 47UPF 00106 04546 43944 00109 .2649% ©,5828 40156 00108 42750 
S2e 161594 60153 47758 47226 00109 o4654% 43616 o0114 27628 ©,5065 .01u9 00380 842929 
Sie tols32 00203 049788 46975 00109 oh4763% 43292 o011@ o2875% @56102 0172 00199 =o 3328 
$08 101270 00195 oS171e eo724 00114 048708 02967 001418 029928 2,62a39 00190 00225 03553 
u9e 401108 00194 od3o3e 00492 00105 o4Ib1e 02642 00125 o3115% e,0376 00181 20228 03582 
WBS 400946 60157 055208 4622) 00099 «=o S07O* = 2817 =o 1.24 = g B239@ 060513 40184 O17? «653758 
G7e 100784 00172 050928 25970 00108 651848 01992 c0132 03372% 290650 40180 20224 43962 
Wee 160022 060159 .S851¢ 05719 «=60099 9 S283# 01668 00133 935048 296787 40203 00233 = 4215 
GSB 100400 60160 6011 5468 60106 05389 44343 00137 o3041% ©,6924 0207 eoee) 04455 
UUs 100298 015) e616de 65217 60098 o5487® 441018 00145 43786" 2570600 40189 20208 ,Hous 
G38 100130 20202 63048 ,U%e— 00107 055945 47693 00153 03939 @,7197 00206 20243 =, UBB6 
ues 09974 00184 005488 04715 00104 056988 00369 00362 o4101% e,733u 00198 0018 05074 
G18 69812 «=o 0197 =o OFUSB = Wd =n 0099 =o 797% = 0044 =o 0 FA = gp WAT2® «wy PUT 20208 00244 2333 
vos 09650 00165 269098 04212 00084 09860 0,028} 0018) 044538 ©,7608 00170 o0ee8 Pee) it 
$98 69488 0357 o%067% 43961 00005 95965% @,06000 00183 .Uobo® ©,7745 0220 00250 =p BTM 
38e 8909326 8=6o 0148 =n. 721S% =. BV10-— 0 0104 = 009% 0,093) 00197 ,4A32*® ©,7882 0231 20209 46000 
379 =o Mou =o 0B 07390 = §=66 3459 = 0098 = 0 1 O7® 1255 00213 .5045% ©,6019 203 00230 =, 6230 
368 869002 =40138 «6.478848 =, 3208 §=— g 0114 = B21 % =,1580 o0212 652579 20156 0208 20209 6439 
33s 08840 =o 0157 =o F091% = 29S Ss oO eO4U1® 251905 00217? .3474® ©6293 40205 20222 666) 
3S4e 68678 =o 0153 =o FUUGS = g 2706 = 0 0088 =«_ oo ©U90F =o,2230 =o 017 «=o SHV =o H430 = OZOA 00380 ,obu4 
338 08516 =o 0159 =o BO0AF = g 2U5U =o 0116 = 0 0606 092554 00230 »5920% ©,8906 40197 002@3) o70Te 
Jae 06354 00128 081308 2203 00099 06703% 0,28679 00220 0614609 @,87035 00108 00160 o7ese 
3is 08492 00142 082728 01952 00106 00809 o0,3204 00229 063759 2,8040 00175 002028 07453 
3os 08030 00129 084018 01701 00095 969048 ©3529 0232 066007% ©8977 00181 20203 07050 
296 07868 00138 063508 01450 00116 07020% a,3654 00224 oOBS1F a, 91N4 00161 o78K3e 01,0044 002) 07 B07 
266 07706 0010) ofo378 01199 00127 071479 o,4178 00224 e.9251 00176 20148 001385 06052 
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265 67382 =o OF 11 066589 8 8=49697 60189 o7397*% o,4826 c02{o 2.9525 0136 21,0355 0180 ,6586 
ese 07220 00095 089538 00445 00115 07912% 0©,5153 00209 ©0962 00103 21,0459 00128 06510 
que 07058 20087 2904ue 2019u 00139 07051 0,9478 20208 0.9799 00142 2860599 of ,0562 00390 28obo 
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216 06572 60085 93288 ©,0539 .0193 08101% e,6452 00189 21.0809 o012! 00119 59003 
206 20410 OURS 094138 @,08610 00156 082579 ©,6777 00176 21,0846 00108 00102 09105 
1% 262456 = ==2005$ 694608 o,1001 00156 cB414% o,7405 00175 100483 40096 00090 8=— 4 9 95 
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179 63925-60080 =o PON4® «41564 =o 0143 «=o B718% 06,7751 00151 21,0757 0073 20004 4 9S04 
166 05703 e0ude 090568 041815 00150 06873 02,8070 e01%e 21,0094 00074 20074 09455 
1S¢ oS601 ©0055 097118 ee2066 20130 09029 ©,6401 00124 elolosi 00067 2007) 09505 
149 63439 =o 6047 «=n FPTSB8 80423197 60153 09102% «,8725 00109 1.1108 0058 000d 49567 
13s 03277 20052 098108 6.2568 00146 09308% ©,9)50 00094 2101305 00054 00094 oped 
jee 05415 00033 oFBUS® 0, 2A19 00123 09431% 0,9375 00083 e)oiuu2 00049 00008 09bBS 
iis 04953 20039 o9BBi8 © ,3070 00118 695498 0,9700 00069 101579 00041 00060, 49734 
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9% 04629 00U28 099488 «3573 00076 09759% 01,0349 00046 o1,1852 00037 998498 01,2118 20usd 09840 
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To 04305 00010 099698 «4075 00052 09868" 01,0999 ©00a5 @)o@126 90039 099218 03,2325 00040 09940 
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ds 03819 00907 099958 ©, 4R28 00024 099078 01,1973 00040 o1.2557 00012 099779 a1 2037 00019 09972 
3e 03057 00004 099948 9.5079 090ad2 099099 of ,2296 00006 eLoeoru 00010 099878 ef ,27h0 0008) 09985 
ao 03495 00004 099968 0.5330 20007 09996 «1,225 00008 esedbit 00008 099900 ef ,2buu 20007 09995 
le od535 20004 120000 ©,5562 00004 $00000% 01,2946 20004 01 6e9u8 00004 4500008 e1,2948 00007 490000 


336 


APPENDIX C 


TIDAL RANGES FOR REFERENCE AND SECONDARY STATIONS 


This appendix presents tidal ranges for secondary tide stations (from the NOS Tide 
Tables, East and West Coasts of North America) to be used in converting the tide 
probability tables in Appendix B to dimensional form. Tidal ranges for Atlantic, Gulf of 
Mexico, and Caribbean coastal locations are given in Table C-1; Pacific coastal locations are 
given in Table C-2. 


JOT 


Table C-1. Tidal ranges for Atlantic, Gulf of Mexico, and Caribbean 
coastal locations (from National Oceanic and Atmospheric 


Administration, 1979a). 


No. PLACE MEAN 
Lot. Long. |Meon Spring | TIDE 
LEVEL 
TSH Wet) fest ooteg atest 
MAINE 
627 EASTPORT- cece ttc treet ee eteee 44 54 66 59 18.2 20.7 9.1 
629 | Gleason Cove, Western Possage:’:'::: 44 58 67 03 | 10.4 20.9 9.2 
St. Croix River 
63) Robbinston:-**'°°:: Kyao000000000 . 45 05 67 06 19.2 21.8 9.6 
633 St. Croin Island: :::*+ss+eeee's 9 45 08 67 08 | 19.6 22.3 9.8 
637 (er-1 1-1) Soe ecoeceve 45 11 67 17 20.0 22.8 10.0 
Cobscook Bay 
639 Deep Cove, Moose loland::*>-+°:° 44 54 67 Ol | 18.7 21.3 9.3 
64) Eost Boy so vlslejlel ol» ocleleleercleie e@ eceve 44 56 67 07 19.1 21.8 9.5 
643 Coffins Point: :s*sss+serre 00000 44 52 67 07 | 18.3 20.8 9.0 
645 Birch Islands:::ssssssssseereere 44 52 67 OP | 17.6 20.0 6.8 
647 Horan Head, South Bay::::°:*"°" 44 52 67 04 | 19.2 21.9 9.6 
649 Lubec rcs s steers teeter eeecescce eoccce 44 52 66 59 17.5 20.0 8.7 
651 | West Queddy Head-----:---:°: SOR0BG0 4449 6659] 15.7 17.9 7.8 
653 Moose Covers sss eer reseteeee eocce 44 44 67 06 14.8 16.9 7.4 
655 | Cutler, Little River----°:°°°° GOO000 44 39 67 13 | 13.6 15.5 68 
657 | Stene Islond, Mechias Bay:°-°°°° cece 44% 67 22 | 12.4 14,1 6.2 
659 | Mechiesport, Mochios River::ssss°°°° 44 42 67 24] 126 14.4 6.3 
661 | Shoppee Point, Englishman Bay::**°°° 44 37 67 *@] 12.1 19.8 6.1 
663 | Roque |. Harber, Englishman Bay:::°: 44% 67 31 | 12.3 14.0 6.) 
665 | Stecle Harbor lolamd:+s+ss+ssssses* | 4490 6733] 11.6 13.3 5.8 
667 | Jonesport, Moosabec Reach::+s++**+** | 4432 6736) 115 13.2 5.8 
669 | Gibbs Island, Pleasant River:::::°*: 44 33 67 46) 11.3 13.0 56 
671 | Addison, Pleasant River:::::**sere": 44 37 67 45 | 11.8 13.6 59 
673 | Trefton Island, Nerraguague Bey::::: 44 29 67 50 | 00.1 12.8 55 
675 | Milbridge, Nerraguogue River:*:°°*°: 44 32 67 53} 11.3 13.0 56 
677 Pigeon Hill Bay eeoesceeccccvcce eccce 44 27 67 52 Vt 12.8 56 
678 | Green leland, Petit Manen Bar----::- 4422 6752} 106 122 53 
679 | Pinkham Boy, Dyer Bay:--*-°:°*°*"°° 4428 6755] 109 12.5 54 
681 | Garden Point, Gouldsboro Bay:------ ° 44260 6759} Io08 12.4 54 
683 | Corea Harbor :sscseeeeeree oecceccee ° 44 24 67 58 | 105 12.1 $2 
685 | Prospect Harbor-::->--- seccesesee--- | 4426 6801] 105 121 52 
Frenchmen Bay 
701 Winter Horbor--*°***"° sooccccoes | 4423 6805] 10.1 16] 5.0 
703 Eastern Point Harbor-----°*-°: 90 44 28 68 10 | 10.5 12.0 5.2 
705 Sullivan:--coccrcessceeceee ere ejeie 44 3) 68 12} 10.5 12.0 5.2 
707 Mount Desert Narrows--*-°°°°°°*° 44 26 68 22} 10.5 12.1 5.3 
Mount Desert Island 
709 Salsbury Cove::*:+-°*: 50000000 00 44 26 68 17 | 10.6 12.2 5.3 
71 Bar Harbor----+--see'e ce scccces 44 23 68 12 | 10.5 12.1 5.2 
713 Southwest Harbor: :***+*++"° cooee | 4416 ©6819} 10.2 = 11.7 5.1 
715 Mount Desert:::°*****""° ceecceee 4422 6820] 10.6 12.2 5.3 
TN7 Bass Horbor-:::ssseetsr ee seeeees 4414 68 21 9.9 V0.3 5.0 
719 Pretty Marsh Harbor::--: SODOOROD 4420 6825} 10.2 W7 5.1 
Blue Hill Bay 
72) Union Rivers sees erste eceeece 44% 68 26 | 10.4 11.9 5.2 
723 Blue Hill Harbor:-+-+--+****> oe 44 24 68 34 | 10.1 11.6 5.0 
725 Allen Covessssssctsserssteees see 44 18 68 33 | 10.3 11.8 5.1 
727 Mackerel Cove ssssssssssctsseeeee 44 10 68 26 | 10.0 11.5 5.0 
729 | Burnt Coat Harbor, Swans Island:-::- 44 09 68 27 9.5 10.8 | 47 


Stations 627 to 663: Use reference station Eastport (627). 
Stations 665 to 729: Use reference station Portland (877). 


338 


621 
623 
825 
827 


Stations 731 to 827: 


MAINE, Penobscot Bay 


Eggemoggin Reach 
Naskeag Horbor:--**::++227 77" 


Center Harbor---sssett strstr 
Sedgwick secre ere reese rece seseeee 
Isle Au Haut: *--ccrte tert tet eters 
Head Harbor, Isle Au Haut----:::*"*: 
(Kimball Island scr rrr eter tee reteeee 
Or'yanville, Deor Isle-sss sete trees 
Stgnington, Deer Isle:-*sccc teeters 
Northwest Harbor, Deer Isle---::--*: 
Matinicus Harbor::sssssceteetcsteeee 
Vinalhaven, Vinalhaven Island:------- 
Iron Point, North Hauwen Island:-:-:: 
Pulpit Harbor, North Haven Island::- 
(et-T 1) a eeeee 
Pumpkin Island, South Bay--:--:**:°: 
Penobscot River 
Fort Point-scccrsrrrsreeeee eeeee 
Bucksportsssssserss seer sere eeces 
South Orrington:::++++++:: ecccce 
Hompden:sssssss rere eseees 550000 
Bongor::-:::: seavolets seal Jogdnes0o 
Bolbast: settee terete etc ene rceveeee 


Rocklandelicleisiciciielerisiciclalrsels s0000000 
Owls Head:::---:::: god0d000000 o0d000 
Dyer Point, Weskoag River-*-*-+-++°> 


MAINE, Outer Coos? 
Tenants Harbors :::sscerecercccrcsce 
Monhegan Rehan weccee ec cccce eccccee 
Burnt Island, Georges lolonds-+++++> 
St. George River 
apts Clydorssrssesseecceverevene 
Otis Coverssscrcrcccesccvccecces 
Thomaston:sscccrccccccccsccrccce 
New Harbor, Muscongus Bay::***°:°°"* 
Muscongus Horbor, Muscongus Seund::: 
Friendship Harberssssssseeerccereres 
Medomak River 
Jones Necks sscccccccccvccccccvce 
Waldobore:::scscccsscccscvcccese 
Pemaquid Herber, Johne Qay::::::*°": 


Demeriecette River 
East Boothboy::--::+--++:: 200000 
Newcastle sss: ettereee eoevcece ee 
Oomeariscove Harbor, Damariscove |-*° 
Boothboy Harbor: sss tess tseeeeee eee 
Southport, Townsend Gut:-:--- ceceeee 
Sheepscot River 
Isle of Springs codacD0dG occvccce 
Croce River entrance:::°°:: coves 
Wiscasset: sscsseees ecccccecsoe 
Sheepscot (below rapids):--°::°- 
Beck River cscs cecceccccee deo 
Robinhood, Sasenocea River----:-°: 
Mill Point, Sasanoa River::-:::- 


Upper Hell Gate, Sesance River:: 


339 


R°2Paae 


EESSSERELE ELKKESELESELSEE 


SSESSESSES ASSSSRES 


SSSSSSs 
SSSssesss 


oo 
370 
So 
N“N 


Use reference station 


6.8 
7.0 


11.6 
11.5 
11.7 
10.7 
10.4 
10.9 
W.5 
11.0 
V5 
10.4 
10.7 
10.8 
V0 
Wt 
11.7 


11.6 
12.5 
14.0 
14.6 
14.9 
11.5 
10.9 
19.2 
10.7 
10.9 


10.6 
10.1 
10.2 


10.2 
10.5 
10.8 
10.1 
10.4 
10.4 


10.5 
10.9 
10.1 


10.2 
10.7 
10.1 
10.1 
10.2 


10.3 
10.5 
10.6 
11.0 
10.5 
10.1 
10.1 

8.0 


Portland (877). 


MAINE, Kennebec River 


629 Fort Popham::::::: eecccre seeeccccoes ‘| 49 45 69 47 6.4 9.7 4.2 
63) Phippoburg:'''* beer ceereererevoves 43 49 69 49 6.0 9.2 4.0 
633 | Both::::: HODDDODOOOGCUUDGOOOOUNDODOO 43 55 69 49 6.4 74 3.2 


635 | Sturgeon Island, Merrymeeting Bey: 4359 6950] 5.9 6.1 2.6 
637 | Androscoggin River ontrence::**:::": 43 57 69 53 | 47 $.4 2.3 
639 | Brunowick, Androscoggin River::::::: 43 55 69 58 3.0 44 1.9 


641 | Bowdoinham, Cathance River:s:::::°:: 44 00 69 54 5.7 6.6 2.6 
843 | Richmond-+-+++++++++ seseae seveeveces 1 4405 6948 | 5.9 6.0 2.6 
845 | Nehumkeag loland:::++++++++++ seseee 14410 6945 | 5.9 6.0 2.6 
B47 | Gordiners: sss e etc ec ec scsccecveccece 4414 69 46 5.0 5.7 2.5 
B49 | Hallowell: > - cece ee ee cece ee ccesccnee 4417 69 47 43 49 2.1 
B51 | Augusta::: sss scree eee cece cece eees 44 19 69 46 | 4.1 46 2.0 
MAINE, Cesco Boy 
653 | Smell Point Harber::::: peeves pence 43 44 69 51 68.6 10.1 44 
A355 | Cundy Harber, New Meadows River's: 43 47 69 $4 69 10.2 44 
857 | Howard Point, New Meadows River::::: 43 33 69 33 9.0 10.3 4.5 
859 | Lowell Cove, Orco loland:++s++ssee%% 43 45 69 59 6.6 10.1 44 
861 | Horpowell Harbor: sssssssssseeeeeee on 43 46 70 90 9.0 10.4 4.5 
863 | South Horpswell, Potts Harbor::--::: 43 44 70 01 6.9 10.2 44 
865 | Wilson Cove, Middle Bay--:-:++++++°> 43 49 69 59 9.1 10.5 4.5 
867 | Little Flying Point, Maquoit Bay---: | 4350 7003] 90 10.3 4.5 
869 | South Freeport: :-s2secsss teeter eccee 43 49 70 06 9.0 10.3 4.5 
871 | Chebeague Point, Groat Chebeague I:° 43 46 70 06 9.0 10.4 45 
873 | Prince Point::--sscreecseseeseccccce 43 46 70 10 9.0 10.4 4.5 
675 | Peake Island:::+++:: slolelaleterersiers 60600 43 39 70 12 | 9.0 10.4 as 
077, | PORTLAND: <--:-eeseeee 90000000 o60000 43 40 70 15 | 9.0 10.4 as 
MAINE, Outer Ceest = Centinved 
679 | Richmond loland::--::: SROOOROO UG eee 43 33 70 14 6.9 10.0 44 
881 | Old Orchard Beach:*s:ss2sseseseeeee ° 43 31 70 22 8.8 10.1 44 
683 | Wood leland Herbor:::*sssesesececsee 43 27 70 21 8.7 9.9 43 
685 Cepe Porpolse eecccce eeccccoe ecoceeoe 43 22 70 26 6.7 99 4.3 
887 | Kennebunkport:::::°> se eccccecccccece 43 21 70 28 6.6 9.9 4.3 
089 | Verk Horbor-::::--+> s000008 Saoc00006 43 08 70 38 | 86 99 43 
MAINE ond NEW HAMPSHIRE 
Pertemouth Herber 
69) Jattreay Polmt:sccrssseccccevces ° 43 03 70 43 | 67 10.0 4.4 
893 Gerrish teland--:sssseesseeeeeee 14308 7042 | 87 100| 44 
095 Fert Point-:s:sscesesseeececooee 14308 7043106 99] 49 
897 Kittery Polnt:sscccsscccosccccce 43 05 70 42 | 87 10.0 44 
B99 Seevey Volandecccccccccccccaccce 43 05S 70 45 6.1 9.3 60 
901 Portomouth:>ssccececccccccccccce 43 05 70 45 | 7.8 9.0 3.9 
Piseataqva River 
903 Atlantic Heights--:--++s-s+eee - 14305 7046 | 7.5 8.6 3.7 
905 Dover Polntcticeciieielcleiesclor- eceee 43 07 70 50 | 6.4 7.4 3.2 
907 Salmon Falls River entrance:::-: 43 11 70 50 | 6.8 7.8 3.4 
909 Squamscot? River RR Bridge------ ‘| 4303 7055 | 68 7.8 3.4 
911 | Gosport Harbor, Isles of Shools----- 4259 7037 | 85 9.8 42 
913 | Hampton Harbor-------------+-+> sore 142540 ©6070 49 | : 8.3 9.5 4.0 
MASSACHUSETTS, Outer Coast 
915 | Merrimack River entrance:*:**-°~ tees 42 49 70 49 | 83 9.5 4.1 
917 | Newburyport, Merrimack River-::°---- 42 49 70 52 7.8 9.0 3.9 
919 | Plum Island Sound (south end)------- 4243 7047 | 86 99 43 
921 | Annisquam:-s-ssecerete tree c ec eeceees 42 39 70 4) 6.7 10.1 4.4 
923 | Rockport: ss sere e rt ttt t tet e tee ceee 42 40 70 37 | 86 10.0 43 


Stations 829 to 923: Use reference station Portland (877). 


340 


925 | Gloucester:::::: DODSOOD CODD OOOOOOOOD 42 3% 70 40 6.7 10.1 43 
927 | Manchester Harbors ssssssssseeeeeees 42 4%4 70 47 6.8 10.2 4.4 


929 | Bovorly:ssssssseser sees seveecceeeees | 4232 7053 | 90 104] 45 
PBI | Salom:ssssssrsereees Stee eee neeses 42 3) 70 53 6.8 10.2 4.4 
933 | Marblehead::::: DODD OOO OOO n se eeeeeeee 42 30 70 5) 9.1 10.6 4.$ 
Broad Sound 
935 Nahant:sssrrreeseeecees SOOUOODOE 42 25 70 55 90 10.4 4.5 
937 Lynn Harbor:::++sssseee2 00000000 42 27 70 58 9.2 10.7 4.6 
Boston Harbor 
939 | Boston Light:::-::ssssseeee teeceeee 42 20 70 53 9.0 10.4 4.5 
941 | Lovell laland, The Narrows:::**+*+:> 42 20 70 56 9.1 10.6 4.5 
943 | Deer Island (south end)::--::-: GO00D 42 21 70 58 9.3 10.8 4.6 
945 | Belle Isle Inlet entrance:::+:::++::: 42 23 71 00 9.5 11.0 47 
947 | Castle laland:+----+--+++++++: 200000 42 20 71 01 9.4 10.9 47 
949 | BOSTON ss ser re cece ccc ccccncecsevecee 42 21 71 03 9.5 11.0 47 
951 | Dover St. Bridge, Fort Point Channel 42 2) 71 04 9.6 11.0 4.8 
Charles River 
953 Charlestown Bridge----:------ isis 42 22 71 04 9.5 11.0 4.7 
955 Charles River = -« s+ ++ eee%> sees 42 22 71 04 9.5 11.0 4.7 
957 Chorlestown::+*+-++-++> SDO80000c 42 22 71 03 9.5 11.0 47 
959 | Chelsea St. Bridge, Chelsea River--- 42 23 71 01 9.6 10.8 48 
965 | Neponset, Neponset River-:+-*+++-+s> 42 17 71 02 9.5 11.0 4.7 
967 | Moon Head::---+++-+ssee-ereee covcece 42 19 70 59 9.4 10.9 47 
969 | Rainsford Island, Nantasket Roads::: 42:19 70 57 9.1 10.6 4.5 
Hingham Bay 
971) | Nut loland::+--++-+-++--see. covcccoe- | 42 17 70 57 9.2 10.7 4.6 
973 | Sheep Island--+-+++++++-s+0- eoreccce 42 17 70 55 9.5 $1.0 47 
975 | Weymouth Fore River Bridge:---++--- 4215 70 58 95 1.0 4.7 
977 | Weymouth Back River Bridge-:---- tees 4215 70 56 95 0.0 47 
979 | Crow Point, Hingham Harbor entrance: 4216 70 54 94 10.9 47. 
9B) | Hingham:::::++++seeeeeeeeeee 500000000 42 15 70 53 9.5 11.0 47 
9863 | Nantasket Beach, Weir River-s:sseee> 42 16 70 52 9.4 10.9 47 
985 | Strawberry Hill---:> tees eeeeeceeeoes 42 17 70 53 9.5 1.0 4.7 
907 | Hull------eeeeeee o000000 dd005g000000 42 18 70 55 93 108 47 
Cohosset Harber to Devis Bonk 
989 | Cohasset Harbor (White Head):-:-:-> . 42 15 70 47 68 10.2 44 
991 | Seituate::--- DODDDODDA00NDG000000000 42 12 70 43 6.8 10.2 44 
992 | Demons Point, Nerth River: s:s:seeee- 4210 70 44 6s 9.9 4.2 
Cape Cod Bay 
993 Gurnot PolAtersserrrrerrreeveres 42 00 70 36 9.2 10,7 46 
998 Plymouth: sssrrrevccesccsessecree 4) 56 70 40 9.5 11.0 47 
997 Cepe Cod Cenel, eect ontrance:’ | 4146 7030 67 = 10.9 4.3 
999 Bernoteble Herber, Beech Point: 414 70 17 9.5 11.0 47 
1001 Wellileetsssrssserecsesssccveveee | QI 8S 7002] 100 I1.6 80 
1003 Provincetown: :ssssrseserscceceee 4203 701) 9.1 10.6 4.$ 
1005 Roce Point: ss:ssrerseecrececeeee 4204 7015 90 10.4 4.5 
Cape Cod 
1007 Cape Cod Lighthouse, SE. of:---> 4200 700) 76 6.8 3.8 
1009 Neovoot Harbors +ssssseeseeeseeeee 4| 48 69 56 6.0 7.0 3.0 
Von) Chotham (outer coast): sss: 4140 69 56 6.7 7.6 3.3 
1013 Chatham (Inside): sss eeesscreee 41 4) 69 57 3.6 42 1.6 
1015 Ploasant Bay-----s-eeeeeereeeees | gy 4g 69 59 3.2 3.7 1.6 
1017 Monomoy Points ccecccccccccccccce 4) 33 70 00 3.7 43 1.8 
1019 Georges Shool::-°:- eoccccone eecvcvece 4) 42 67 4 4.2 48 21° 
1021 | Davie Bank, Nantucket Shoale----:-:- | 4) 08 69 39 1.3 1.5 0.6 


Stations 925 to 1021: Use reference station Boston (949). 


341 


Nantucket Seund, North Side 


1023 | Stage Horbor:s:-sceeecseess ee reeeeee 4\ 40 69 58 3.9 47 1.9 
1025 | Wychmere Herhert a weet tere eeceenee . 41 40 7004] 3.7 43 1.6 
1027 Dennis Port: see eeccceeee ec cccccece 41 39 70 07 3.4 4.1 1.7 
1029 | South Varmouth, Base River::::*:*°°: 4\ 40 70 11 2.8 3.4 1.4 
103) Hyonnis Port-*ssseeseeeeeeees eecccee 41 38 70 18 3.1 3.7 1.5 
1033 | Cotuit Highlands::-----++++++seeerrs 4) 36 70 26| 2.5 3.0 1.2 
1035 | Poponesset Island, Poponesset Boy-:: 41 35 70 28] 2.3 2.8 1 
1037 | Succonnesset Polmt:::-°esceeeeesceee 41 33 70 29 9 2.3 0.9 
1039 | Falmouth Heights-->----> DOOOCOOCOOGG 41 33 70 36 1.3 1.6 0.6 
Nentucket Island 
1041 | Tom Nevers Head::::sseesecesecccere 41 14 70 O1 1.2 1.4 0.6 
1043 | Slesconset:s sce eeercrercccccccceece 4116 69 58 1.2 1.4 0.6 
1045 | Weuwinet (outer shore): sss sseeseee: 4120 7000; 3.3 40 1.6 
1047 Great Points: sssercccccccccsccccccee 4) 23 70 03 3.1 3.7 1.5 
1049 | Nantucket: ::e:scccecceceee seccccceee | 4117 7006) 3.0 3.6 1.5 
1051 Eel Point:ssecceercccecccccce eccccce 4117 70 12 2.3 27 1.0 
1053 | Tuckernuck Island, Eost Pond:::°:::: 41 18 70 15 2.6 3.1 1.3 
1055 | Muskeget Island, north side::**+°+- 41 20 70 18 2.0 2.4 1.0 
1057 | Smith Point, north side:sss°ssseeree 4) 17 70 14 1.5 1.9 0.6 
1059 | Miacomet Rips sssesressesecsscvonnes 4114 7006 1.7 2.0 0.8 


Marthe’s Vineyerd 


1061 | Wasque Point, Cheppaequiddick f+:+::- 4) 22 70 27 1.0 1.4 0.6 
1063 | OFf Jobs Neck Pond::ssereeeeeeeeeees | ah 21 7035] 27 32] 13 
1068 | Of Chilmerk Pond-sss+esseeeeseveees | 4120 7043/ 29 35] 14 
1066 | Squibnocket Point: :: 4119 7046] 29 3.7 1.5 
1067 | Nomans Land:::ccessscccccccccsconce 4l 16 70 49 3.0 9.6 0.5 
1069 | Gay Hood: ::sssssserevcevccersevceres 4) 2) 70 50| 290 3.5 1.4 
1071 | Menemsha Bight:ssrrrrrercecceccccece 41 21 70 46 2.7 3.4 3 
1073 | Cedar Tree Noch: sssssssecceeecsenene 4) 26 70 42 2.2 2.0 v0 
VO75 | Off Leke Tanhmoe:sssssesseeeeessevce 41 26 70 38 2.1 2.5 1.0 
1077 | West Chopsscrrsscrecrsceeccecererees | 4129 7036] 14 171 O7 
1079 | Vineyard Haven:sssssssesereesereeees | 4127 7036| 1.7 201 O08 
VOB | East Chops ssssscresccecccercccccees 4) 28 70 34 7 2.0 0.8 
10863 | Ook Bluffs--------- te eecrceercccovece 4127 7033 1.7 2.0 0.8 
1065 | Edgartown::-----+-- Eoodg000000000000 4123 703) 19 23 09 
1067 | Cope Poge, Choppeaquiddick Island:::: 4\ 25 70 27 2.2 2.6 0 
Vineyard Sound 
10869 | Noboke Point-::ccccesscscccccsccccee | Qf Ql 70 39 15 1.9 0.7 
Weods Hole 
1091 Little Harboresscccssscccercccce 41 3) 70 40 1.4 1.8 0.7 
1093 , Ocoanogrephic Inotitution-----> | 4131 7040] 1.8 2.2 09 
1095 Uncetene Island (seuth side):--> 41 3) 70 42 2.6 45 1.8 
1097 Terpevlin Covercssccccccccccsccccoce 4) 28 70 46 0. 24 09 
Quicks Hole 
1099 South side-----:- cece esses seeeee 4) 26 70 51 2.5 3.1 1.2 
1101 Middle-----: DOOD OOO OOOO OOOO OIG 4\ 27 70 51 3.0 3.7 1.5 
1103 North side-ssscrseesseeeeeeeee oe 4\ 27 70 5) 3.5 44 1.7 
Buzzords Bay 
1105 | Cuttyhunk Pond entrance:-:::-+:::::: 4) 25 70 55 3.4 4.2 1.7 
1107 | Penikese Island:-------++sssseeeeeee 4) 27 70 55 3.4 42 7 
W109 | Kettle Covers ssssseeeseeeeeevene seee 4) 29 70 47 3.8 47 9 


Stations 1023 to 1057 and 1077 to 1087: Use reference station Boston (949). 
Stations 1059 to 1075 and 1089 to 1109: Use reference station Newport (1153). 


342 


Busrzerds Bay 


W111 | West Felmouth Harbor--------- seeeeee 41% 70 39 40 5.0 2.0 
1113 | Barlows Landing, Pocasset Harbor:--- 4) 4) 70 38 40 5.0 2.0 
VWWIS | Abiels Ledge--:*s--ssscsesererrrees 4\ 42 70 40 3.9 49 2.0 
W117, | Monument Beach:-:+-+++sseteeseeeeeee 4) 43 70 37 4.0 5.0 2.0 
119 | Cape Cod Canal, RR. bridge -°-:: o- 41 44 70 37 3.5 4/1 1.8 
112) | Great Hill: +s: sss rere eerste eeee eee 4) 43 70 43 4.1 5.1 2.0 
1123 | Wareham, Wareham River-:::: ‘seeeeeeee 4) 45 70 43 4.1 5.1 2.0 
0125 | Bird Island-:--+--++2+sses eer ecereee 41 40 70 43 4.2 5.2 2.1 
1127 | Marlon; ss sc sc rete reece cece eeeeeeee 41 42 70 46 40 5.0 2.0 
1129 | Mattapoisett: ---s<rcrt cette teers 41 39 70 49 3.9 49 2.0 
W131 | West Island (west side)----*-*****: 41 36 70 50 3.7 46 1.8 
W133 | Clarks Point: :::seessse cre ttee eee eeee 41 36 70 54 3.7 46 1.8 
W195 | New Bedford: :-:+sssscrssscsererceees 41 38 70 55 3.7 46 1.8 
1137 | Belleville, Acushnet River:::****"*: 4) 40 70 55 3.8 47 1.9 
1139 | South Dartmouth, Apponagansett Boy 41 35 70 57 3.7 46 1.8 
W141 | Dumpling Rocks::++s-ssssr reset entree 41 32 70 55 3.7 46 1.6 
Westport River 
1143 Westport Harbor-::--+++ sees: 41 30 71 06 3.0 3.7 1.5 
1145 Hin Bridge, East Branch:---::::: 4134 71 04 2.7 3.4 1.3 


RHODE ISLAND, Nartagonsett Bay 


WAZA ES akon nether iielsbati)Keisietes oveioinieial=)siehei02)0) 4\ 28 71 12 3.1 3.9 1.6 
1149 | Tiverton (between bridges)::*::*:: OG 41 38 71 13 3.8 47 1.9 
VIS | Beavertail Points: sssssrstreeeees 000 4\ 27 7) 24 3.5 44 1.6 
VUS3 | NEWPORT- + ssc rece see tcc eee eee eeenes 41% 71 20 3.5 44 1.8 
1155 | Prudence Island, Sandy Point--::--:: 41 36 7) 18 3.9 49 2.0 
W157 | Bristol Point::-+sss esters tse eeeee 41 39 71:16 4.0 5.0 2.0 
RHODE ISLAND and MASSACHUSETTS 
Narragansett Bay — Continued 
1159 | Fall River, Messachuvoottarsssssssses 4) 44 71 08 44 6.5 2.2 
116) | Teunton, Taunton River, Maeoe':ss''': 4\ 53 71 06 2.8 3.5 1.4 
W163 | Briotel: sss sess SOOO OOOIOOIIOD veeeuens 41 40 71 16 4/ 6.1 2.0 
WNOS | Warren str rrr rreeeernenveneneaenens 4\ 44 71 17 46 5.7 2.3 
1167 | Nayatt Point:: +++: teeeerens seerenge 4) 43 7120) 46 $.7 2.3 
1169 | Providence:::sssttssseereees seeeee a 4\ 48 7) 24 4.6 5.7 2.3 
VI7) | Pawtucket, Seekonk River---:: DODDIOOG 41 52 71 23 4.6 5.6 2.3 
VI73 | East Greenwich: s:sssseccccrsseeeee oe 4) 40 7\ 27 4.0 5.0 2.0 
AES || MTEIGRC oo ocd an000s 00000000 090000000 4\ 34 7) 27 3.8 47 19 
WW77_ | Narragansett Pior--*:*++-:> OOG000000 41 25 7\ 27 3.2 40 1.6 


RHODE ISLAND, Outer Coast? 


1179 | Point Judith Harbor of Refuge-::::-- 4122 7129 3.1 3.9 1.5 
116) | Block Island (Great Salt Pond)--°:°: 41 71 35 2.6 3.2 1.3 
1163 | Block Island (Old gacbor)) 00000 eoece 41 10 71 33 2.9 3.6 1.4 
W185 | Watch Hill Point: :++++seeceeseceees 4118 71 52 2.6 3.2 1.3 

1.3 


1186 | Westerly, Pawcatuck Piag oerccevove 4) 23 ?\ $0 2.7 3.2 
CONNECTICUT, Long Islond Sound 


1187 | Stonington, Fishers Island Sound---- 4120 7154] 2.7 3.2 1.3 
1189 | Noank, Mystic River entrance----°--: 41 19 71 59 2.3 2.7 1.2 
11910 | West Herbor, Fishers Island, N. Y-°: 41 16 72 00 2.5 3.0 1.2 
1192 | Silver Eel Pond, Fishers I., N. Y°°° 41 15 72 02 2.3 2.7 Vt 
Themes River 
1193 NEW LONDON, State Pier:--::-:- 4\ 22 72 06 2.6 3.1 1.3 
1195 Smith Cove entrance::*:****s°°"° 4) 24 72 06 2.5 3.0 1.2 
1197 Noerwich::-+°+°°-°> DOD CUCUDOOOOOS 4.31 7205 3.0 3.6 V5 
1199 | Millstene Point-:-::-:: ce eccccsccecs 41 18 72 10 2.7 3.2 1.3 
Connecticut River 
1200 Saybrook Jotty:--sssccsssereeees 41 16 72 21 3.5 42 1.7 
1201 Soybrook Point---:°-+ssss°s-eee> 41 17 72 21 3.2 3.8 1.6 
1202 Lyme, highway bridge----------- 4119 72 21 3.1 3.7 1.5 
1203 (BnqOp00ed0 00000 boDD000d0S000000 4) 2) 72 23 3.0 3.6 1.5 
1204 Hadlyme (7) --srsssesccesceees oecee 4) 25 72 26 2.7 3.2 1.3 
1205 East Haddam::**s7+2Fseceeserees 4\ 27 72 28 2.9 3.5 1.4 
1206 Haddem(7)-:::+::°> seeceee weeceee 4\ 29 72 30 2.5 3.0 1.2 


( 7) Tidal information applies only during low river stages. 
Stations 1111 to 1185: Use reference station Newport (1153). 
Stations 1186 to 1206: Use reference station New London (1193). 


343 


Connecticut? River 


Higganum Creeks: ssssesseeeee cove 

Portland( 7) sccecceecteeeee eevee 

Rocky HiN(7)- soe ese eee eeeeee 

Harthord (7) crt t ccs t sets eecees 
Westbrook, Duck Island Roads:::::":> 
Duck Island-::::secsssee"° 9000000000 
Modison: soos et ster 50000000 o0000 
Falkner Island:::::*:: were cece e cece 
Sachem Head: ::::se*s:":> eeletclevetsteleletele 
Money Island:::ssssseeee a9000000000 
Brantord Harbor::::**:*:*° SOOGOOODOD 
New Haven Harbor ontrance:::***:*""* 
New Heaven (city dock) eecee ecocecccce 
Milford Harbor:::s*sese2"s ecccccccn 
Stratford, Housatonic Rivers:::°°ee* 
Shelton, Housatonic River::::: ecccee 
BRIDGEPORT: ++ sete reer ees od00000000 


Black Rock Harbor entrance:ss*ssse"2 
Saugatuck River entrance'ssssrrr%0e0 
Sout Norwalk: ssseescrrrcrscccvcv0002 
Greens Leodgerrsssrssrerererceecccene 


Stemlord:::::::°:: ececcoecce eccecvcve 
Cos Cob Harbor::::****** ececcvecccce 
Greenwich: ::s*sere* eccecccccceecees 


Greet Ceptein faland::ssccccccccccece 


NEW YORK 
Long lslend Sound, Nerth Side 


Rye Beach:: 
Momeoroneck:: 

New Rochella:ssssssereerecececccccce 
Devids Poland sscrceseecccccvccccccece 


City tsland::---+:--: ec ccccccscesce coe 
Threge Neck wee e ccc cc cece eee csccece eoe 
Eest River 
Whitestonessssccessesreccerece eoccee 
Old Ferry Polnleccrccrrcrsssscecces 
College Point, Flushing Bay----- Boo 


Northern Blvd. Bridge, Flushing Cr:: 
Westchester, Westchester Crook::::°° 
Hunts Polat cccrsccsrerserecce eoccece 
Westchester Ave. Bridge, pices LJoooo 
North Brother leland--:-°****se-e> oo 
Pert Morels (Stony Polnt):::::: eccee 
Lawrence Point::sccs sss tteeeeeccccee 
Woleot? Avenue ss sss tec c ttt eeccene 


Pot Cove, Astoria: sess steer reees 
Hell Gate, Hallets Point---:-:-+:::- 
Horns Hook, E. 90th Street-:--:*-°-:°: 
Welfare Island, north end:--------:: 
37th Avenue, Long Island City::::::: 
Eost 41st Street, New York City::--: 
Hunters Point, Newtown Creek--:--:>: 


‘English Kills ent., Newtown Creek::: 


East 27th Street, Bellevue Hospital: - 
East 19th Street, New York City::::: 
North 3d Street, Brooklyn:-:-+--°--- 
Williomsburg Bridge SOIOOIOIOICOOOOOIcIG 
Wellabout Bay::*::-:ss esses eeer eee 
Brooklyn Bridge slolehsjalsielelojelelejia\aie)siclejsiele 


$855 8S85S5 
SESS ESERESE 


40 47 


72 33 2.6 3.1 \ 
72 38 2.2 2.6 ' 
72 38 2.0 2.4 I 
72 40 19 2.3 V. 
72 28 ul 47 2 
72 29 4.5 5.2 2.2 
72 36 49 5.6 2.4 
72 39 5.4 6.2 2.7 
72 42 5.4 6.2 2.7 
72 45 5.6 6.4 2.8 
72 49 5.9 6.8 2.9 
72 55 6.2 7A 3.1 
72 55 6.0 69 3.0 
73 03 6.6 7.6 3.3 
73 07 5.5 6.3 2.7 
73 05 5.0 $.8 2.5 
73 1 6.7 7.7 3.4 
7213] 69 79 3.4 
73 22 7.0 6.0 3.5 
73 23 7A 6.2 3.5 
73 27 7.2 6.3 3.6 
73 33 7.2 6.3 3.6 
73 36 7.2 8.3 3.6 
73 37 7.4 6.5 3.7 
73 37 7.3 64 3.6 


73 40 7.2 6.5 4.6 
73 40 7.2 6.4 3.6 
73 44 7.3 8.6 3.6 
73 47 7.2 8.6 3.6 


7346) 72 65| 36 
7347| 72 85| 36 
7348| 70 82] 35 


7349} 7.1 6.3 3.5 
73 50} 7.1 6.3 3.5 
73 S\ 6.5 7.6 3.2 
73 50} 6.8 6.0 3.4 


73 50 7.0 6.3 3.5 
73 $2 6.9 6.) 3.4 
7353) 69 6.1 3.6 
73 54 6.6 7.8 3.3 
73 54 6.3 7.4 3.1 
73 55 6.4 7.6 3.2 
73 55 6.1 7.2 3.0 


7356] 53 63] 26 
7356] 5.1 61] 25 
7357) 48 56! 26 
7356] 48 58] 24 
7357| 45 $55] 22 
7358] 43 52] 21 
7357] 41 49] 20 
7355| 42 50] 21 
7358] 42 50] 21 


7358] 41 49] 20 
7358] 41 49] 20 
7358] 41 49] 20 
7359] 41 49] 20 
7400] 43 52] 21 


{ 7) Tidal information applies only during low river stages. 


Stations 
Stations 
Stations 
Stations 


1207 to 1213: Use reference 
1214 to 1251: Use reference 
1253 to 1285: Use reference 
1287 to 1313: Use reference 


344 


station New London (1193). 
station Bridgeport (1235). 
station Willets Pt. (1331). 
station New York (1511). 


1315 
1317 
1319 
1321 
1323 
1325 
1327 
1329 


1331 
1333 
1335 
1337 
1339 


1341 
1343 
1345 
1347 
1349 
1351 
1353 
1355 
1357 
1359 
1361 
1363 
1365 
1367 
1969 
1970 
1371 
1373 
1374 
1375 


1377 
1379 


1361 
1383 
1385 
1387 
1389 
1391 


1393 
1395 
1397 
1399 
140) 
1403 
1403 
1407 


1409 
1411 
1413 
1415 
1417 
1419 
1421 


Harlem River 
E. 110th Street, New York City:- 
Willis Avenue Bridge--*-****:"** 
Modison Avenue Bridge:-------*°* 
Central Bridge ce ccneecccccceccs 
Washington Bridge dddooancca eccee 
207th Street Bridge----- teeeeee . 
Broadway Bridge celccecenccceccece 
Spuyten Duyvil Bridge--------: oe 


Long Islond Sound, South Side 


WILLETS POINT---+--°-++e- AdOGHOONONO 
Hewlett Point-::ccscsssseeeeeee ecese 
Port Washington, Manhasset Bay-:--:- 
Execution Rocks:-:----: veeeee eeeeces 
Glen Cove, Hempstead Harbor--::--:-: 
Oyster Boy 

Oyster Boy Harbor::++-+++++%ee- 5 

Bayville Bridge cece cen ninceese eee 

Cold Spring Harbor----:- cpdan000 
Eatons Neck Point:::*::- eececccccee . 
Lloyd Harbor ent., Huntington Bey::: 
Northport, Northport Bay:::--: oqacK0 
Nissequogue River entrance:::::*: eee 
Stony Brook, Smithtown Bay:--:::°:-: 
Strattord Shoal--::::-+csereerccecees 
Port Jetlerson Harbor entrance:::::: 
Port Jefferson::**°*: ec eeeeerccccens 
Setauket Harbor:-:::: sev eerevceeeees 


Conscience Bay ent, (Nerrews)::*""'* 
Meunl Sinel Harber tts ecerceccrcene 
Hered Points rssercerecccecsecccccecs 
Nerthvillers:sseccccesccvecevececcccs 
Mattlituek tmnletessssscsererreccvseee 
Horton Points ssseccceerccccccccccces 
Heshamomuck Beeches ssseesssssccccces 
Teumen Beach: s:ssscccecsecrecccvccce 


Plum Gut Herbor, Plum lsland:::-:::: 
Little Gull teland::--:: bod00oe0b6 ae 
Shelter Island Sound 
Orlent---:°° eovceee sorcerer eeccree 
Greenport: ss ssssrcesrresesssces 
Southhold::cccsecereorevcccreveee 
Noyack Bay::*:+::: ° 
Sag Herbor::s:-s:+:> sisiciclotelsvelelete 
Ceder Point::-:*::-::: SOOO OOOD 
Peconic Bays 
New Suffolk: :sccccrsssccccccscee 
South Jamesport:::s+ssseseeeeeee 
Shinnecock Canol:-::-::seeeereee 
Threemilje Hbr. ont., Gardiners Bey:: 
Promised Land, Napeague Bay'':::''': 
Montauk Herbeor entronce:s::sssssreee 
Montauk, Fort Pond Bay: sssssesssesee 
Montauk Point, north slde:ss:ssseece 


eeeeeveccces 


Long Islond, South Side 


Shinnecock Inlet (ocoan):+sssss+seee 
Ponquogue Bridge, Shinnececk Bay:::- 


Potunk Point, Moriches Bay-----°--*: 
Moriches Inlet? -s::eceeececeeeccce od 
Mastic Beach, Moriches Bay--*----::> 
Fire Island Breakwater::----:-+-++: . 


Democrat Point, Fire Island Inlet:-: 


40 47 73 56 
0 48 73 56 
40 49 73 56 
40 50 73 56 
40 51 73 56 
40 52 73 55 
40 52 73 55 
40 53 73 56 
40 48 73 47 
40 50 73 45 
40 50 73 42 
40 53 73 44 
40 52 73 39 
40 53 73 32 
40 54 73:33 
40 52 73 28 
40 57 73 24 
40 55 73 26 
40 54 73 21 
40 54 73:14 
40 55 73 09 
41 04 73 06 
40 58 73 05 
40 57 73 05 
40 57 73 06 
40 58 73 07 
40 58 73 02 
40 58 72 30 
40 59 72:39 
41 01 72% 
4\ 05 72 37 
41 06 72 24 
41 08 72 19 
41 10 72 12 
4) 12 72 06 
41 08 72 18 
4) 06 72 22 
4) 04 72 25 
41 00 72 20 
41 00 72 18 
41 02 72 16 
41 00 72 28 
4056 72 35 
40 54 72 W 
41 02 72:11 
4) 00 72 05 
41 04 7\ 36 
4) 03 7\ 58 
4\ 04 7\ $2 
40 50 72 28 
40 SI 72 30 
40 48 72 39 
40 46 72 45 
40 45 72 50 
40 37 73 18 
40 38 73 18 


Stations 1315 to 1329: Use reference station 
Stations 1331 to 1339: Use reference station 
Stations 1341 to 1375: Use reference station 
Stations 1377 to 1407: Use reference station 
Stations 1409 to 1421: Use reference station 


345 


o 
“ 
™“ 
N 
*) 
Cm) 


8.9 6.8 2.9 
$.4 6.2 2.7 
$.2 60 26 
4.0 46 2.0 
4.2 48 2.1 
3.6 3.9 1.7 
2.6 3.1 1.3 
2.2 2.6 Vt 
2.5 3.0 1.2 
2.4 2.9 1.2 
2.3 2.7 BU 
2.3 2.7 BU 
2.5 3.0 1.2 
2.5 3.0 1.2 
2.6 3.1 1.3 
2.7 3.2 V3 
2.4 2.9 1.2 
2.4 2.9 1.2 
2.3 2.7 (BU 
19 2.3 09 
2.1 2.5 10 
2.0 2.4 1.0 


New York (1511). 

Waliikeres Wes (Css) 
Bridgeport (1235). 
New London (1193). 
Sandy Hook (1625). 


Long Islond, South Side 


Great South Boy 
1422 Fire Island Coast Guard Station: 40 38 73 16 9 2.3 0.9 
1423 Fire Island Radiobeacon::::*:°°° 40 38 73:13 0.7 0.8 0.3 
1425 West Fire Island:--+:-+++seeeee% 40 39 73 \2 0.6 0.7 0.3 
1427 Point o’ Woode::::**"::: eceepes 40 39 73 08 0.7 0.8 0.3 
1429 Bellport, Bellport Bay-::-*-°::: 40 45 72 56 0.8 1.0 0.4 
1431 Patchogue----*s--crrttese ce eeeee 40 45 73 Ol 0.7 0.8 0.3 
1433 Sayville (Brown Creek)---°e°*e-> 40 44 7304] 06 0.7 0.3 
1435 Greot River, Connetquot River: 40 43 73 09 0.7 0.8 0.3 
1437 Bay Shore::s--sseeteeerececee eee 40 43 7314) 06 0.7 0.3 
1439 Oakbeach------s-seeeceseeeens eee 40 38 7317) 0.7 0.8 0.3 
144) Babylon: sess seeeeecee cece ee cee 40 41 7319 | 06 0.7 0.3 
1443 Gilgo Heading:--+*-*++++*°> wisieieie 4037) 7324) 1.1 1.3 0.5 
1445 | Amityville:: ss sess s reese eeeeee see 40 39 73 25 1.2 1.4 0.6 


1447 | Biltmore Shores, South Oyster Bay::: 40 40 73 28 1.4 1.7 0.7 
1449 | Jones Inlet (Point Leokout)::*:se°: 40 35 73 35 3.6 43 1.8 


Hempstead Bay 


1451 Deep Crook Meadow:::*sssseeere 40 36 73 32 2.4 2.9 1.2 
1453 Green Island::::++++°+:: seeeee oe 40 37 73 30 1.9 2.3 0.9 
1455 Cuba Island-::+:++s+s+e> eoeeees 40 37 73 3) 2.3 2.8 0.0 
1457 Bellmore, Bellmore Creoek:::°*°°> 40 40 73 3) 2.0 2.4 1.0 
1459 Neds Creok::-:-:+-:: SOODOOD eeccee 40 37 73 33 2.7 3.3 1.3 
1461 Freeport Crook:::+%s+seeeeeeee 40 38 73 34 3.1 3.8 1.5 
1463 Freeport, Baldwin Bay:-::::: cece 40 38 73:35 3.0 3.6 1.5 
1465 Long Beach---+-+++-sssecrereee ee 40 36 73 39 3.9 47 1.9 
1467 | Long Beach (outer coast)::-:*°:**:°° 40 35 73:39 | 4.5 5.4 2.2 
Hempsiead Bay — Continued 
1469 East Rockaway::::s:sssesesereeee 40 38 73 40 3.9 47 1.9 
147) Weodmere, Brosewere Bay:-::-: see 40 37 73 42 3.9 47 1.9 
1473 | East Rockaway Inlet---++--+-s-+--ee> 40 3% 73 44 4.1 5.0 2.0 
Jamaica Bay 
1475 Plumb Beach Chonnol-:-::----+°°° 40 35 7355) 49 5.9 2.4 
1477 Borren Island, Rockaway Inlet:: 40 35 73 53 5.0 6.0 2.5 
1479 Beach Chanhel (bridge)----°--°°: 40 35 73 49 5.1 6.2 2.5 
148) Motts Basin:-°:°-:°: te cecccccce : 40 37 73 46 5.4 6.5 2.7 
1483 Nerton Point, Head of Bay:-:::°: 40 38 73 45 5.4 6.5 2.7 
1485 - J. 6. K. International Alrport:: @ 37 73 47 5.3 6.4 2.6 
1487 Grassy Boy (bridge):------:**°": 40 39 73 50) 5.2 0.3 2.6 
1489 Canarsie sss +s ss teste tet eteee 40 38 73 53 5.2 6.3 2.6 
1491 Mill Basin: :+ssscs street eee e eens 40 37 73 55| 5.2 63 2.6 
NEW YORK ond NEW JERSEY 
New York Harbor 
1493 | Comey Island:-::-+s estes e crete eens 40 34 73 59) 47 5.7 2.3 
1495 | Norton Point, Gravesend Boy::-::-::: 40 35 7400}] 4.7 5.7 2.3 
‘1497 | Fort Wadsworth, The Norrows:-------: 40 36 7403 | 4.3 5.2 2.1 
1499 | Fort Hamilton, The Narrows-----:---- 40 37 7402) 4.7 5.7 2.3 
1501 | Bay Ridge--ccss sett ttt ttt tees 40 38 74 02 4.6 5.5 2.3 
1503 | St. George, Staten Island-----+-+--- 4039 7404) 45 5.4 2.2 
1505 | Bayonne, New Jorsey::::-*-**-7-***** 40 41 74 06 45 5.4 2.2 
1507 | Gowonus Boy-:--+- eset eee 40 40 74 01 44 5.3 22 
1509 | Governors Island-----:-:------- D9 0000 40 42 7401 | 44 5.3 2.2 
151) | NEW YORK (The Bottery)---:--::-°°-: 40 42 74 01 45 5.4 2.2 
Hudson River(8) 
1513 | Jersey City, Pa. RR. Ferry, N. J--:: 40 43 74 02 44 5.3 2.2 
1515 | New York, Desbrosses Street::::::::: 40 43 74 01 44 5.3 22 
1517 | New York, Chelsea Docks::+:::*::°-:: 40 45 74 01 43 5.2 2.1 
1519 | Hoboken, Castle Point, N. J:-:++:-:: 40 45 74 01 43 5.2 2.1 
1521 | Weehawken, Days Point, N. J::+---::- 40 46 7401 42 50 2.1 
1523 | New York, Union Stock Yords----:- 29900 40 47 7400} 42 5.0 2.1 
1525 | New York, 130th Street::--:-*::++:°:: 40 49 73 58 4.0 48 2.0 
1527 | George Washington Bridge:------+-::: 40 51 73 57 | 39 46 1.9 
1529 | Spuyten Duyvil, West of RR. bridge-- 40 53 73 56 3.8 45 1.9 
1531 | Yonkers: ores etceicc rence cvccorciccs 40°56 73 54 37 4a 18 


{ 8) Values for the Hudson River above the George Washington Bridge are based upon averages for the 
six months May to October, when the fresh—water discharge is af a minimum. 


Stations 1422 to 1499: Use reference station Sandy Hook (1625). 
Stations 1501 to 1531: Use reference station New York (1511). 


346 


1533 
1535 
1537 
1539 
1541 
1543 
1545 
1547 
1549 
1551 
1553 
1555 
1557 
1559 
1561 
1563 
1565 
1567 
1569 


1$71 
1573 
1575 
1577 
1$79 
1581 
1583 
1585 


1586 
1587 
1588 
1589 


1591 
1593 
1595 
1597 
1599 
1601 


1603 
1605 
1607 


1609 
160 
1613 
1615 
1617 
1619 
1621 
1623 
1625 


( 8) Values for 


Hudson River(8) 


Dobbs Ferryss soso eeleciee 
Torrytown seeescccce eoeeece eoccesee oe 
Ossining: :- seco eercre deeeeeeeoccvre 
Hoverstraw'******"°° Ce a ae evecede 
Peokskill:-sccrr cress te secscecceeeee 
West Point:***s*°°°°: ee eerecccseccrs 
Newburgh:::"°:: dodD00000000 aiefalololalelele 
New Homburg: sssssceeeereseeees 60000 
Poughkeepsio:ss-ssses rest eees 900000 
Hyde Park: :++++s+00"* 65000000 9000000 
Kingston 2 | eee 
Tivoliccc ccc ccc r eres eeeeercece ecco 
Cotskill-+:ss+** ee ee ee . 
Hudson sss sc ects setts seeeeee eee 
Consackio::*scsces tsetse eevee 
New Baltimore: ss os sss eettee eeccece 
Castleton—on—Hudson:->:*°-°: ecccccee 
ALBANY ccccctccccscereeseeeee eecccee 
Troysccccrrees ste eeeseeees 900000¢ O00 
The Kills ond Nework Bey 
Kill Van Kull 
Constable Hook:-:-:--:: eeseee eee 
New Brighton wee ccc cesc cece cecceces 
Port Richmond:::::°°"*°": ecocsece 
Bergen Polmt-ssesese: ec ceccvcece 
Shooters foland::ssecrseee> ecccccece 
Port Nework Terminal::-*°°°°: eeecece 
Newark, Passaic Rivet-:*:*-*****""° 
Passaic, Gregory Ave. bridge:-::-::- 
eck River 
Kearny Pointsscrrrees eee cece eeee 
Secaucus ss*s*eossssseeee eececeee 
Little Ferry::ssssseeeeees cO0000 
Heckensack::::* sete eeeres ec ccce 
Arthur Kill 
Elizabethport::::secscetceees bod 
({Wihnoedosocndssd00pb000000600 
Cartoret::s::ss::- cece cee vecces 
Rossville:::::::: elolelecveisiels os 00e 
Tottenville:::scs essere seceveres 
Perth Amboy eevee eee cr cco eves 
Lower New York Bay, Reriten Bay, ete. 
Now Dorp Beach:-*::-:++++--> erecccee 
Great Kills Harbor:::::::: Fecccecece 
Princes Boy:::::: cece er er eece eevevece 


Reriton River 
South Amboy rss sserreer see ceeee 
Washington Conal:-:---- DOOOOOOon 
South River highway bridge:::::: 
Now Brunawiek: score ssercccccece . 
Keyport-::seeseees dobadd000000000 doo 
Keansburg:: ss sess ser eeec ce eeees 0000 
Port Monmouth: ::ssesererecee eovcvece 
Atlentie Highlands eee ccceene eee ceeee 
GANDY HOOK: :cccccceccscrcccceccceves 


4101 7353] 34 40 
4105 7352] 32 37 
aiio 67352] 3.1 836 
aii2. 7358] 29 34 
4117 7356] 29 34 
4i26 067357] 27 3.) 
4130 7400] 28 32 
4135 7357] 29 33 
av4a2. 7357] 3.1 9 35 
447 7357] 32 36 
4156 7358) 37 42 
4208 «©7356| 39 44 
4219 7351| 41 46 
4215 7348| 40 46 
4221 7348] 39 43 
4227 7347] 41 45 
4232 7346] 43 «47 
4239 «-7345| 46 #8650 
4244 7342| 47 5.1 


GUNVe—euvyuseeunuoeveauan 


NNN @— 2mm Mm Me me Mm Mm MM KKK 


7405) 45 5.4 2.2 
7405) 4.5 5.4 2.2 
74086 | 45 5.4 2.2 
7408 | 46 $.5 2.3 
7410) 4.6 $.5 2.3 
7408) 5.l 6.1 2.5 
7410 | $1 6.1 2.$ 
7407) 5.1 6.1 2.5 


2§2Ssssess 


7406] 5.0 60 2.5 
7404] 5.1 6.1 2.6 
7402) 5.3 6.4 2.7 
7402) 5.3 6.4 2.6 


rbot 


7a} 49 5.9 2.4 
7412| 5.0 6.0 2.5 
7413} 5.1 6.2 2.6 
7413} 5.3 6.4 2.6 
7415 | 5.3 6.4 2.6 
7416 | 5.2 6.3 2.6 


3888885 8SSE FESSESSES 


SSSaes 


40 34 7406) 49 5.9 2.4 
40 33 7408 | 47 5.7 2.4 
40 31 7412) 49 5.9 2.4 


40 29 7417} 5.0 6.0 2.5 
40 28 74 22 | 5.6 6.8 2.8 
40 27 74 22 | 5.5 6.7 2.8 
40 29 7426 | 5.8 7.0 2.9 
40 26 7412} 5.0 6.0 2.5 
40 27 7409 | 49 5.9 2.4 
40 26 7405 | 486 5.8 2.4 
40 25 74 02 | 4.7 5.7 2.3 
40 26 7401 | 4.6 5.6 2.3 


; the Hudson River above the George Washington Bridge are based upon averages for the 
six months May to October, when the fresh—water discharge is af a minimum. 


Stations 1533 to 1559 and 1571 to 1589: 


Stations 1561 to 1569: 
Stations 1591 to 1625: 


347 


Use reference station New York (1511). 


Use reference station Albany (1567). 
Use reference station Sandy Hook (1625). 


Sendy Hook Bay 
Shrewsbury River 


1627 Highlands:--:- DOOR OOUOOUOOOO vee 40 24 7359) 38 46 9 
1629 Red Bonk, Nevesink River--:-°:°: 40 21 74 04 3.0 3.6 1.5 
1631 Normandie::::ssssssssseree ceeeee 40 23 73 59 2.9 3.5 1.4 
1633 Sea Bright------ perececceccce cee 40 21 73 59 1.7 2.) 0.8 
1635 Branchport, Pleasure Bay-:::° eee 40 19 74 00 1.7 2.1 0.8 
NEW JERSEY, Outer Coost 
1637 | Sea Bright-----sssc ester esereees 900 40 22 73 58 4.4 §.3 2.2 
1639 | Long Branch-----++++s+ss+>- DOCOOOOO 40 18 7359 | 4.4 $.3 2.2 
1641 | Asbury Pork---:+°++++:> DODD OCOOOOOOD 40 13 7400} 43 §.2 2.1 
1643 | Sherk River Inlet (entrance):-:°°°°°° 40 11 74 01 4.0 48 2.0 
1645 | Municipal Boat Basin, Shark River--: 40 Il 74 02 3.7 44 1.8 
1647 Sea Girtssssesrercceeee eeeccccevccee 4 06 74 02 4.3 5.2 2.1 
1649 | Menosquen Inlet:::: pe ecercvccccccce 40 06 7402} 40 48 2.0 
Manasquan River 
1651 Railroad bridgo:::sssseersseccee 40 06 7403} 3.5 42 17 
1653 Riviere Beach::--- ce teeececceece 40 06 7405} 3.1 32.8 5 
1655 | Seaside Park (ecean)::**°2s27sereeee 39 55 7405) 42 $.1 2.1 
Bernegat Bay 
1657 Mantoloking:---++sssseeeee covcce 40 02 74 03 0.$ 0.6 0.2 
1659 Coates Point, highwey bridge-:-> | 3957 7407) OS 0.6 0.2 
166) Teme River (fown):*seesecerrreees 39 57 7412) 06 0.7 0.3 
16463 Waretown:---:- odd0b0000000600000 39 47 74 11 0.6 0.7 03 
1668 Oyoter Cr. Chen. (eff Sedge t)°> 39 47 7400) 06 0.7 0.3 
1667 Barnegat Inlotsssssecrrccccccece WD 46 7406} 3.) 3.6 1S 
1669 Hervey Codars:sssscsereescvcccne 9 42 7408 | 08 1.0 0.4 
Little Egg Horbor 
1671 Manchowkin Bridgess*sss*s*sest* 39 39 74 11 1.5 1.8 0.7 
1673 Long Polnt::-*:ssstescrseeeee 000 39360 74 16 | 2.2 2.7 A 
1675 Tuckerton Creek entrance:--*-*>: 3935 7420] 24 2.9 1.2 
1677 Beach Haven-:-ssssseseese 09000 3934 «= 7415] 2.2 2.7 Vt 
1679 (lollmoees25e050R000000000000000 39 32 74 16 2.6 3.1 1.3 
Great Bay 
168) Little Egg Inlote---sssrseeerees 3930 7418| 37 45] 1.8 
1683 Seven Islands-:ss+ss-sc st ettsees 39 31 74 20 3.4 41 1.7 
1685 Graveling Point:::+sss+ssssteeee P 39 32 74 24 3.4 4) 1.7 
1687 Mullica River, highway bridge:-- 39 33 7428 | 3.3 40 1.6 
1689 Main Marsh Thorotare:::+-++****: 39 29, 7423] 3.3 40 1.6 
1691 | Brigantine Channol-s::::secsercree: 39 27. 74 2) 3.5 4.2 1.7 
1693 | Grossy Boy:ss- sss ttc crete 39 26 74 246 3.4 4.1 1.7 
1695 | Absecon Creek ent., Absecon Bay---:- 39 25 7429} 3.6 44 1.8 
1697 | Broad Creek, Middle Thorofare::-:::- 39 24 74 26 3.4 4. 1.7 
1699 | Absecon Inlet (Gardner Basin)::--*-: 39 23 74 25 3.6 44 1.8 
1701 | Beach Thorotore (railroad bridges)-- 39 22 74 27 3.8 46 1.9 
1703 | Atlantic City, Steel Pier:--+-+-++-: 39 21 7425} 4.1 5.0 2.0 
1705 | Chelseo (highwoy bridge)----:+**:*:: 39 2) 74 28 4.0 48 2.0 
1707 | Beach Thorofore (Shelter Islomd):--- 39 2) 74 30 3.9 47 1.9 
1709 | Dock Thorofore (bridge)::*:--****""° 39 21 7432] 3.8 46 1.9 
1711 | Longport (inside)-+--sssssererser ees 39 18 897432) 39 47 2.0 
1713 | Great Egg Harbor Inleot---------<°-: ie 39 18 7434} 38 46 1.9 
1715 | Oceon City (9th Street bridge)------ 39 17 74 35 3.7 45 1.8 
1717 | Great Egg Horbor Boy-:--+-:--*-***"* 39 18 7438 | 3.6 44 1.8 
Great Egg Harbor River 
1719 Scull Landing:--:ss+erscsstesees 39 22 74 43 3.7 45 1.8 
1721 Moys Landing::-**:ssrstr ttre 39 27 7444} 40. 48 2.0 
1723 | Peck Boy (34th Street bridge)-----:: 39 15 74 38 3.7 4.5 1.8 
1725 | Devils Island, Crook Horn Creek:-:-- 39 14 74 39 3.6 44 1.8 
1727 | Corson Inlet (bridges)-------**---°: 39 13 74 39 3.9 47 9 
1729 | Ben Hands Thorofare--:::*::**-*-+": -| 39 12 74 40 3.7 45 1.8 
1731 | Seo Isle City (Ludlom Thore. bridge) 39 09 74 42 3.8 46 9 
1733 | Sea Isle City (beach)-**-s+-sssseees 39 09 74 4) 4.1 5.0 2.0 
1735 | Townsend. Inlet::**:*-°++"* Vee reeeane 39 07 74 43 3.8 46 1.9 
1737 | Long Reach-------errerrr sree se cecee 39 06 74 45 3.8 46 1.9 
1739 | Great Sound (ent. to Crease Thoro.): 39 05 74 47 4.1 5.0 2.0 
1741 | Stone Harbor (Great Chan. bridge):-- 39 03 74 46 4.) 5.0 2.0 
1743 | Hereford Inlet (North Wildwood)----: 39 01 74 48 4.1 5.0 2.0 


Stations 1627 to 1743: Use reference station Sandy Hook (1625). 


348 


1745 
1747 
1749 
175) 
1753 
1755 


1757 
1759 
W761 
1762 
1763 
1765 
1767 
1769 


W771 
1773 
1775 
1777 


1779 
1781 


1783 
1785 
1787 
17869 
1791 


1793 
1795 
1797 
1799 


1803 
‘1805 
1807 
1609 
Vell 
1813 
1615 
1817 
1619 


1621 


1823 
1625 
1827 
1631 
18633 


NEW JERSEY, Outer Coast 


Wildwood (beach):ss-ssssss src teete 38 59 74 48 2.0 
Grassy Sound Channel (hwy. bridge):- 39 02 74 49 2.0 
W. Wildwood (Grassy Sound bridge)-:: 3900 74 50 2.1 
Swoin Chonnel:--::*s2s eset ences 38 59 74 52 22 
Cape Moy Horbor--+--++ssssss essere 38 57 74 53 ah 


Cope Moy, Municipal Pier------***:°: 38 56 74 55 


NEW JERSEY ond DELAWARE 
Delawore Bay, Eastern Shore 


Five Fathom Bank::---:--- BOCOOOONDOD 38 5) 74 38 
McCrie Shoal-::::secrereecccceccccee 38 51 74 5\ 
Cope May Point::++++++: eteleolelayeler= 500 3856 436-74. 58 
Cape May, ferry terminal: +:***:**"" 38 58 74 58 


Boy Shore Channolssssssssessercerees 38. 58 74 58 
Miami Beach: ssssssereceeeneeseceneee 99 02 74 56 
Dennis Crook ontrancesssssssssserers 39 10 74 54 
East Point, Meurice River Cevess:'*: 39 12 75 02 
Maurice River 
Port Norriscssscsescesererccvece 39 14 75 02 
Mouricetowns*seceeccseesccccoes 39 17 75 00 


NW VNUYNNNNN 
@e Seu ev—-Oo 


MUMvillec cc cercceresecccrcvcres 39 24 7502 3.0 
Eee Islend Pelmterrccrrcrecerccsvoes 39 11 75 06 2.8 
Fortescue: soccer teeter eres 39 14 75 10 2.9 
Ben Davis Point-------ssssseeseeeee 39170075 17 3.0 
Cohansey River 

Gintrenn Ce iletolele oie oleilel=soie!~)=I-lo1s1+)-1« 39 21 75 22 3.0 

Laning Wharf-+---++++se+eree- - | 3923 7520 3.0 

Fairton soc este eee ceeeeee 39 23 75 \4 3.1 

Bridgeton: :-:+- see sseteeceeeees 39 25 75 14 3.2 
Boy Side-----::--: prckehetepetereleisvererevereverers 3923 7524 3.0 

DEL., N.J., and PA. 

Delawore Bay, Central Lighthouses 
Brandywine Shoal Light-:----*---*::- 38 59 75 07 2.4 
Fourteen Foot Bank Light-------++:: 39 03 75 11 2.6 
Miah Maull Shoal Light----:--->-+--> 39 08 75 13 2.7 
Elbow of Cross Lodge Light---------: 39 11 75 16 2.8 
Ship John Shool Light----------+---- 39 18 875 23 2:8 

Delaware Bay, Western Shore 
Cape Henlopen-::-----ser terete eee eees 38 48 75 05 2.0 
BREAKWATER HARBOR:::-- BoD00G0G0000 38 47 75 06 2.1 
Roosevelt Inlet------:° srecceceesses | 36 49 75 12 2.2 
Mispillion River entrance::*:***°--> 38 57 75 19 2.3 
Mucderkill River ontrance::*:*°°°-+> 39 04 75 24 2.4 
St. Jones River entrance>:-****----- 39 04 75 24 2.4 
Mehen River entrance:------ 099900000 39 11 75 24 2.7 
Loipsle River entrance:::*:°--°: coos | 39 15 75 24 2.7 
Leipsic, Leipsic River---ss+seseeee- 39 15 75 3\ | V7 
Woodland Beach:-::------ trccccoecees | 39 20 75 28 2.9 
Oclawore River 
Listen Point:-::°++::- coccccccccccce | 39 25 75 32 28 
Taylers Bridge, Blackbird Creek-::-> | 3924 75 36 1.4 
Roedy Island: -----+---+ eee evccccees | 39 9] 75 34 28 
Salem, Salem River---:°--: seeccecoe | 99 95 75 28 | 2.8 
REEDY POINT:--------e slelsieleieleisieicleieie’ |) 99) 94 75 34 |. 27 


Stations 1745 to 1755: Use reference station Sandy Hook (1625). 
Stations 1757 to 1777; 1793 to 1799; and 1803 to 1819: 

Use reference station Breakwater Harbor (1805). 

Stations 1779 to 1791; 1801; and 1821 to 1833: 

Use reference station Reedy Point (1833). 


349 


Chesapeoke and Delaware Canal | 
1835 Biddle Point, Delaware::s*se+% 39 33 75 37 


$.1 5.5 
1837 Summit Bridge, Delaware:::s++e 39 33 75 44 3.5 3.9 
1639 Chesapeake City, Marylend:::se: 39 32 75 49 2.7 3.0 
1841 | Pea Patch loland, Delaware: ::ssss++e 39 35 7534] 5.5 6.0 
1643 | New Casctle, Delaware:::s2ssseecrece 39 39 75% | 5.6 6.0 
1845 | Deepwoter Point, Ni Jesseeccececvece 39 42 7531) 5.6 6.0 
1847 | Christine River entrance, Delsss*°s> 39 43 75 3) | 5.6 5.9 


1849 | Wilmington, Christina River, Dol::: 39 44 75 33 5.7 6.0 
1851 | Edgemoor, Del-sssssssecroescreccveee 39 45 75 %@ 5.6 5.9 
1853 | Oldmens Point, N. Josercesseccecccee 39 46 75 26 5.6 5.9 


V85S_ | Marcus Hook, Parss+sssssesseeeeeeees 39 490-7525 | 5.6 5.9 
VOS7 | Chooter, Par--sssersereeecccecevcees 39 SI 7§ 2) $.7 6.0 
1659 | Billingoport, N. Jeveseee> 9900000000 39 51 75 14 $.7 6.0 
1661 FT Fert Mittlin, Parccressrcerereerenee 39 52 7$ \3 5.7 6.0 


VNNN RNINNNNN——~ 
@@e@@ee @@Se@eeseawu hl YW 


Delaware River. 


Schuylkill River 
1863 Girard Point, Pavss+:++sssess see 39 54 75 \2 5.7 6.0 2.8 
1865 Point Breoze, Pavss*ssssseeeeee . 39 55 75 12 5.7 6.0 2.6 
1867 Grays Ferry Bridge, Pa::::: seeee 39 57 75 \2 5.8 6.1 2.9 
1869 Fairmount Bridge, Pa:::+--++: 090 39 58 75 5.8 6.1 2.9 
1871 | Philodelphio, South Brood St., Pa::: 39 53 75 VN 5.8 6.1 2.9 
1873 | Gloucester City, N. Jrcccersteeeeee . 39 54 75 08 5.8 6.1 2.9 
1875 | Philadelphia, Washington Avo., Pa-:: 39 56 75 08 5.9 6.2 3.0 
1677 | PHILADELPHIA, Pier 11 North, Pe-:::: 39 57 75 08 59 $.2 3.0 
1879 | Camden, Cooper Point, N. J::-::'> oe 39 57 75 08 5.9 6.2 3.0 


1681 | Philadelphia, Pier 80 North, Pa-:::> 39 58 75 07 5.9 6.2 3.0 
1883 | Philadelphia, Bridesburg, Pa::::+*°> 40 00 75 04 6.0 6.3 3.0 


1885 | Torresdale, Pavs:s+sssssssseeeee eee 40 03 74 59 6.2 6.5 3.1 
1887 | Burlington, N. Jovcsrstrccesseeceeee 40 05 74 52 6.4 6.7 3.2 
1889 | Bristol, Passssss seer rere erenee ceeee 40 06 74 5) 6.5 6.8 3.3 
1891 | Florence, N. Jeccsc reese eeeee soeee 40 07 74 48 6.6 6.9 3.3 
1893 | Bordentown, N. Jovseresereeees seecee 40 09 74 43 6.7 7.0 3.3 
1895 | Trenton, N. Jceeres ceeeee sevens 40 11 74 45 6.8 7A 3.4 


DLLAWARE, Outer Coaot 


1897 | Rehoboth Beach: :s+eereerrreeees 38 43 7505} 39 47 19 
Indien River 
1899 Inlet (bridgo):-ss+++++> 90099000 38 37 75 04 7 3.2 1.3 
1900 Inlet (C. G. Station): :sssseeee 38 37 7504] 2.1 2.5 V0 
190) Ook Orchard::++:+++++ee DOOODOOD 38360 75 10 | ~—0.9 Vt 0.5 
1903 Possum Points sss sseereeeeee eens 3835 = 75 16 1.0 1.2 0.5 
1905 | Rehoboth Bay:+:--++++-++e-e: SOOCOODG -- --| 05 0.6 0.2 
1907 | Fenwick Islond Light-----:-++++es: oe 38 27 7503} 3.7 45 1.6 
MARYLAND, Outer Coast 
1909 | Ocean City (outer coast):---++s+e++> 38 20 75 05 3.4 41 1.7 
1910 | Ocean City (Isle of Wight Bay)------ 38 20 75 05 2.2 2.7 0.0 
1911 | North Beach Coast Guard Station::-:: 38 12 7509 | 3.4 4) 1.7 
MARYLAND ond VIRGINIA 
Chincoteague Bay 
1913 | Assateague Beach, Toms Cove::::::::: 37 $2 75 22} 3.6 44 1.8 
1915 | Chincoteague Point:-::---:- teececces 3754 867525] 2.6 3.1 1.3 
1917 | Bogues Boy, Chincoteague Inlet:>>:°: 37 53 753} 3.0 3.6 1.5 
1918 | Wishart Point, Bogues Bay::::: seceee 37 53 75 #0 2.6 3.1 1.3 
1919 | Chincoteague, Chincoteague Chennel:: 37 56 75 23 1.7 2.1 0.9 
1921 | Piney tsland, Assoteague Chennel:::> 37 56 75 2) 2.1 2.5 1.0 
1923 | Groonbackvillo::ssssssseseeeseevenes 3800 87523} 06 0.7 0.3 
1925 | George Island Landing:::++++++s+ees 36 02 75 22] 0.6 0.7 0.3 
1927 | Assacorkin Inland:---: oucooo0 0900000 38 04 75 19 0.4 0.5 0.2 
1928 | Public Landing::-:::::- 9o00000000000 3809 «675: 17] 04 0.5 0.2 


Stations 1835 to 1853: Use reference station Reedy Point (1833) 


Stations 1855 to 1895: Use reference station Philadelphia (1877). 
Stations 1897 to 1928: Use reference station Sandy Hook (1625). 


350 


VIRGINIA, Outer Coast 


1929 | Wollops Island::*:-ss+ssssssssseceee 37 50 75 29 3.6 44 1.8 
1930 | Gargathy Neck--*-*ssssssrssssceeee ee 37 47 7534 3.0 3.6 1.5 
193) | Metomkin Inlet: ss sssssssseesr teeters 37 40 75 36 3.6 44 1.8 
1932 | Folly Creek, Metomkin Inlet:--+s++:> 37 42 735 38 3.3 40 7 
1933 | Wochopreague Inlet (inside):++****"* 37350 7537 | 9 47 1.9 
1935 | Quinby Inlet entrance:::******* cece 37 28 7540) 40 48 2.0 
1937 | The Swash, south end--+-------: seeee 37 30 75 40 3.9 47 19 
1939 | Great Machipongo Inlet (inside)----° 37 24 75 43 3.9 47 1.9 
194) | Upshur Neck, south ond----------"s+se"e** 37280 0«=675 48 | 4.4 5.3 2.2 
1942 | Sand Shoal Inlet (C. G. Station):--- 37 18 75 47 4) 49 2.0 
1945 | Ship Shoal Intet---*+++-+ssssereeeee 37 13 75 48 4.0 48 2.0 
1947 | Smith Island (C. G. Station)-------- 37 07 75 55 3.5 42 1.7 
Chesapeake Bay, Eastern Shore 
1949 | Fishermans Island:--::-:**ss+ereeees 37 06 75 59 3.0 3.6 1.5 
1951 | Kiptopeke Beach (ferry)::*::::::*::- 37 10 75 59 2.7 3.2 1.4 
1953 | Old Plantation Flate::::*s+s+sssrees 37 14 76 03 2.4 2.9 1.2 
1955 | Cope Charles Harbor:::::sssssseerees 37 16 76 Ol 2.4 2.9 1.2 
1957 | Nassawadon Creok::s::ssssssteeeeeres 37 28 75 58 1.6 2.2 0.9 
1959 | Gaskins Point, Occohannock Creek:::: 37 33 75 55 1.7 2.0 0.9 
1961 | Pungoteague Croek:------+sssssseeee 37 40 75 50 1.7 2.0 0.8 
1963 | Onancock, Onancock Creek-:-*:*+++**: 37 43 75 45 1.8 2.2 0.9 
1965 | Watts Island-::---++essse cette eeeee 37 48 75 54 1.6 1.9 0.8 
1967 | Tangier Sound Light-------------++-> 37 47 75 58 1.6 1.9 0.8 
1969 | Muddy Creek Entrance:-***:*:*-**++*: 37 51 75 40 2.2 2.6 1.1 
1970 | Guard Shore-:----secc et tee e et eeees 37 5) 75 42 2.3 2.7 1.2 
MARYLAND 
Chesopecke Bay, Eastern Shore 
1971 | Ape Hole Creek, Pocomoke Sound::-::: 37 58 75 49 2.3 2.8 Vi 
Pocomoke River 
1973 Shelltown-:-sesesct reece reece 37 59 75 38, 2.4 2.9 1.2 
1975 Pocomoke City-:-*+++++ss esses ees 38 05 75 34 1.6 2.0 0.8 
1976 Snowhill, city pork::*+s:s<re: 38 10 75 24 1.9 2.3 1.0 
1977 | Janes Island Light----+++--+ssssrees 37 58 75 55 1.8 2.2 0.9 
1979 | Cristield, Little Annemessex River:: 37 59 75 52 2.0 2.4 1.0 
1981 | Long Point, Big Annemessex River::-- 38 03 75 48 2.1 2.5 1.0 
1983 | Teague Creek, Manokin River::--+---- 38 06 75 50 2.1 2.5 1.0 
1985 | Ewell, Smith Island----------+-+-::- 38 00 76 02 1.6 1.9 0.8 
1987 | Solomons Lump Light:--:--:+--+----:> 38 63 76 Ol 1.7 2.0 0.8 
1989 | Holland Island Bor Light--::----:::: 38 04 76 06 1.4 1.7 0.7 
Ira Kel See cucula ob odode Sodsoncdcuncoas 38 10 75 57 22 26 i) 
1991 Sharkfin Shoal Light----:--:+---+--- 38 12 75 59 2.2 2.6 | 
1993 | Great Shoals Light, Monie Bay------- 38 13 75 53 2.3 2.8 1.2 
Wicomico River 
1995 Whitehaven:-::-s++e-e> ceeceeeee 38 16 75 47 2.4 2.9 1.2 
1997 Salisbury: :+scccssee cee seeceeeee 38 22 75 36 3.0 3.6 1.5 
Nanticoke River : 
1999 Roaring Point---:++++s-+ee ejelelele 38 16 7555} 2.3 2.8 1.2 
2001 Vienna:::ssssccere ccc ees cer eeeee 38 29 75 49 2.2 2.6 V4 
2003 Sharptown::+--+sseeceeee cree eeee 38 32 75 43 2.5 3.0 1.3 
2005 | Fishing Point, Fishing Bay--:--+:--- 38 18 76 Ol 2.5 3.0 1.2 
2007 | Hooper Strait Light--+-:-++eseees see 38 14 76 05 1.7 2.0 0.8 
2009 | Hooper Island Light--:-:----++-+-+-- 38 15 76 15 1.5 1.8 0.7 
2010 | Hooper Island: ----+-sseeseeeseeeeeee 38 18 76 12 1.5 1.7 0.8 
2011 | Barren Island: ---+--2eeeeeeeeeeeoeee 38 20 76 16 1.3 1.5 0.6 
Little Choptenk River 
2013 Taylors Island, Slaughter Creek: 38 28 76 18 1.2 1.4 0.6 
2015 Woolford, Church Creek----:----> 38 30 76 10 1.4 1.6 0.7 
2017 Cherry Island, Beckwiths Creek:- 38 34 76 13 1.3 5 0.6 
2019 Hudson Croek::::++++++++-eseseee 38 35 76 15 1.4 1.6 0.7 
2021 | Shorps Island Light:---------+-:> cee 38 38 76 23 1.3 1.5 0.6 


Stations 1929 to 1947: Use reference station Sandy Hook (1625). 
Stations 1949 to 2007: Use reference station Hampton Roads (2353). 
Stations 2009 to 2021: Use reference station Baltimore (2117) . 


351 


2051 
2053 
2055 
2057 
2058 
2059 


2061 
2063 
2065 
2067 
2069 
2070 
2071 
2073 
2075 
2077 
2079 
2081 


2083 
2085 


2087 
2089 


2091 
2093 


2095 
2097 
2099 
2101 
2103 
2105 
2107 
2109 
2uu 


2113 
2115 
2117 
2119 
212) 
2123 
2125 
2127 


Stations 2023 to 2127: 


Choptonk River 
Choptank River Light-::::-- goD0d 
Cambridge Riolaictelciniclsleialeleinielatolefeiels ee 
Choptank--++:ssseeeeee: eerccccce 
Dover Bridge eee cc cccce eecvcccccce 
Denfon:ss crt eetcretece eocecece 
Greensboro::::::-:: BOOCODDOOOU0O 
Weoymen Whert, Tuckahoe Creek-:: 


Chesapeake Bay, Eastern Shore 


Easton Point:::sssseseeeeeee oo008 
Deep Neck Point, Broad Creek:::---:- 
St. Michoels, San Domingo Creek:--:: 
Avalon, Dogwood Horbor--ssseseseeees 
Poplar Island: sssccetteeteee 95090000 
Ferry Cove, Eastern Bay-::-:::--°::: 
Cleiborne, Eastern Boy:---**°****°° 
St. Michoels, Miles River-:::-:-::-: 
Wye Landing, Wye Eost River--------- 
Kent Island Narrows:::::sss-eesesee> 
Meotopeoke, Kent Island-----°--+----> > 
Bloody Point Bor Light ejalicksishelelelataisialeie 
Chester River 

Love Point::cccsccseccetececceee 

Queenstown: sses ett tests ees 

Shipyord Landing, Longford Creek 

Centreville Landing, Corsica R-- 

Cliff's Points sss sere sere eee rece 

Cliffs Wharf-:---cctcececccecece 

Chestertown sss ss ttt settee 

Crumpton eielolohefetelelelelohetelelchchehel fetetelele 

Millington eHoleRoielelisNevolelelslaleielielekeyerenalie 
Deep Landing, Swan (Canctiseccuccdsone 
Tolchester:: sss ttt ttt ttt teens 
Worton Creek entrance::::**°**ssee"* 
Seossafras River 

Botterton- ssc tt ttt ett teeees 

Georgetown SOOOOOOIOOOIOIOOO OOOO IOI 
Ek River 

Town Point Neck-:°*::scseeeeeees 

Courthouse Point::::*+s:eeseeee* 

C & D Canal (See Delaware River) 

Old Frenchtown Whart---:-----::: 
Charlestown, Northeast River:--°-:-: 


Chesopecke Boy, Western Shore 


Susquehanna River 
Hovre deo Groces::*ssseeseeeccees 
Port Deposit: :-:*-eesseee-cceee 
Fishing Battory Light Rfelofehelelictel stelexeyeiel sl 
Pond Point-:::cc ttre t etter cece cece 
OCICS Talon docosecoddobsonsab00600 
Bottery Point, Gunpowder River-:*-:> 
Bowley Bar, Middle River-:--:--+-:-- 
Rocky Point, Back River---:-:--- cee 
Sevenfoot Knoll Light opodcCOmMaOKdD0N 
Potapsco River 
North Polnt::+ssssese tee cceccee 
Fort? GCorrollcss sess cesscieiseecice.s 
BALTIMORE, Fort McHenry-:::::- 
Fells Point, Baltimore Harbor:-: 
Middle Branch, Baltimore Harbor: 
Mountain Point, Magothy River----:-- 
Sondy Point::*s::sssssseeseececccone 
Greenbury Point Shoal Light-::::-:: 


OZ 


SSseees 
SES&EEsS 


76 VN 
76 04 
75 57 
76 00 
75 50 
75 49 
75 $7 


76 10 
76 06 
76 14 
76 14 
76 20 
76 23 
76 20 
76 17 
76 13 
76 06 
76 15 
76 21 
76 24 


76 18 
76 10 
76 VN 
76 04 
76 08 
76 08 
76 04 
75 56 
75 50 
76 16 
76 15 
76 10 


76 04 
75 53 


75 55 
75 53 
75 51 
75 58 


76 05 
76 07 
76 05 
76 15 
76 16 
76 20 
76 23 
76 24 
76 25 


76 27 
76 3) 
76 35 
76 35 
76 38 
76 26 
76 23 
76 27 


Use reference station 


1.4 1.6 0.7 
1.6 1.6 0.8 
1.6 1.6 0.8 
V7 9 0.9 
2.2 2.5 vt 
2.5 2.9 1.2 
2.4 2.8 V2. 
1.4 1.6 0.7 
1.6 1.8 0.8 
1.4 1.6 0.7 
1.4 1.6 0.7 
1.3 1.5 0.6 
1.2 1.3 0.6 
1.0 1.2 0.5 
Vi 4.3 0.5 
1.2 1.4 0.6 
1.3 1.5 0.6 
1.2 1.4 0.6 
1.0 1.2 0.5 
Vd 1.3 0.5 
Vt 1.3 0.6 
1.3 1.5 0.6 
1.5 1.7 0.7 
1.6 1.6 0.8 
1.5 1.7 0.7 
1.5 1.7 0.8 
1.6 2.1 0.9 
2.4 2.6 1.2 
2.0 2.3 1.0 
BL 1.3 0.5 
1.2 1.4 0.6 
1.3 1.5 0.6 
1.6 1.6 0.8 
2.0 2.3 1.0 
2.1 2.4 1.0 
2.2 2.5 0 
2.3 2.6 A 
1.9 2.2 0.9 
1.8 2.0 0.9 
2.) 2.4 1.0 
2.1 2.4 1.0 
1.4 1.6 07 
1.2 1.4 0.6 
1.2 1.4 0.6 
1.2 1.4 0.6 
Vt 1.2 0.5 
0.9 Vt 0.4 
1.0 1.2 0.5 
Vt 1.3 0.6 
Vt 1.3 0.6 
1.2 1.3 0.6 
1.0 V2 0.5 
0.8 1.0 a4 
0.8 0.9 0.4 
0.8 0.9 0.4 


Baltimore (2117). 


Severn River 


2128 Cedar Point:::--*++*++sere% pees 39 04 7634} 0.7 0.8 0.4 
2129 Brewer Point---***-*s+esesee SOD 39 02 7632} 08 0.9 0.4 
2130 Annapolis ee ee ee eoee 38 59 76 29 0.9 1.0 0.4 
213) Bay Ridge-*-:*::****"": peccce ‘eoeccee 38 56 76 27 0.8 1.0 0.4 
2133 | Thomas Point Shool Light:--:---*++:: 38 54 7626) 09 1.0 0.4 
2135 | Edgewoter, South River::+:*++-see+es 38 57 76 33 0.9 1.0 0.46 
21% Oingerville Creek, South Riverss**:: 38 58 76 33 1.0 1.0 0s 
2137 | Rhode River (County Wharf)-:-+:-*:- 38 53-76 32 1.0 Vt 0.5 
2139 | Shady Side, West River---:***s+**""> 38 5) 76 31 0.9 1.0 0.4 
2141) | Galesville, West River-***s*ssss**": 38 50 76 32 0.9 1.0 0.4 
2143 | Fairhaven, Herring Bay'**:-***"***:: 38 45 76 33 0.9 1.0 0.4 
2144 Rose Haven:::*::****"* eee ecesccese 38 43 76 32 0.9 1.0 0.4 
2145 | Chesapeake Beach-:-**::": see eeceeees 38 4) 76 32 1.0 UAL 0.5 
2147 | Plum Point----*+*-+e++* soe eeecccece 38 37 76 31 0.9 1.0 0.4 
2149 | Long Beach----+++-s*ssrereeeeeeees OL 38 28 76 28 1.0 1.2 0.5 
2151 | Cove Point-:--:+++**:: sere ceeccceecs 38 23 76 23 1.3 5 0.6 

Patuzent River 
2153 Drum Point-:+:+++***""> cone ccere 38 19 76 25 1.2 1.4 0.6 
2155 Solomons Island::::- sereereccece 38 19 76 27 1.2 1.4 0.6 
2157 Broomes Inland:::::**::: eoeeece 38 25 76 33 V3 1.5 0.7 
2159 Beneodict:----+:-** fee eeeecceeeeee 38 3) 76 40 1.6 1.9 0.8 
2160 Lower Marlboro: :***s*sseseres tee 38 39 76 4) 1.8 2.0 0.9 
216) Nottingham----+s+sssessesseee eee 38 43 76 42 2.5 2.9 1.2 
2163 Hills Bridge::-:+++ssss+s> seeee 38 48 76 43 2.4 2.8 1.2 
2165 | Cedar Point:::-:: sects sersteseeecse 38 18 76 22 1.2 1.4 0.6 
2167 | Point No Point:*ss+ssrrscterreeeeces 38 08 76 18 1.3 1.5 0.6 
2169 | Point Lookout::::*sssscsttscteees : 38 02 76 19 1.2 1.4 0.6 

MARYLAND ond VIRGINIA 
Potomac River 

2170 | Cornfield Harbor, Md-:::ssssssssss'* 38 04 76 22 ! 1 0.7 
2171 | Lewisetta, Vass ssc testes eesees 38 00 76 28 1 1 0.6 
2172 | Travis Point, Coan River, Va-:::*::: 38 00 76 28 ] i} 0.6 

Yeocomico River 
2173 Lynch Point, Vavcc sss sctterees 38 03 76 31 ! 1 0.6 
2175 Kinsale, Varr- seen sesso see 38 02 7635 | | 0.6 

St. Marys River 
2177 Kitts Point, Md:::-ssseessrereee 38 06 76 25 0.7 
2179 St. Marys City, Md--:*-::e%::> a 38 11 76 26 0.7 
2181 | Piney Point, Md--:+scssseerrrseceeee 38 08 76 32 0.7 
2182 | Ragged Point, Coles Neck, Va--:-:---> 38 08 76 37 0.8 
2183 | Coles Point, Var-ssssssrteetteeerece 38 09 76 38 0.9 


2185 | Leonardtown, Breton Boy, Manse 38 17 76 38 

2187 | Shipping Pt., St. Clemente Bay, Md:: 38 16 76 42 

2186 | Mount Holly, Nomini Crook, Varcerss: 386 06 76 44 

2189 | Colton’s Point, Mdssssssteseeccserce 36 13 76 45 
Wicomico River 


SC@GSO2RY—O—-YNUNUOYB®CPCLTS SH@VFNURWUN NYO NWY 


2191 Cobb Point Bar Light, Md:--:--°°: 36 15 76 50 0.9 
2193 Rock Point, Md--:-::°: seveccecoe 36 16 76 50 0.9 
2195 Bushwood Wharl, Md:ssreseerrees | 38 17 76 48 i 
2196 Wicomico Beach, Md: +** = = 38 20 76 52 0.9 


2197 | Colonial Beach, Varrsssssssererceees 38 15 76 58 
2199 | Dahlgren, Upper Machedoe Croek, Ve 38 19 77 02 


em mmr ER RI KN NNN NEKENNNK KKK : 5 
—~SC@@ONWUONRVYEY@CONNN OW—-OONOYUN AWN BUY 
o 
b -) 


i} 

1 

1 

' 

i] 

| 
2201 | Lower Cedar Point, Mdsssssssesrereee 38 20 76 59 i} 0.7 
2203 | Mathias Point, Vars+++:+:: teeeresens 38 24 77 03 ' 0.6 
2205 | Goose Boy, Port Tobaecce River, Md::: 38 27 77 03 1 0.7 
2207 | Upper Cedar Point Light, Md----::> : 38 24 77 05 i} 0.6 
2209 | Riverside, Md---:+ssscsesseceeeee eee 38 23 77 09 1 0.6 
2211 | Maryland Point Light, Md----::--- eee 38 2) 77 \2 i} 0.6 
2213 | Aquia Creek, Var--+s+-e+e> GOOD OG 38 25 77 2\ 1 0.6 
2215 | Clifton Beach, Md--+<*°*°°--e: coeeee 38 25 77 16 i} 0.5 
2217 | Liverpool Point, Md-:°-°::> sderccece 38 28 77 16 q 0.6 
2219 | Quantico Creek, Varsssooseeceeseeeee 38 31 77 \7 ! 0.7 
2221 | Deep Point, Mattawoman Creek, md ° 38 34 77 13 ! 0.8 
2223 | High Point, Occequan Bay, Va-- ‘> | 3837 7712) | 0.8 
2225 | Indian: Head, Md:::°::°: ses eccepececes 38 3% 77 VN I 0.9 
2227 | Glymont, Md-+---+eseeee> p0a000gb0006 38 37 77 08 1 09 
2229 " Gunston Cove, Va:-:::: 900005000 ieiejeis 3840 0=— 77 08 | ‘2.0 2.3 1.0 


Stations 2128 to 2169: Use reference station Baltimore (2117). 
Stations 2170 to 2229: Use reference station Washington (2245). 


353 


MAD., VA., ond DISTRICT OF COLUMBIA 
Potomac River — Continued 


Marshall Hall, Md-sccssssesseeeseees 


Mount Vernon, 7: Ce SO 


Fort Washington, Md-ccccsccecceccece 
Riverview, Md--oe sete creer eee eeee 
Alexandria, Var sss ttt tte ttteseee 
Bellevue, D. Corrsrresttereeeeenees 6 
Weohington National Alrport::::++:** 


WASHINGTON, Washington Chon., D C::: 
Anecostia River 


Anacostio Bridge, D. C--+++++" 
Benning Bridge, DO. C----+--:: 000 
Key Bridge, D. Corre eter eset teers 
Chain Bridge, one mile below, D.C:- 
Chain Bridgo, D. Crrsrsrreeeerereees 
VIRGINIA — Continued 
Chesapecke Bay, Western Shore—Con. 


Smith Point Light Mielokehelakelaleyefeleteleleletelove 
Sunnybonk, Little Wicomice River::-- 
Great Wicomico River Light:::----::: 
Fleet Point? s--ccc cree settee cece eceee 
Glebe Pt., Great Wicomico River--::: 
Dividing Creek: ---:+sereeerecceeees 
Windmill Point Lighthouse----------- 
Stingray Points ccs crs eee creeseceeee 


Rappahannock River 


Wind mnillMParntecoccociilecicterca. 
MAT) (eondyessogoovoDdooudasdoo‘e 
Orchard Point::::sseseecceeceeee 
Millenbeck, Corrotomon River---- 
TA Sor poco nacosaccapspncossencen 
Bayport sec e were creo ecrceccces ecoce 
Romtincn. Rodueccodcs0c00d0c00a0K00 
WiatoshWihactiecicieries Baistelsioieiersiete 
Tappohonnock slelslelele: erccccoe weccce 


Piankotonk River 
Cherry Point-ccscceccccccccce coos 
Jackson Creek: sssessssescccceece 


Wolf Trap Light ececcce o00000 ec cccces 
Mobjock Bay 
New Point Comfort-°---:-° ecceccce 
Mobjack, Eost River---:--*-+>:: . 
Bellevillo::scccccssscevce ecccee 
Browns Boy ee eesccccccc cece e@ceccece 
SW. Bronch, Severn River>::*::°- 
Vork Spit Light BOOUDDODOUOOUODD eoccce 


Leedstown--:sceecerecce ececcccce 
Sounders Wharf-:*seceseccccccoce 
Green Bay---+- +e" sddoqde0000 
Port Royal eer cccccecce wecsccccse 
Hopyard Landing eecccccos eoeserce 
Corbins Neck: *s*scsecccee eeoovcce 
Massaponan-:-**°ssee°% eccccoccce 
Fredericksburg weet eee c ccc ccecees 


38 41 
38 42 
38 43 
38 43 
38 48 
38 50 
36 5) 
38 52 


38 52 
38 54 
38 54 
38 55 
38 56 


37 53 
37 53 
37 48 
37 49 
37 51 
37 44 
37 36 
37 34 


37 37 
37 35 
37 39 
37 40 
37 39 
37 45 
37 49 
37 52 
37 56 


37 31 
37 33 
37 30 
37 23 


37 18 
37 22 
37 25 
37 18 
37 18 
37 13 


38 07 
38 05 
38 09 
38 10 
38 15 
38 13 
38 15 
38 18 


Stations 2231 to 2255 and 2283 
Use reference station Washington (2245). 


77 06 2.3 
7705 | 2.2 
77 02 2.4 
77 02 2.5 
7702| 2.8 
7702 | 28 
7702| 29 
7701] 29 
77 00 2.9 
7658 | 2.9 
7704| 2.8 
77 06 2.6 
7707] 28 
7611 1.2 
7616] 08 
76 16 Vt 
7616] .1.1 
7622] 1.2 
76 18} 1.9 
7614} U1 
76 18} 1.2 
76 \7 1.2 
7625] 1.3 
7627] 1.4 
7629} 1.3 
7634) 1.4 
7640] 1.6 
76 44| 18 
76 47| 18 
76 5) 1.7 
7618} 1.2 
7620} 1.2 
7625} 1.3 
76 11 1.6 
7617} 2.3 
7621] 2.4 
7626} 2.5 
7624} 2.4 
7627) 25 
76 15 2.3 
77 00 1.5 
7702} 1.5 
7705| 1.7 
71 1.9 
77 14) 2.1 
77:17 | 2.6 
7725) 2.5 
7727) 28 
to 2291: 


Stations 2257 to 2281 and 2293 to 2309: 


Use reference station Hampton Roads (2353). 


354 


e=—KWeNaNaH hAvovwawowWor 


=—NNemwonwa 


eles laslantastasias tom 
eeeuu BurRanw—— 


York River 


2311 | Tue Marshes Light-::-+::+:--> teeeeee 3716 7623] 2.2 2.6 Vt 
2313 | Perrin Rivgehton mec tee eeene seseee | 39716 7625] 2.3 2.8 Vt 
2314 | Goodwin Neck:::::: s00000000 o00d00000 37 14 76 26 2.2 2.6 AL 
2315 | Quarter Points sssssssesseereseeee see 37 15 76 27 2.3 2.8 Vt 
2317 | Gloucester Point:::ss+sssrseeeeeees a ee ee = 09) 
2319 | Vorktown:::+ssseeees cece eens teeeee . 37 14 76 30 2.4 2.9 1.2 
2321 | Mumfort Islands::::s++ssesseseeeeee 3716 = 76:31} 2.5 3.0 1.2 
2323 | Penniman Spit::----- 90B0000000000000 3717 76:35) 25 3.0 1.2 
2324 | Cheatham Annen:s:*s::sseseseereeeres 37168 §=67635}) 2.5 3.0 1.2 
2325 | Queen Creek (2 miles upstream):-:--- 37 18 = 76:39 | 2.4 2.9 1.2 
2327 | Clay Bank-:--+0++eseeee eee ereeeeeees 3721 7637] 28 34] 14 
2329 | Allmondsville::+++-+seereereeee 20000 37 23 7639] 28 3.3 1.4 
2330 | Roane Points:-::esececsceccsessseces 37 27 76 42 2.8 3.4 1.4 
233) | West Point--+-+-- we eeeee eee eeeecees 37 32 76 48 2.8 3.4 1.4 
Mattaponi River 
2333 Wakema---->-+++ee+* a eeeeerers ee 37 39 76 54 3.4 3.9 1.7 
2335 Woalkertom:sss sree secre erscereee 37 43 77 02 3.9 45 1.9 
Pamunkey River 
2337 Sweet Holl Landing:----: eecccere 37:34 76 54 2.7 3.1 1.3 
2339 Lester Manor:-:---*-*:°: -eeccece 37 35 76 59 2.8 3.2 1.4 
234) White House:s:ssssseree ree eeeeee 37 35 77 01 3.0 3.4 1.5 
2343 Northbury:::s+s sees reece eee eees 37 37 77 07 3.3 3.8 1.6 
Chesapeoke Bay, Western Shore—Con. 
2345 | York Point, Poquoson River::::: sone 37:10 76 24 2.4 2.9 1.2 
2347 | Messick Point, Back River:::::: teens 37 06 76 19 2.3 2.6 1.2 
Hampton Roads 
2349 Old Point Comlort:::++::: peneee D 37 00 7619 2.5 3.0 1.3 
235) Hampton River sss ssssersecneas tee 37 01 76 20 2.6 3.1 1.3 
2353 HAMPTON ROADS (Sewells uP? 36 57 76 20 2.5 3.0 1.2 
2355 Lafayette River:s:++-ssssseeeee 36 54 76 18 2.6 3.1 1.3 
2357 Lofayette River, Granby st. Br-- 36 53 76 17 2.7 3.2 1.3 
Elizabeth River 
2359 Craney Island::---:+-s+eers ceeee 36 54 76 20 2.6 3.1 13 
2361 Port Norfolk, Western Branch:--: 36 51 76 20 2.6 3) 1.3 
2363 Norfolk:++*s+++: ereeee eleeevecce oe 36 51 76 18 2.8 3.4 1.4 
2365 Portsmouth, Southern Branch::°-> 3 49 76 18 2.8 3.4 1.4 
Neansemond River 
2347 Pig UCSD Doge eeriae Galatia 36 55 76 26 28 3.4 1.4 
2369 Town Point sss:sscscccccccccccces. | 96 53 76 390 3.0 3.6 1.5 
2371 Hollidays Point SAL oegenecs 36 50 7633} 30 3.6 1.5 
2373 Subfolker +s sss eececsceccvecccvsece 3% 44 76 35 3.8 46 1.9 
James River 
2375 | Chuckatuck Creek ontrance:***:ee-e*> 36 55 76 W 2.8 3.4 1.4 
2377 | Newport News--++ss+eee secccccccccce 36 58 7626] 2.6 3.1 1.3 
2378 | Huntington Park--------> DOOD OOGOOO OG 37 O1 76 28 2.6 3.1 1.3 
2379 | Menchville-:-+->> fe eeeerceecccccceoe 37 05 7632] 2.6 3.1 1.3 
2381 | Smithfield, Pagan River::*++ss+seeee % 59 76 38 2.8 3.4 1.4 
2383 Burwell Bay:-sseereee ecccccecscccccece 37 03 76 40 24 2.9 1.2 
2385 | Mulberry Polnt-+:++++:> scececccaccee | 937 08 76 38 2.4 2.9 1.2 
2387 | Hog Point:-::-- tee eceee seeecccceoes 37 12 76 4) 2.1 2.5 1.0 
2388 Seetland:::::cesccees eeeeccvessccvce 37 «1 76 47 1.9 2.1) 1.0 
2389 | Jamestown Island:+::+-++s: ceeccccce 37 12 76 47 2.0 2.4 1.0 - 
2391 | Dillord Whart---+--++-seee. seeccccce 37 12 76 $2 V9 2.3 0.9 
Chickahominy River 
2393 Ferry Point (bridge):-::+s2cceee 37 16 76 53 1.9 2.3 1.0 
2395 Wright Island Lending:-°:-:°°:-- 37 21 76 52) 2.2 2.6 0 
2397 Movant Airy:::-- see eeeee tecvvce 37 2) 76 55 2.2 2.6 0 
2399 icnoniciecodocdasoccadabes 00000000 37 24 76 54 2.6 3.1 1.9 
2401 | Cloremont:----::: ceeceree seeccoccone 37 14 76 57 1.6 2.0 0.9 
2403 | Sturgoon Points -+s:ssseeeeeevccsoves 37 18 7700} 2.) 2.5 1.0 
2405 | Windmill Points: :+sseseceesereeceee 37 18 77 06 2.3 2.7 0.0 


Stations 2311 to 2405: Use reference station Hampton Roads (2353). 


S19)0) 


James River 


2406 | Willeox Wherf, Charles City:>:+:::>- 
2407 Westover ss scsseteeeccccee eecee 
2409 Jordon Point-*-----++-+s Cele eclccecee cies 
2411 | City Point (Hopewell)--+:+-sse+esee> 
2413 | Petersburg, Appomatton River:::+::::- 
2415 | Bermudo Hundred:::*:++++++": eeeeee 0 
2417 Honoll COO OOTEO.OD eeeccevcece eeecececevece 
2419 | Curles, | mile north obrsrrseseseres 
2420 | Chester:::: sess seeeeees ocod00000000 
2421 | Meadowvillorssssssrrceeeees 900000000 
2423 Kingsland Roach: ssssseeeeeeseeseees 
2425 | Felling Crook entrancorsssssrsserere 
2427 | Richmond Deepwater Torminel:sesesees 
2429 | Lower Rockette:s*s+**::: 
243) | Richmond (river locks) 
Chesopecke Bay, Southern Shere 

2433 | Little Creek (RR. Terminal)---°:°°°: 

Lynnhaven Inlet 
2435 Highway bridge, east of------+:- 

lynnhoven Bay 
2436 Bayvillosss:scret eee e eee eeceeee 
2437 Buchanan Creek entrance:::::-: 
2438 Long Crook--+-ssereee reeset eeeee 
2439 Brown Coverssccceetscetccrcscces 
2440 | Cope Henry: -----s-se eee t ett 

VIRGINIA, Outer Coast 
244) Virginio Beach: ssc etter secret ecee oe 
2442 | False Cape:-::-osc settee sts ee ee eeees 
NORTH CAROLINA, Outer Coes? 

2443 | Currituck Beach Light-:::ce-ssccccee 
2445 | Albemarle and Pemlico Sounds(9)::°°° 
2447 | Kitty Hawk (Ocean):°:+°-° ecccsvccce 
2449 | Oregon Inlot:-----+-+ssseeeeseeceres 
2451 Cape Hatteoras::++-+++*++eee% ecccccce 
2453 Hotteras (ocean) GOOD OUUGOOODOOODOU00> 
2455 Hotteraos Inlet--*:*+eesee0% eoecccoce 
2457 | Ocracoke Inlot:::ssesssseeee 06000000 
2459 | Ocracoke, Ocracoke Inlet ssseesess 
2461 Cape Lookout: s:+ssseeeee eccceee 
2463 | Shell Point, Horkers Island--°°: 5000 
2465 | Beaufort (Pivers lslend)---°-: cocccee 
2467 | Morehead Clity-:::sesseereee oo0000000 
2469 Atlantic Beach: *ccssseeeeeroes weccee 
2471 | Bogue Inlot-----+ss+sseceteeceeeee 000 
2473 New River Inlet-osssseceeee ec cececce 
2475 | Now Topsail Inlet:::screcsecceceee a0 
2477 Masonboro Inlet::ssssserceccccece 000 
2479 Wilmington Beach--+:-----> G0000G0000 
548 liCopalRearaeceree see rae wawisteieie 

Cape Fear River 
2483 Bald Head-:escccecsesccccccccece 
2485 Fort Caswell:sccccscsccccccsvcece 
2487 Southport: :sccscscccccceccccveee 
2489 Reaves Polntessssccceccccccccsce 


« 9) In Albermarle and Pamlico Sounds, except near 


less than one—half foot. 


37 (19 77 06 2.2 2.4 0 
37:19 77 09 2.4 2.8 1.2 
37 (19 77:13 2.5 2.9 1.2 
37 19 77 ‘16 2.6 3.0 1.3 
37 14 77 24 2.9 3.3 1.4 
37 20 77 \6 2.6 3.0 1.3 
37 22 77 15 27 3.1 1.4 
37 24 77 \6 2.8 3.2 1.4 
37 23 77 23 2.9 3.2 1.5 
37 23 77:19 2.9 3.3 1.4 
37 24 77 29 3.0 3.5 5 
37 26 77 26 3.2 3.7 1.6 
37 27 77 25 3.3 3.6 1.6 
37 3 77 25 3.2 3.6 1.6 
37 32 77 25 3.2 3.6 1.6 


36. 23 75 50}| 3.6 43 1.6 
36 06 75 43| 3.2 3.8 1.6 
35 46 75 32| 2.0 2.4 1.0 
35 14 75 31 3.6 43 1.8 
35 12 75 42] 3.4 4.) 1.7 
35.12 75 44} 2.0 2.4 1.0 
35 04 76 Ol 1.9 2.3 0.9 
35 07 75 59 1.0 1.2 0.5 
4 397 76 32 | 3.7 44 1.9 
M4) 76 32 1.3 1.6 0.6 
%4 43 7640} 3.0 3.6 1.5 
%4 43 7642| 29 3.5 1.4 
%4 42 7643 |] 3.6 4.3 1.6 
%4 39 77 06} 2.2 2.6 0 
4 32 77 20} 3.0 3.6 S 
34 22 773% | 3.0 3.5 Ss 
34 11 7749) 3.8 45 1.9 
34 02 77 54) 40 47 2.0 
33 51 77 58) 4.5 $.1 2.2 
33 52 7800} 4.3 49 2.2 
33 54 76 01 4.2 48 2.1 
33 55 76 01 4.1 46 2.0 
% 00 77 57 | 39 43 2.0 


the inlets, the periodic tide has a mean range 


Stations 2406 to 2409 and 2433 to 2475: 

Use reference station Hampton Roads (2353). 

Use reference station Washington (2245). 
Use reference station Charleston (2577). 


Stations 2411 to 2431: 
Stations 2477 to 2489: 


356 


NORTH CAROLINA, Outer Coast 


2491 Campbell Islond:---- teeeeee seeee 34 07 77 56 3.8 40 1.9 
2493 WILMINGTON: -<--se scree eeeeeee 3414 7757) 42 4.5 2.1 
2495 Castle Hayne, Northeast River-:- %4 21 77 56 1.7 1.9 0.8 
2497 Bannermans Br., Northeast River: 4 35 77 46 1.3 1.4 0.6 
2500 Yaupon (01-14, eo 33 54 78 05 49 5.8 24 
2501 | Lockwoods Folly Inlet:--*::***:****° 33 55 7814) 42 48 2.1 
2503 | Shallotte Inlet (Bowen Point):+--°°- 3355 7822) 4.6 5.4 2.3 
2505 | Tubbs Inlet--"ssssc secs t esse ereces 33 53 78 29 45 5.1 2.2 


SOUTH CAROLINA, Ovter Coost 


2507 | Little River, 1 mile above mouth:-:- 33 51 78 34 5.0 5.9 2.5 
2509 | Little River (town), Little River---- 33 52 78 37 5.2 6.1 2.6 
2511 | Myrtle Beach-------°°- OOOO OOOO oon 33 41 78 53 5.1 6.0 2.5 
2513 | Murrells Inlet--:-ssssssr settee 33 32 79 02 45 5.3 2.2 
2514 | Pawleys Island:-:*-*ssssssssts ese 33 26 79 07 4.8 5.6 2.4 
2515 | North Inlets: sss ssc s cts t tte tes 33 20 79 10 4.5 5.3 2.2 
Winyoh Bay 
2517 | Entrance (south jetty):**:**sssss*%° 33°11 79 09 4.6 5.4 2.3 
2519 | Georgetown Lighthouse--+:s-++-"+-" : 3313 79 ‘IN 3.8 44 1.9 
2521 | Estherville—Minim Cr. Canal (ferry): 33 15 79 \6 3.3 3.9 1.6 
2523 | Frazier Point::*:*s sets sss ster t tees 33 19 79 17 3.5 4.1 1.7 
2525 | Georgetown, Sampit River----+-*+*+*> 33 22 79 17 3.3 3.9 1.6 
2527 | Georgetown, Pee Dee River bridge:::- 33 22 79 16 3.3 3.9 1.6 
Weccamow River 
2529 Schooner Creek entrance::::**:": 33 27 79 10 3.2 38 1.6 
2531 Wachesaw Ldg., | mile south of-- 33 33 79 06 2.9 3.4 1.4 
2533 Bull Creek entrance::::***:+**° D 33 36 79 06 2.3 2.7 1.1 
2535 Enterprise Landing::::*:++++**"* 33 40 7904] 2.0 2.4 1.0 
2537 Toddville:::sscttsctec ttre eeeees 33 45 79 04 1.35 1.5 0.6 
2539 Conway sss ct sce rrr e tte ceeeeces 33 50 79 02 1.2 1.4 0.6 
SOUTH CAROLINA, Outer Coost—Con. 
2541 | North Santee River Inlet------- seeee 33 08 79 15 4.5 5.3 2.2 


2543 | Minim Creek ent., North Santee River 33 12 79 16 3.9 46 1.9 
2544 | Cedar Island Pt., South Santee River 33 07 79 16 4.1 48 2.0 
2545 | Brown Island, South Santee River::°° 33 09 79 20 41 48 2.0 


2547 Cape Romain---+-sssseeeee ecccccccee 33 01 79 21 47 5.5 2.3 
2549 | Cape Romain, 46 miles east of:s>**°< 33 05 76 26 4.1 48 2.0 
Bull Bay 
255) Five Fathom Creek entrance:°°°°° 33 00 79 30 49 5.8 2.4 
2553 McClellanville, Jeremy Creek: 33 05 79 28 5.1 6.0 2.5 
2555 Harbor River entrance:ss*s***"°° 33 02 7932} 49 5.8 2.4 
2557 Jack Creek entrance:::°°: cecccee 32 56 79 35 5.0 5.9 2.5 
2559 Wharf Creek entrance::**s:e**%2°° 32 55 79 37 5.1 6.0 2.5 
2561 | Sewee Bays rerceeccccececcceee ccccee 32 56 79 39 5.0 5.9 2.5 
2563 Capers Inlet:::::eree: bielefelolelslejelcleletere 32 5\ 79 42 5.2 6.1 2.6 


2565 | Dewees Inlot-:-*-+-es steer eceesowees 3250 679 44) 5.0 5.9 2.5 
2567 | Isle of Palme (outer coast):-+++++°> 3247 79 47 | = 5.2 6.1 2.6 
2869 | Sullivens Island (outer coest):::°*: 32 46 79 50 5.2 6.1 2.6 


Cherlesten Herber 
2571 | Entrance (north jotty):::ssssesceres 32 44 79 48 5.2 6.1 2.6 
2573 | Fort Sumter: cr sce cece seccscccecnce 32 45 79 52 5.0 5.9 2.5 
CLERKS | SO leop0 00000000 0000000000000000000 32 46 79 52 5.1 6.0 2.6 
2577 | CHARLESTON (Customhouse Wherl):::-- | 9247 7955] 52 6.) 2.6 
2579 | Shipyerd Crook, 0.8 mile above ont:: | 3250 7957) 539 63] 26 


Stations 2491 to 2497: Use reference station Wilmington (2493). 
Stations 2500 to 2579: Use reference station Charleston (2577). 


8) [/ 


Chorleston Harbor 


Cooper River 
2581 North Charloston-::+:-trsecseees 3252 7958] 5.2 6.1 2.6 
2583 Goose Creek entrance:::*****ss"": 32 54 79 57 5.2 6.1 2.6 
2585 Yeamans Hall, Goose Creok--:--:: 3256 679 59 | 5.0 5.9 2.5 
2587 Snow Point, north! of-+-2+++++ “++ | 3257 7956] 49 5.8 2.4 
2589 Deon Halles cscrcceseercneves eco 33 03 79 56 4.1 48 2.0 
2591 Quimby Creek, East Branch::::::: 33 06 79 49 43 5.1 2.1 
2593 RR. bridge, West Branch::----+> + | 3306 7957] 42 5.0 2.1. 
Wendo River 
2597 Coinhoyssstsec teste eee e ee eenes 32 55 79 50.| 6.0 71 3.0 
2599 Wied cil lacie clercisteverccerereveveretereteversroneyel 32 55 79 44 6.3 7.4 3.2 
Ashley River 
2601 Wappoo Creek (highway bridge)--- 32460 0«=— 79 Sa | 5.2 6.1 2.6 
2603 Highwoy bridge: Socovgano000 32 47 79 58 $.2 6.1 2.6 
2605 Highway bridge (2 miles above): | 3250 7958] 5.5 6.5 2.6 
2607 Bees Ferry bridge---+:--++++++*> 32 51 80 03 5.5 6.4 2.8 
2609 Mognolie Gordens::+-+++++s++5+"> 3253 8005] 5.6 6.6 2.8 
2611 Greggs Landing:---:**++sss7s7'* 32 56 80 09 6.1 7.2 3.0 
SOUTH CAROLINA, Outer Coast—Cen. 
2613 | Folly Island (outor coast):::*:+*::: 32 39 79 56 | 5.2 6.1 2.6 
2615 | Folly River (below bridge)--:+-+:-°: 32 39 79 58] 5.4 6.4 2.7 
2617 | Legareville, 1 mile above, Steno R::: 32 41 80 00 5.2 6.1 2.6 
2619 | Elliott Cut, Stono River-:-++-+:-+°: 3246 8000] 5.2 6.1 2.6 
2621 | Church Flots, RR. bridge, Steno R-:: 32 45 80 08 5.7 6.7 2.8 
North Edisto River 
2623 Rockville, Bohicke?t Creek:-:-::: 32 36 80 12 5.8 6.8 2.9 
2625 Dowho River entrance:::::: 900000 32 38 80 16 6.1 7.2 3.0 
2627 Dawho Ferry, Dawho River--::-::: 32 38 80 20 6.5 7.7 3.2 
2629 Toogoodoo Cr., 2 miles above ent: 32 40 80 18 6.4 7.6 3.2 
2631 Yonges Island, Wadmalow River: 32 41 80 14 6.6 7.8 3.3 
2633 Ravens Point, Church Creok:----:: 32 42 860 O9 7.0 8.3 3.5 
2635 | Edisto Beach, Edisto Island:--°-+:--- 32 30 60 18 5.9 6.9 2.9 
South Edisto River 
2637 Big Bay Creek entrance::::-°-:: 32 30 80 20] 6.1 7.2 3.0 
2639 Peters Point, St. Pierre Creek-: 32 32 80 21 6.2 7.3 3.1 
2641 Wotts Cut ent. 0.8 mile S$. of:-- | 3236 8023} 6.3 7.4 3.1 
2643 Dawho River ontrance:::***°": see 32 39 80 23 6.3 74 3.1 
2645 Jacksonboro-:s:s+ssssecrceece ee 32 46 80 27 1.9 2.2 0.9 
St. Helene Sound 
2647 | Harbor River ontrance:-::--:: eeeceee 32 24 60 27 6.1 7.1 3.0 
2649 | Combahee Bank::-::--+>--: sere verceee 32 29 60 26 6.2 7.3 3,1 
2651 | Seabrook, Ashepoo River: :s+eerrree 32 31 60 25 6,2 7,3 3.1 
2653 | Hutchinson loland, Ashepoe River:::: 32 33 60 29 63 7.4 3.1 
2655 | Fields Point, Combahoe Rivers sss+s+: 32 34 60 33 6,4 7.5 3.2 
2657 | Highwoy Bridge, Combeheo River::+++> 32:39 = 80 4) 44 $.1 2.2 
2659 | Lucy Point Crook ont., Morgen River: 32 27 60 37 6.8 8.0 3.4 
2661 | Summerhouse Point, Bull River ssssce: 32 32 60 34 6.6 7.8 3.3 
2663 | Brickyard Point, Coosow Riverss++*:: 32 30 80 40 7.3 6.5 3.6 
2665 | Coosaw Rivers:++++++-+++- te eerecoveces 32 32 60 4) 7.2 8.4 3.6 
2667 | Fripp Inlet, Hunting loland::::----- 32 21 60 28 6.2 7.3 3.1 
Port Royal Sound 
2669 | Martine Industry: :+:+2+++++esseceeee 32 07 60 35 6.4 7.6 3.2 
2671 | Hiltom Hoad--sssssssressscesccvvccee 32 14 60 40 6.6 7.0 3.3 
2673 | Club Bridge Creek ontrance-:*-*+-0°- 9220 «8033 | 68 6.0 3.4 
2675 | Station Croek----- sees eesecce eeecere 32 19 80 36 69 6.1 3.4 
2677 | Chowen Creek, Distant tsland:---+---- 32 23 60 38 7.1 6.3 3.5 
2679 | Parris Island, Beaufort River----+:- 32 21 8040} 7.1 6.3 3.5 


Stations 2581 to 2633: Use reference station Charleston (2577). 
Stations 2635 to 2679: Use reference station Savannah R. Entr.. (2709). 


358 


Port Royat Sound 


2681 | Port Royol, Battery Creek----*"°*: ee 32 22 60 4) 7.2 8.5 3.6 
2683 | Beaulort, Beaufort River:--**:*"*°: . 32 26 60 40 7.4 6.7 3.7 
2684 | Colleton River Mouth---*--"**-**°""° 32 19 60 48 7.3 6.5 3.7 
2685 | Victoria Bluft, Colleton River::--:: 32 18 60 48 7.5 8.8 3.7 
2687 | Baileys Landing, Okatee River---*-:- 32 21 80 54} 8.1 9.5 40 
2689 | Lemon Island, Chechessee River:-**:: 32 22 80 50 7.6 69 3.8 
2691 | Archers Creek ont., Broad River:---: 32 21 60 44 7.1 6.3 3.5 
2693 | Corning Landing, Whale Branch-:-:-:- 32 30 8047] 7.9 9.2 3.9 
2695 | Skull Creek, north entrance:******** 32 16 60 44 7.0 6.3 3.5 
Calibogue Sound 
2697 | Skull Creek, south entrance:s***::** 32 13 60 47 7.6 9.0 3.8 
2699 | Haig Point, Doutuskio lslond:::++-*: 3209 00.50] 7.2 8.4 3.6 
2701 | Blultton, May River:+::::- seveceeres 32 14 60 52 6.1 9.5 4.0 
2703 | Doufuskie Landing, New River:::::+:: 32 06 60 54] 7.2 6.5 3.6 
2705 | Walle Cut, Turtle lsland:---°::-::°> 32 05 60 55 7.1 6.3 3.6 
GEORGIA 
Savennah River 
2707 | Tybee Light-:--::ssstsseer ee eeees oe 32 02 60 SI 6.8 8.0 3.4 
2709 | SAVANNAH RIVER ENTRANCE: to eeeee 32 02 60 54 69 6.1 3.5 
2711) | Fort Jackson:::::+*: tee eeeeereecenes 32 05 61 02 7.5 6.7 3.6 
2713 | SAVANNAH:::-++-++> eee eeene teenene 32 05 61 05 7.4 6.6 3.7 
2715 | Port Wantworth:::+:: pace eeeeees teense 32 09 61 08 7.0 6.) 3.5 
2717 | A. C. Lb. RR. bridge::::- pees eeeeeees 32 14 61 09 6.2 7.2 3.1 
Tybee Creek and Wessaw Sound 
2719 | Tybee Creek entrance::::::::: teeeeee 31 59 60 51 6.8 6.0 3.4 
2721 | Beach Hammock:::::°*:+++++2°° seeeces 31 57 80 56 69 6.1 3.4 
2723 | Romerly Marsh Croek---:-°-> seeceeeee 31 56 81 00 7.1 8.3 3.5 
Wilmington River } : 
2725 Savannoh—Oglethorpe Hotel:----:: 32 00 8100] 7.8 9.1 3.9 
2727 Thunderbolt:---+++-++sseee2> see 32 02 61 03 7.9 9.2 3.9 
2729 North entrance::**:****°: YOOOOODD 32 04 81 00 7.6 6.9 3.8 
2731 | tele of Hope, Skidaway River:--::::: 3) 59 61 03 7.8 9.1 3.9 
Ossabew Sound 
2733 | Egg lolands----:-+secrrs eee eeceree . 31 50 81 05 7.2 6.4 3.6 
2735 | Vernon View, Burnside River-::°°°°°: 31 56 61 06 7.5 6.8 3.8 
2737 | Coffee Bluff, Forest River::::*°:°°° 3) 56 81 OF 7.5 6.8 3.7 


2739 | Fort McAllister, Ogeechee River---- | 3153 Bli3| 69 et] 34 
2741 | Highwoy bridge, Ogeechee River-::::° 31 59 61 17 1.0 1.2 0.5 
2743 | Cane Patch Creek entrance::::*:*:*"° 31 49 81 OF 7.2 6.4 3.6 


St. Catherines ond Sepelo Sounds 


2745 | Walburg Creek entrance::--::: seecees 1 9142 8109] 7.1 6.3 3.6 
2747 | Kilkenny Club, Kilkenny Creek--->°°° 31 47 6) 12 7.9 9.2 3.9 
2749 | Sunbury, Medway River::-°°+°°2°°°°% 31 46 81 17 7.5 8.8 3.8 
2751) | Belfast, Belfast River s+*sseseeecee 31 49 6) 18 7.8 9.1 3.9 


2753 | North Newport River--:-°°°°*> cececee 31 40 61 16 7.6 6.9 3.8 
2755 | South Newport River-::°°°°°> seccvece 31 38 6) 16 7.4 6.7 3.7 
2756 | Delles Bluff, Julienton River>>:*:°> 31 35 61 19 7.6 6.9 3.8 
2757 | Blackbeard lsland:-:::-:-->> eoccccee 31 32 61 12 69 8.1 3.4 
2758 | Dog Hammock, Sapelo River:--+-++°e° 31 32 61 16 7.1 6.3 3.6 
2759 | Pine Herbor, Sapelo River:--:°° coves 3) 33 61 22 7.2 6.4 3.6 
2760 | Eagle Creek, Mud River:-------> coove | 3030 OF I7] 7.2 0.4 3.6 
2761 | Mud River, of Old Teokettle Creck--> | 3129 oti9} 74 871 37 


Stations 2681 to 2709 and 2719 to 2761: 
Use reference station Savannah R. Entr. (2709). 
Stations 2711 to 2717: Use reference station Savannah (2713). 


359 


Doboy ond Altamaha Sounds 


762 | Blackbeard Creek, Blockbuard I---+:: 31.29 «=a 13 | 6.5 7.6 3.3 
an Sapelo Island--:--+sssstt rete teens 31 23 61 17 6.8 6.0 3.4 
2765 | Hudson Creek entrance:::+++++-++ sieye 31.27 812i] 7.2 8.4 3.6 
2767 | Threemile Cut ent., Darien River:-:: 31 2) 6123] 7.1 8.3 3.5 
2769 | Derien, Dorion River-+---*: seeeeeeee 1 3122 8126] 7.3 8.5 3.6 
2771 | Wolf leland:::-*+:°:+": slsieleieleferes7e ve 3120 «Bl Ip | 6.6 77 3.3 
2773 | Champney |., South Altomahe River:» | 3120 8128] 5.2 6.1 2.6 
2775 | Hompton River entrance:'***ss***'": : 31°13 81 19 6.6 7.8 3.3 
2777 | Jones Croek ent., Hampton River::::: 31 18 120] 7.2 8.5 3.6 
St. Simons Sound 
2779 | St. Simona Sound Bor----::+++-+++++: 31 06 81 19 6.5 7.6 3.2 
2761 | St. Simons Light------+++s++-eeeeees 31.08 8) 24 6.6 77 3.3 
2783 | Frederica Rivers:**:sssss steer eens : 31°13 8124] 7.2 6.4 3.6 
2785 | Troup Creek entrance, Mackay River:: 31 13 61 26 7.2 6.4 3.6 
2767 | Brunswick, East River: :::+s+s+:: sees 31 09 6! 30 7.3 6.5 3.6 
Turtle River 
2789 Allied Chemical Corp. docke::::: 31 tl 6) 3) 7.6 6.9 3.6 
2791 Dillard Crook: ::ssssseeeees sone 31 14 6134] 80 9.4 40 
2793 Bulfalo River entrance::ss*e:': 31 13 61 35 8.0 9.4 40 


2795 | Highwoy bridge, $. Brunswick River: 3109 61934] 7.6 0.9 3.8 
$. Andrew Sound 


2797 | Jokyll Point: scree reeeeeeeraee sees 31 01 81 26 6.6 77 3.3 
2799 | Jeinter Island, Joinior Creok::::*:: 31 06 81 30 7.2 6.4 3.6 
ttle Sotilla River 
280) 2.5 miles above mouth::::: teense 31 04 8130] 686 8.0 3.3 
2803 8 miles above mouth::::+:°:++: ve 31 *6 61 34 7.3 6.5 3.6 
2805 Below Spring Bluff---+++++eee: oD 31 6137] 7.5 8.8 3.7 
2807 | Dower Bluft, Dover Creek--:ss:sseee> 31 01 81 32 7.0 6.2 3.5 
Setilla River 
2809 Tadd Creek entrance:::*:::°:°: ee 30 58 6) 3) 6.7 7.8 3.3 
2811 Bailey Cut (0.8 mile west CU)es . 30 59 81 36 6.9 6.1 3.4 
2813 Coylon:-:--sseeeee- teeesccceecee 30 58 81 39 6.6 7.7 3.3 
2815 Burnt Fort--+-ssseseseeceeee D006 57 61 54) 3.2 3.7 1.6 


6127] 68 6.0 3.4 


30 
2817 | Cumberland Wharf, Cumberland River:: 56 
3 56 61 30] 7.1 6.3 3.5 


2819 | Floyd Creek, 2.8 miles above ent:::: 


GEORGIA ond FLORIDA 
Cumberland Sound 


2621 | St. Moryo Entrance, north jotty::::: 30 43 6) 26 5.6 6.8 2.9 
2623 | Creokod River entranco'ss:sssssesoee 30 SI 61 29 6.8 6.0 3.4 
2825 | Herrietts Biull, Crooked River::+::: 30 52 6135] 6.4 7.5 3.2 
2827 | St. Marys, St. Marys River::::+sse%: W 43 6) 33 6.0 7.0 3.0 
2829 | Crendoall, St. Moryo River::::+::: ee 3 43 8) 37 5.1 6.0 2.5 
2831 | Fernandina Beach (outer coast)::::: . wd 38 81 26 5.7 6.7 2.8 
2833 | Fernandina Beach, Amella River:-::: D 30 40 8! 28 6.0 7.0 3.0 
2835 | Chester, Bells River::--++eseeseeee . 30 4) 61 32 6.4 7.5 3.2 
2837 | S.A.L. RR. bridge, Kingsley Creok--- 30 38 8129 | 60 7.0 3.0 
FLORIDA 
Nazsou Sound ond Fort George River 
2839 | Nossau Sound-:+--+---++--+++s0- seece 30 3) 8) 27 5.4 6.3 2.7 
2841 | Amelia City, South Amelia River----- 30 35 8) 28 5.6 6.6 28 
2843 ,| Nassauville, Nassau River------- cree Kode” | 6) 3) 4.8 5.6 2.4 
2845 ‘| Mink Creek entrance, Nassau River--- 8 32 6) 34 3.9 46 19 
2847 | Helfmoon Island, highwey bridge----- 03% 8136] 35 4) V.7 
249 | Saewpit Creek entrance-------+---+++> 30 31 61 27 5.0 5.8 2.5 


Stations 2762 to 2829: Use reference station Savannah R. Entr. (2709). 
Stations 2831 to 2849: Use reference station Mayport (2855). 


360 


265) 


2929 
2930 
293) 
2933 
2935 


Stations 2851 to 2889: 
Stations 2891 to 2935: 


Nassau Sound and Fort George River 


Fort George Island, Fort George R-:: 


S. Johns River 
South Jetty errr reser e rece ene ecenves 
PATAYIPO Riletiolelelestelcisteleielotatelsictelniovstotolelercls 
Pablo Creek bascule bridge tee 
Fullome sss serene revere esceessecese 
Dame Points: sss tt sseeessecsecsevene 
Phoenix Park (Cummers Mill):---°°*-> 
Jacksonville (Dredge Depot):-------> 
Jacksonville (RR. bridge)-------+--> 
Ortega River entrance::***+++++++++> 
Orange | hd aa 
Green Cove Springs Rlalolele/sisielelsiclclalefstalars 
East Tocols sss ss eeceeccsncsvcene 
Bridgeport i i ea 
Palatka: sss tseeeeesnce eee eeee eeecee 
Welakassssssssss tenes sTols)s\aVelele}sjojavalays 


FLORIDA, East Coast 


Atlantic Beach: settee ete een ececeee 
St. Augustine Inlet::++++sssseeeeee- 
St. Augustine DOU OOOO OOO OOCOMCIOCIC we 
Daytona Beach (ocean)::+-*+-++++"++: 
Ponce de Leon Inlet:::::: eee rccccee 
Cape Canaveral--::::::: SOIC CII) . 
Sebastian Inlet :ssssssseeence seccce 
Fort Pierce Inlet (breakwater):-*°-* 
Fort Pierce (City Dock)----- noc00000 
St. Lucie Inlet (jetty)------- coewee 


Sewall Point, St. Lucie River->:-*-+> 
Jupiter Inlet (near lighthouse)-:--- 
Anchorage Point, Lonahatchee River-- 
Tequesta, Loxohatchee Riverssssereee 
North Fork, Loxahotchee River:--°::: 
Port of Palm Beach, Loke WAOTLROG 829 


Polm Beach (ocean): eeeccccecccscce coe 
Hillsbore Inlet-- c0D0000000D00000 
Fort 

Bahie Mor Yacht Club:-------- . 


Andrews Ave. bridge, New River: 
Port Everglades 


Entrance (jgtties):-------- eecee 
South entrance (canal)--°-°> cece 
Sunny Isles, Biscayne Crees seccccce 
Indian Creek: : ses ssecescccccee eeccce 
Miami Beach---+:-eeeee2cccccce ecccce 
MIAMI HARBOR ENTRANCE::--------- 


Miami, 79th St. Cavseway::->°-°> 
Miami, City Yacht Basin--«-----> 
Miami, Causeway (east end)--°:°° 


Dinner Key Marina----+++-= 000000 
Floride Keys 

Cape Florida (W. side), Key Biscayne 

Cutler, Biscayne Bay eeccecee eeccecce 

Soldior Key: -:--ececrcecesenes o00000 

Fowey Rocke:-::- o900000d 00000000 S000 

Ragged Keys, Biscayne Bay-:---:-:::-: 


Use reference 
Use reference 


361 


30 26 


NNNNY—NAD 
NVO—QOO 0S & 


BSVSSSSSSSEESS 
o 


a28 


26 46 


a& 


SS a 


RARR RARREK RS RK 
FESS FSESTLS 


RRaRs 
Saass 


Station Mayport (2855). 


26 


80 OF 


S8SS SSSSSS FS SSSSSSEE 


ROSS 


ASBSkBSs5 


28Ssso se 


oeo 


=& 


2.4 


O—-9—-=—-=—--NNNN 
MBOlO—@hN O—NO@ 


1.0 


o= 


station Miami Harbor Entr. 


(2921). 


3061 
3062 
3063 


Florida Keys 


Turkey Point, Biscayne Bay-:-*::-:-> 
Adams Key, Biscovne Bay-s-sseeeeeee 
Garden Cove, Key Largo::::::::: 
Mosquito Bank: :-sse+eereeee wosceceee 
Molasses Reefer ss scere sete eeeces 
Pumpkin Key, Cord Sound:::::::: 
Bornes Sound:::ssssettseteceee 
Tovernior, Hawk Channel::-+-----°°'> 
Alligator Reef Light aialciefoletelotel falctekctelie 
Florida Bay (10) 

Lignumvitoe Keoy-----:*°°: ce cvcce 


Flamingo SSC ICICIOIO) ee eeecrcce 
Boot Key Harbor, Vaco Key:s*s**s**"> 
Bohia Honda (bridge):++++++°: veoeeve 
No Name Key (east side): :sssssseeees 
Big Spanish Key:ssss str teeees 
Cudjoe Key, west side (bridge):::::: 
Bird Key (highwoy bridge):::-+*+*"': 
Sand Key Light-::ssssrrereee 
KEY WEST: cts cc cscs nee seeree ees 
Garden Key, Dry Tortugas.............. 
Chonnol Koy: ss settee ttt t cece teens 


Gulf Coest 


Cape Soble, Eost Cape-:-:-:+++222°'> 
Shork River entrances::*:***sseeses: 
Whitewoler Boy eee ercccccccce yee ceee 
Lostmans River entrance:::::: 
Onion Key, Lostmens River:::+-°°: 
Chathem River entrance::::* eccccccce 
Pavilion Koy:***seseeeee- eccece 
Everglades City, Barron River-:--°:: 


Indian Keyssssttssstcceecees o0000000 
Round Koysc sess scree eee eeeee ejeie oiele), 
Pumpkin Bay rrr r reece eter ere ceeoee ° 
Coon Keys ssssssscteeceeee ogc0000000 6 
Cope Romano: sss: seeee erste eee eceeee 
Marco, Big Marco Rivers:*:*seeseee> 
Neoples (outer coast)--:+++++++++s- O10 
Estero Boy 

Little Hickory Island:---:-- sees 

Coconut Point---ss sss e test ceeee 

Carlos Point-:*s-sseessseesecrce 
Motonzoas Pass (swing br.) Estero I-- 
Point Ybel, San Carlos Bay ent---::: 
Punta Rossa, Son Carlos Bay-:-°---°: 
Colooschatchee River 

(Onn Ciarcnecoeesdo000000000000 : 

Cape Ceral Bridge eee r ere ecesccces 

Fort Myers- scot tee cc cceee 
St. Jomes City, Pine Island------::- 
Golt Islend, Pine Island Sound:-:--: . 
Coptivo Island (outside)----------°> 
Captiva |., Pine Island Sound:--::- ooee 
Redfish Poss, Cdptive |. (N. end)-°- 
Tropical Homesites Landing, Pine I-- 
Matlacha Pose (bascule bridge)------ 


eoocecce 


25 51 


RRERKRKKKKKK KRKRKKK KRRARKK 
SSSS3SSSES BSRNRRe SSlreass 


80 20 1.6 19 0.8 
80 14 1.3 1.6 0.7 
80 22 | 2.2 2.6 A] 
80 24] 2.2 2.6 1 
80 23 2.2 2.6 A] 
e018} OF == 0.4 
6024}; 02 r-]}]--— 
80 31 2toex- 1.2 
80 37 9 2.3 1.2 
60 42 03 ff =- 
80 56 2.0 2.5 1.0 
81 06 1.5 1.9 1.0 - 
61 17 2 fee 0.7 
8119} OF == 0.6 
81 25 27 2. 1.6 
61 31 10 2e-= 0.7 
6) 38 086 =-=- 0.5 
6) 53 1.2 5 0.6 
61 48 1.3 1.6 0.8 
62 52 lloe- 0.8 
8144] 09 = = 0.6 
Meen Diurnal 
61 05 2.9 3.8 2.0 
81 08 3.6 45 2.4 
81 02 0.5 0.8 0.4 
8) 13 3.0 3.9 2.1 
8108} 06 0.9 0.4 
81 17 3.3 42 2.0 
81 2) 3.5 44 2.2 
81 23 2.0 2.6 1.3 
81 28 3.4 43 2.3 
81 32 3.4 43 2.3 
61 33 2.1 2.7 1.3 
8) 38 2.6 3.5 9 
61 4) 2.6 3.5 9 
61 44 1.7 2.6 1.2 
81 48 2.1 2.8 1.6 
BIsij—— 2.5 1.3 
81 SOj—-— 2.7 1.3 
8153 }—-— 2.7 1.4 
8157) —=- 2.8 1.4 
6201 j;-—-— 2.6 1.4 
6201 |;—= 2.4 1.2 
81 58} —— 1.0 0.5 
81 56,—— 1.0 0.5 
8152} -— 1.2 0.6 
8205 |—- —- 2.4 1.2 
82 06 | —- — 2.1 1.0 
a2 1 i- 2.6 1.3 
62 I! |} —=— 2.1 0 
62 12}—-— 21 1.0 
6205 |—= 2.0 1.0 
6204 | —-— V9 1.0 


(10) In the eastern part of Florida Bay the periodic tide has a mean range less than one—half foot. 


Stations 2936 to 2963: Use reference 
Stations 2964 to 3037: Use reference 
Stations 3039 to 3047: Use reference 
Stations 3048 to 3063: Use reference 


362 


station 
station 
station 
station 


Miami Harbor Entr. (2921). 
Key West (2993). 
St. Marks R. Entr. (3135). 


St. Petersburg (3087). 


Gulf Coast 


3064 | Pineland, Pine Island:---:: te eeeeees 26 40 82 09 |= = 9 0.9 
3065 | Port Boca Grande, Charlotte Harbor:- 26 43 62 15 |—-— 1.7 0.9 
3066 | Punta Gorda, Charlotte Harbor::::::- 26 56 62 04 | = — 1.9 1.0 
3067 | Shell Point, Peace River::::+++++:: 26 59 82 00 |= = 2.1 | 
3068 | El Jobean, Myakka River:+-::+++++::: 26 58 62 13 j= = 19 1.0 
3069 | Placido, Gasparilla Sound::::*-**::: 26 50 62 16 j—- = 1.6 0.8 
3070 | Englewood, Lemon Bay:::::-*:+++++++ 26 56 62 21 |= — 1.6 0.8 
3071 | Venice Inlet (Inside) sss sssecreeees 27 07 62 28 |= = 2.1 V1 
3072 | Sarasota, Sarasota Bay:-*:::::: 27 20 6233 |= = 2.1 1.1 
3073 | Cortez, Sarasota Bay::-:-:::: tenons 27 28 62 41 |—- - 2.2 10 
FLORIDA—Tamea Bay 
3074 | Egmont Key, Egmont Channel--:-:----- 27 36 82 46 | — = 2.1 1.0 
Cr | GRO Dijocsan00da000000RD0000000 27 32 62 44 |/—- - 23 1.2 
3077 | Bradenton, Manatee River-:::: seeceee 27 3% 6234 | - - 2.3 1.2 
3079 | Redfish Point, Manatee River-*::°::: 27 32. 82 29 |= = 2.2 1.4. 
308) | Mullet Key Channel (Skyway)::::-*°:: 27 37 82 40|/- - 2.1 1 
3083 | Shell Point----s eres eee e seers eeeeee 27 43 82 29 |= — 2.3 1.2 
3085 | Point Pinellas:::-*+-ses seers eeeees 27 42 82 38 |} — - 2.0 1.0 
O87 | ST. PETERSBURG::----++--se reer eeeeee 27 46 82 37 |} — = 2.3 1.2 
3089 | Tampa, Hillsborough Boy:::::::: 27 56 62 27 |= = 2.8 1.4 
3091 | Safety Harbor, Old Tampa Bay:::-:::: 27 59 62 41 |/— — 2.8 1.4 
Boca Ciega Bay 
3093 Poss—a—Grille Beach:::::*:*:°-:: 27 41 82 44|/— - 2.1 1.0 
3095 Gulfport: ---- eee e recente eee eee 27 44 62 42 |— - 23 1.2 
3097 St. Petersburg Beach Causeway::- 27 45 62 45 |— - 2.2 UAL 
3099 Johns Pass :s-ss ss sr tere eeeeee 27 47 82 47 }- - 2.3 1.2 
3101 Medeira Beach Causeway:--------: 27 48 82 48 |} — - 2.3 1.2 
FLORIDA, Gulf Coast —Continued 
3103 | Indian Rocks Beach (inside):-----°:> 27 52 82 51 1.8 2.6 1.3 
3105 | Clearwater:::---+s seer sete eeeeens ve 27 57 82 48 1.6 2.6 1.3 
3107 | Dunedin, St. Joseph Sound::--:-- seeee 28 Ol 62 48 9 2.8 1.4 
3109 | Anclote Keys, south end-----++-++->- 28 10 82 51 2.1 3.0 1.5 
3111 | Tarpon Springs, Anclote River::::: ore 28 10 82 46 9 2.7 1.3 
3113 | Indian Bay--:-:-----::- seeeeee eoeeee 28 27 82 40}] 24 3.4 1.8 
BN1S | Bayport: -:-- see eee e rece eee eeee 500 28 32 82 39 24 3.4 1.8 
3117 | Withlacoochee River entrance:*---°:- 29 00 82 46 2.5 3.5 1.8 
3119 | Cedar Keys: --::s eee c eee eeeee o0605000 29 08 83 02 26 3.5 1.8 
3121 | Suwannee River entrance:*-**+s*e2e%% 29 17 83 OF 2.4 3.4 1.6 
3123 | Pepperfish Keys:::---++++s+> pe eceece 29 30 83 22 2.4 3.6 1.8 
3125: | Steinhatchee R. ent., Deadman Bay-:- 29 40 83 24 2.4 3.4 1.8 
3127 | Fishermans Rest----:s:+++sseeee> sees 29 44 63 32 2.4 3.4 1.8 
3129 | Spring Worrior Creek---+:+++-+: OD000 29 55 83 41 2.4 3.4 1.8 
BIB) | Rock Islands:::+++s+ssee esse e ence oe 29 58 63 50 2.4 3.3 1.8 
Apolachee Bay 
3133 Aucilla River entrance::::s*2+°° 30 05 84 00 2.4 3.3 1.8 
3135 ST. MARKS RIVER ENTRANCE---:> 30 04 64 11 2.4 3.3 1.6 
3137 St. Marks, St. Marks River:->--:: w 09 64 12 2.4 3.3 1.8 
3139 Bold Point, Ochlockonee Bay::::: 29 57 64 20 2.0 2.7 1.5 
S?. George Sound 
3141 Dog Island, west end::°::::>> oe 29 47 6440 | — — 2.6 1.3 
3143 Cerrabelle, Cerrabelle River::: 29 51 04 40 | — = 2.6 1.3 
Apolechicola Bay 
3145 Cat Polntsssscrccssecccscecsvoce 29 43 6453-2 = 2.2 0 
3147 Apolachicolarsssssssrsereeseecee 29 43 459 |— = 1.7 0.9 
3149 Lewer Ancherage:::::+++ssseeeees 29% 65 03)- - 5 0.8 
315) West Pass: secccrcccccceccccces 29 38 0506 )— — 1.4 07 


Stations 3064 to 3101 and 3141 to 3151: 


Use reference station St 
Stations 3103 to 3139: 


. Petersburg (3087). 
Use reference station St. 


363 


Marks R. Entr. 


Gilss)r 


FLORIDA, Gull Coast — Continued 


3153 | Pert Saint Joe, St. Joseph Boy?t:-::- 


wae 858} -- 6a] oO? 
St. Andrew Bay 
3155 Channel entrancet--::+--->> eee 30 07 65 44) — . 1.9 06 
3157 Ponama Cityf--ss+seeees 000000500 30 09 65 40} —- 1.3 06 
3159 Paorkerf sss ett t tere evens eecccee wd 06 65 37 | — = 5 07 
3161 Laird Bayou, East Baey?::::++:++> 30 07 65 32 )/— — 1.6 0.8 
3163 Farmdale, East Bay?::--: te eeecoes 30 01 65 286) — — 1.6 08 
3165 Wetappo Crook, Eaot Bay? +::++5 30 02 05 24) — = 1.4 07 
3167 Lynn Hoven, North Beytersssereee 30 15 65 39 |} —- = 1.6 08 
3169 West Boy Croeh, Weat Bay?f:s:+::: 30 17 655i jee S 07 
Chectawhatchee Bay(! 1) 
317) East Paos (Destin):-+-+s++ses0> . 30 24 663) J —- — 0.6 0.3 
3173 | Herris, The Narrowst:-++----+s+++0> 30 24 86 44] — — 1.4 07 
3175 | Fishing Bend, Sante Rose Soundt:--:: 3020 8708 |— — 14 07 
Pensacola Bay 
3177 EAtHCHargeosvac006 0000000000000 30 20 er ig9|—— lw 0S 
3179 Werrington, 2 miles south off--- 3 2) 87 16 | — = 1.3 0.6 
3181 PENSACOLAT- <2 --- +00 ee eee eee eee 3024 «8713/-- 13] O86 
3183 Lora Point, Escambia Bay?---:--- 30 31 67 lO} — — 1.5 0.7 
3185 East Bayt - 2 eee reece eee es 30 27 6655 |/— — 16 08 
3187 Bay Point, Blackwater Rivert--:- 30 314 87 00 | — — 1.6 0.8 
3169 Milton, Blockwoter Rivert------> 3037. «6702 |— — 1.6 0.8 
ALABAMA 
3191 Perdido Bay(V Id se rece terete eeeeee -- mirew hE ltgee tes ae ann eas 
3193 | Mobile Point (Fort Morgan)f::+::++:> 30 14 68 Ol |= = 1.2 0.6 
3194 | Fort Gaines, Mobile Bay Entrance?::- 30 15 86 04 | — = 1.3 0.6 
3195 | Bon Secour, Bon Secour Riverf-:::::: 30 18 67 44} —- = 1.6 0.8 
3196 | Fowl River, Mobile Boy Entrencef:::-- Ww 26 6807 |= = 5 0.8 
3197 | Great Point Clear, Mobile Bay?f::---- 30 29 67 56 |= = 1.4 0.7 
3198 | MOBILE, Mobile Riverf-----+--+++++-: 30 4) 88 02 | = = 1.5 0.8 
3199 | Lower Holl Landing, Tensow Rivert-:- 30 49 67 55|/—-= 1.3 0.6 
3200 | Boyou Lo Botre, Mississippi Soundt:- 30 22 68 16; —— 1.5 0.8 
MISSISSIPPI 
3201 | Horn Island Posst------ OOOO O OOOO OOD % 13 68 29 |} — = 1.7 0.8 
3202 | Pascagoula, Mississippi Soundt----- ° 30 20 68 32 |= = 1.5 0.8 
3203 | Pascagoula River entrancet::*-:°+e- 3 21 88 44} — = 1.6 0.8 
3205 | Biloni, Bilont Bayf-+-+--sceseserees 30 24 868 SI | — = 1.8 0.9 
3207 | Ship Island Passt------+s+sesereceee 30 13 88 59 | — = 1.7 0.8 
3209 | Cat Island (West Point)f-:°:ss°:: cy 30 14 89 l0j—- = 1.7 0.8 
3211 | Bay St. Loulst----+-+eesscceerees ee 30 19 89 18 | — = 1.6 0.8 
LOUISIANA 
3213 | Long Point, Loke Borgne?----- 9000000 30 OF 89 36 | — — 1.0 0.5 
3215 | Shell Beach, Lake Borgnet------+°°:: 2952 «a9 41 | — 1.3 0.6 
3217 | Chondelour Light?--------- sreccccece 30 03 88 52 |— —- 1.2 0.6 
3218 | Gardner Island, Breton Soundt::-:--: 29 41 89 23 |= — Ss 0.8 
3219 Breton Islandsf:--::+ssseececerce eco 29 30 89 10 j—_—_ 1.3 0.7 
3221 Jock Bay?----:-:ssserereeee eecocccce | 29 22 69 2Vj—— 1.2 0.6 
3222 | Lonesome Bayou (Thomasin)f--°°°°°: ee 29 14 69 OJ j— = t. 0.5 
3223 Pass o Loutre entrancet->---° coe 29 12 89 02 |= = 1.2 0.6 
3224 Southeast Passt-----+-+:-> OOO00G 29 07 89 03 |= = 1.2 0.6 
3225 Port Eads, South Passt::-:*:°*:- 29 O18 89 10 |— = 1.0 0.5 
3226 Joseph Bayout----------°+> 2704 89 16)/— = 1.4 0.7 
3227 Southwest Paset 28560 08=— 89 26 | — = 1.3 0.6 
3229 Head of Passosf--+++-++esseeecee 29009 89 IS|— = 09 0.46 
3230 New Orleans(12)---+-°+-- eeccccce 29 55 0 
3231 Ports Rood Bridget eo ceccccce ecceccce 3 00 69 $6 Je oe 0.0 0.6 


T The tide at this place is chiefly diurnal. 
(11) In Choctawhatchee and Perdido Bays the periodic tide has a mean range less than one—half foot. 


(12) At New Orleans the diurnal range of the tide during low river stages averages 0.8 foot. There 
is no periodic tide at high river stages. 


Stations 3153 to 3189 and 3200 to 3231: 
Use reference station Pensacola (3181). 
Stations 3191 to 3199: Use reference station Mobile (3198). 


364 


LOUISIANA 


3232 | Empire Jettyt- sss cr tsetse seer eeeee 29 15 69 36 | — — 1.3 0.7 
3233 | Basthan Islandt::+sssssstteeeseeeeee 29 17 69 40] — — 1.2 0.6 
3235 | Quatre Bayous Passf::++-sssssssseee: 29 18 69 SI j—--— 1.3 0.6 
3237 | Barataria Passt:-sss sss sttrseteeees 29 16 89 S57); — = 1.2 0.6 
Boratoria Boy 
3239 Bayou Rigaud, Grand Islet-:-:::- 29 16 69 58] — = 1.0 0.5 
324) independence Islandt:::: 29 19 69 56) —- = 09 0.4 
9243 Meni oovvanc0du0 Nd 00050000000C 29 26 a9 59 | — 10 05 
3245 | Caminado Pass (bridge)?----:*+-+-*:: 29 12 90 03 | — — 09 0.4 
3247 | Timbolier Island, Timbalier Bay?::-: 29 05 90 32) - - 1.2 0.6 
3249 | Pelican Islands, Timbalier Bayf:-::- 29 08 90 25} —- = 1.2 0.6 
3251 | Wine Island, Terrebonne Bayf:::-:-- 29 05 90 37 | —- — 1.3 0.6 
9253 | Caillou Bocat::::: ss ese ester settee 29 04 90 48 | — — 14 07 
3255 | Raccoon Point, Caillou Boyf:::::-::: 29 04 90 58) — — 1.7 0.8 
3257 | Ship Shoal Light?------++++rssseeees 28 55 9104] — — 1.6 0.8 
Atchofolaya Bay 
3258 Eugene Island?--------+-++-+-+°: 29 22 91 2)—-—- 1.9 1.0 
3259 Point Au Fert:-:--*-t-ssrr teres 29 20 91 21j—--— 2.0 1.0 
3260 Shell Islandt--++--sse reese 29 28 91 18} — — 15 0.7 
3261 Point Chevrevilf:------+-ss+sss> 29 31 9133 |} — = 1.5 0.8 
3262 Rabbit Island, 5 miles S. off--- 29 25 9136) — = 2.0 1.0 
3263 South Point, Marsh Islandt----:- 29 29 9146) —-— 1.8 0.9 
3264 Lighthouse Point?------:---*-*": 29 31 92 03 | - —- 2.0 1.0 
3265 | Cote Blanche, W. Cote Blanche Bayf-- 29 44 94g} —-— 1.4 0.7 
3266 | Southwest Pass, Vermilion Bay?:::-:- 29 35 92 02 | — = 1.6 0.8 
3267 | Weeks Bay, Vermilion Bay?t-----:-*:: 29 48 91 50} — = 5 0.7 
3269 | Mermentayu River entrancet--:*---**"° 29 45 93 06} — = 2.5 1.2 
3270 | Calcasieu Pass, Lighthouse wharff-:- 29 47 9321) -—- 2.0 1.0 
TEXAS 
3271 | Sabine Bank Lighthouset-:-::++*+*°°: 29 28 93 43) — = 2.8 1.4 
3272 | Sabine Pass (jetty)f::-:°sss°°'* eee 29 39 93 50) —— 2.5 1.2 
3273 | Sabine Passt:------++-+s steer eee ee 29 42 93 51 j—— 9 1.0 
3274 | Mesquite Point, Sabine Passf:--::- oe 29 46 93 54, —- = 1.3 0.6 
3275 | Gelveston Bay ent., south jettyt--:- 29 20 9442) —-—- 2.0 1.0 
3276 | Port Bolivart::-:ss essere teeter eens 29 22 94 47) —- = 14 0.7 
3277 | GALVESTON, Galveston Channelf:---- oe 29 19 9448 | —- = 1.4 0.7 
Gelveston Bay 
3279 Texas City, Turning Basinf----:> 29 23 94 53} —- = 1.4 0.7 
3280 Eagle Point Pecrecceee seccece 29 30 94 55) —-— 1.0 0.5 
3281 Clear Lake Perc ecesece eeeceee 29 34 95 6 |/—=— 0.9 0.4 
3282 Morgans Point Yoo000000 OO0000 29 4) 94 59 |—- = 1.0 0.5 
3283 Round Point, Trinity Bay (jo00 29 44 9442} —- = 1.0 0.5 
3284 Point Barrow, Trinity Bay?:::°°° 29 44 94 50|=--— 1.0 0.5 
3285 Giichriot, East Bayf--++s+see9%> 29 31 9429 |=- = 1.2 0.6 
3287 Jamaica Beach, West Bayf-::**°": 29 12 9459 | = = 1.0 0.5 
3288 | Alligator Point, Wost Bayf--+*:-+°"> 29 10 95 08 |—-= 0.9 0.4 
3289 | Christmas Point, Christmas Bayf-+°°: 29 05 95 l0|—= 0.9 0.4 
3290 | Galveston Pleasure Piorf:-::> ceveece 29 17 9447 | = = 2.1 0 
3291 | Sen Lule Poosf-::--::: 0000000 oeroeee 29 05 98 OF |—-=— 1.2 0.6 
3293 | Freeport Harborf:::*:+*+:°": ceeecoce 28 57 9 19|—- = 1.8 0.9 
3295 | Pass Cavallet::-::::: seeeece secceree 28 22 96 2 | —- = 14 0.7 
3297 | Port O’Connor, Matagorda Boyf-::**** | 2827 96 24|— = 0S 0.2 
3299 | Port Levoca, Metegorda Bayf-:>:*°°:: 28 37 96 IF | — = 0.7 0.3 
330) | Avensas Pass Channel(14)%---seeee% 7 97 03 |—-= 14 0.7 
3302 | Riviera Boach, Ballin Bayf-:°:°°°"* 2D \7 97 Mile 0.3 0.1 
3303 | Pedre Island (south end)(I4)--°°°e: 26 04 7 OO }=-= 14 0.7 
3305 | Pert lsebelf--:--:°-:: 9000000 DOGOD00 26 04 97 13 1—-=— 1.3 0.7 


t The tide at this place is chiefly diurnal. 


(14) Inside, in the various bays, except near the inlets, the periodic tide has a mean range less 


than one—half foot. 


Stations 3232 to 3257: 
Stations 3258 to 3305: 


Use reference station Pensacola (3181). 
Use reference station Galveston (3277). 


365 


Puerto Rico 


3483 | Mogueyes Islandt-------------+++++5- 17 58 67 03 |- - 0.7 04 
CYC | emcniiac occa codon D00go00000000000000 17 58 66 55) — — 07 0.3 
3487 | Playa de Poncet---::+-- sss seeeeeeee 17 58 66 37 |= = 0.8 0.4 
3489 | Playo Cortadat--:--+++:sssssseseeees 17 59 66 27 |= = 0.8 0.4 
3491 Arroyot ss street tec e eect eeecees 17 58 66 04 | — — 0.8 04 
3493 | Puerto Maunabot-:----sseese seer eeeee 18 00 65 53} = — 0.7 0.4 
3495 | Culebrita, Islaf:----+-:--- soteeees 18 19 65 l4f—-— 1.1 0.5 
3497 | Puerto Ferro, Isle de Viequest::-::: 18 06 65 26 |= = 0.8 0.4 
3499 | Punto Mulas, Isle de Vieques::::-::: 18 O9 65 26 0.8 0.9 0.4 
3500 | Roosevelt Roads:::-::*ss:ssseseeees 18 14 65 37 0.7 0.8 0.3 
3501 | Ensenada Hondo, Culebra Island:----- 18 18 6517] 07 0.9 0.4 
3503 | Playa de Fajardo:::::'-::::sssseee'> 18 20 65 38 11 1.3 0.5 
3505 | SAN JUAN: crc e sete secre reece rece eens 18 28 66 07 1. 1.3 0.5: 
3507 | Mayoguer:s: ss rset etter 18 13 67 09 tt 1.4 0.5 
3509 Puerto Roal-ss- este ttt tect eset eeee 18 05 67 IN 0.8 1.0 0.4 


t The tide at this place is chiefly diurnal. 


Stations 3483 to 3497: Use reference station Galveston (3277). 
Stations 3499 to 3509: Use reference station San Juan (3505). 


366 


Table C-2. Tidal ranges for Pacific coastal locations (from National 
Oceanic and Atmospheric Administration, 1979b). 


POSITION 


Lot. Long. 


RANGES 


CALIFORNIA 
AZSmPointelom Gr tem isl clr 3240 #117 14 3.7 $.3 28 
427 | San Diego, Quarantine Station’ :------> 32 42 117 14 3.9 56 2.9 
429 | SAN DIEGO (Broadway):*----*"""*""" 32 43 117 10 41 57 3.0 
43) | Notional City, San Diego Bay--:------: 32 40 «64117 07 43 5.9 3.0 
433 | Quivira Basin, Mission Bay------*--"": 32 46 «64117 14 3.8 5.4 2.8 
435 | Crown Point, Mission Bay-------***"-- 32 47 «117 14 39 5.5 2.8 
437 | La Jolla (Scripps Institution Whort)---- 32 52 «4117 :'15 3.6 5.2 2.7 
439 1San) (Clemente: 1-23 eel ee nine cin 3325 «4117 37 37 $.3 2.7 


Son Pedro Channel 


441 | Corona del Mar, Newport Bay---------- 33 3% 17 53 37 5.3 2.8 
443 | Balboa (Ocean Pier)----*-:---*+-*-7 33360 «17 «54 3.7 $.3 27 
445 | Santa Ana River entrance (inside)----- 33.38 «4117 57 2.4 3.3 1.4 
447 | Los Patos (highway bridge)---*------- 33.43 «411803 3.4 47 2.3 
449 | Long Beach, Outer Harbor, Pier A----- 33 46 118 12 3.7 $3 2.7 
451 | Long Beach, Inner Harbor:----------- 33 46 «6118 13 37 $.3 27 
453 | LOS ANGELES (Outer Horbor)-:-------- 3343 «4118 16 3.8 5.4 28 
455 | Los Angeles Harbor, Mormon Island: -:- 33 45 118 16 3.8 5.4 28 
457 | El Segundo, Santa Monica Bay:----::-- 33 55 «4118 26 3.7 5.3 2.7 
459 | Santa Monicas:-*s ssc s ttt ttre 3400 118 30 37 5.4 2.8 
Senta Barbora Channel 
461 | Mugu Lagoon (ocean pier)::***-"*-""° 3406 «+119 06 3.7 5.3 2.7 
463 | Port Hueneme:----: sc te rt 4 09 119 12 3.7 5.4 2.8 
465 | Ventura: : s+ 2c rs ete rene ine 3416 «119 17 3.7 54 2.8 
467 | Santo Barbara:::---- setts 3425 «119 41 3.6 $.3 28 
469 | Gaviota:: 2: teeter tree ene 3426 «#412013)-36 « 53 28 
Senta Borbora Islands 
471 | Wilson Cove, San Clemente Island:---:: 3300 118 33 $.2 2.7 
473 | Cotolino Horbor, Santa Cofolino Island: 33 26 118 30 5.2 2.7 
475 | Avolon, Sonto Catalina Island:::----:: 33 21 118 19 5.3 27 
477 | Santa Barbara: Island:--------*"°°"" 33.29 =4119 02 5.1 2.6 
479 | San Nicolas Island: -::**--**7*ss 7: 33 16 =6119 30 49 2.5 
48) | Prisoners Harbor, Santo Cruz Island: -- 34 01 119 41 5.0 2.6 
483 | Bechers Boy, Santa Roso Island:------ 3400 12003 $.3 28 
485 | Cuyler Harbor, San Miguel Island: ----- 3403 «120 21 5.2 2.7 
Outer Coast 
487 | Point Arguello--------::s cscs t ctr 3435 «120 39 5.2 2.7 
489 | Avila Beach, San Luis Obispo Bay::-::- 35 10 120 44 $.3 28 
491 | Morro Beach, Estero Bay::-::: odoo0G 35 24 120 52 5.2 2.8 
493 | San Simeon----- sorts chet). Uc UD 5.2 27 
495 | Carmel Cove, Carmel Bay--------°--:: 36 31 121 56 52 2.8 
497 | Monterey, Monterey Boy:---*--"*-""*° 36 360121 54 | 5.3 2.8 
499 | Santo Cruz, Monterey Boy---------:": 36 58 1220) $.3 2.8 
501 | Ano Nuevo Island------ss7s scr ttt 37 06 122 20 $.2 2.7 
503 | Princeton, Halfmoon Boy:-:--:-****°- 37 30 =: 122 29 5.5 3.0 
505 | Southeast Farallon Island------------ 37 42 123 00 5.6 3.0 
507 | San Francisco Bar---------**7*°77 7 37 46 «=: 122: 38 |, 5.6 3.0 
509 | Ocean Beach, outer coost':--*"-*---"* 37 46 122 31 6.0 3.2 
Sen Francisco Bay 
511 | Bonita Cove, Golden Gote-----------: 37 49 §=122 32 58 3.1. 
513 | SAN FRANCISCO (Golden Gote)-------:- 37 48 122 28 5.7 3.1 
515 | Alcatraz Island-------:--*--- 0.9:9.0.0.9910 37 50 «122 25 5.8 3.1 
517 1 Son Francisco, North Poirt:---------- 37 49 122 25 58 3.1 
519 |] Rincon Point---o: ccc cc ttt ttt 37 47 122 23 6.1 3.3 


Stations 425 to 439: Use reference station San Diego (429). 
Stations 441 to 495: Use reference station Los Angeles (453). 
Stations 497 to 519: Use reference station San Francisco (513). 


367 


| Son Francisco Bay | 
$21 | Yerba Bueno Island: ----------------- 37 49 
S237 tO akland | Pierce ster intel tical 37 48 
BB I A modbascanscsoso2nnpobsbasooondcd 37 46 
527 | Ookland Harbor, Grove Street--------- 37 48 
529 | Oakland Horbor, Pork Street Bridge---- 37 46 
531 | Bay Farm tsland Bridge-------------- 37 45 
533 | Ookland Airport------s- sss eres cre 37 44 
S35 mlibotrenouPointiig etre. litt 37 46 
537 | Point Avisadero, Hunters Point-------- 37 44 
539 | Roberts Landing, 1.3 miles west of---- 37 40 
541 | Point San Bruno--------------+--+--> 37:39 
543 | Coyote Point--------------+-----+-2: 37% 
545 | Son Mateo Bridge:----------*------ 37 35 
$47 | Coyote Hill Slough entrance----------- 37 34 
549 | Redwood Creek entrance (inside)------ 37 31 
551 | Smith Slough-----++----+++ seers eee 37 30 
553 | Dumbarton Highway Bridge------------ 37 #0 
555 | Polo Alto Yacht Harbor--------------- 37 27 
557 | Caloveros Point, west of-------------- 37 28 
559 | Mud Slough railroad bridge----------- 37 28 
561 | Alviso (bridge), Alviso Slough---------- 37 26 
563 | Guadalupe Slough::--------+--+- 77-7 37 26 
P7B. | Bararyijned0 obeaod 00 ceuogcaccadobaes 37 5) 
567 | Angel Istond (we 37 $2 
569 | Angel Island (east side)-------------:- 37 52 
571 | Point Chouncey--:-----c ccc t etree ee 37 53 
573 | Berkeley-:--- +: -- tects 37 52 
E7S5ulPointhlsateleoeeo- Cee eee 37 54 
S77MlRichmondieetcee ee ee ee tra 37 55 
579 | Point Richmond:-------+--7+ rere 37 56 
581 | Point Orient-------:2-esece esse eee 37 57 
$83 | Point Son Quentin: :----+--+s7- ++ --- 37 57 
Sen Pablo Bay 
POR Tap pnpee cones copobonacdsaccdoagdnos 37.59 
ENF) I CRRCIO Gotopooconosodcosnoocdoadcnen 38 01 
589 | Hercules::::: Bette e eee ee eee eee ee 38 01 
591 | Petaluma River entrance::*-------°:- 38 07 
~ $93 | Lokeville, Petaluma River-----------:> 38 12 
$95 | Upper drawbridge, Petaluma River----- 38 14 
$97 | Sonoma Creek entrance------------:> 38 09 
Corquinez Strait 
599 | Selby----2 222 tere eee e eee ees 38 03 
601 | Mare Island Strait entrance:--------- 38 04 
603 | Vallejo, Mare Island Strait------------ 38 06 
605 | Napa, Nopa River:---°=--20- 22220 -e 38 18 
COMBNiGrochettsecce cers elelleeltsrerrecerrr 38 03 
609 | Benicia, Army Point--------------+--: 38 03 
COO (Sere GaigisesocenssceGessocnn|5000 38 02 
Suisun Bay 
615 | Pittsburg, New York Slough:---------- 38 02 
617 | Point Buckler:--------- +22 erect cree 38 06 
619 } Suisun Slough entrance-------------- 38 07 
621 Suisun, Suisun Slough---------------- 38 14 
623 | Meins Landing, Montezuma Slough----- 38 08 
San Joaquin River 
(YBN Aamonies2descconocotccce aos son0Ke 38 O1 
627 | Threemile Slough entrance--------:-- 38 05 
629 Prisoners mRoN Nie elie til acer le 38 04 
631 | Wards Island: :------+ss-sse reer eee 38 03 
633 | Blackslough Landing: :-------:------: 38 00 
CEE) | SCOCOCGIee PES Po Been Shean Seno o a6 37 57 
637 | Mossdale Bridge(4)::-- +--+ 7-1 eee 37 47 
Mokelumne River 
639 Georgiana Slough entrance’------- 38 08 
641 Terminous, South Fork----------- . 38 07 
643 New Hope Bridge(4)-------------+- 38 14 
645 | Bishop Cut, Disappointment Slough: --- 38 03 
647 Webb Ferry, False River------------:- 38 03 
649 | Irish Landing, Sand Mound Slough----- 38 02 
651 Orwood, Old River::------*------+:: 37 56 
653 | Holt, Whiskey Slough----------------- 37 56 
655 | Borden Highway Bridge, Middle River:-- 37 53 
657 | Grant Line Canal (drawbridge):-------: 37 49 


( 4) These data apply only during low river stages. 


122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
V22 
122 
122 
21 
121 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 
122 


22 43 6.0 
20 43 6.0 
18 47 64 
7 4s 6.2 
14 46 63 
14 48 6.5 
12 48 6.5 
23 46 63 
2) 49 66 
12 $.4 7.2 
23 $.1 69 
\9 $.5 7.2 
1§ 5.8 746 
08 60 78 
2 6.1 7.9 
14 62 7.9 
07 66 64 
06 68 86 
04 6.8 6.5 
58 74 9.1 
59 7.2 9.0 
02 7.4 9.1 
29 3.8 $.5 
27 3.9 5.6 
25 40 $.7 
27 4.0 $.7 
18 4.2 s9 
19 42 5.9 
2! 4) 5.8 
24 42 5.9 
26 4.) 5.8 
29 40 5.7 


PR RVYYWULWY 
NVH—DBNDMAUW 


122 27 4) 5.7 


122 
122 
122 
122 
122 
122 


122 
122 
122 
122 
122 
122 
122 


12) 
122 
122 
122 
12) 


121 
121 
12) 
12) 
12) 
12) 
121 


V2) 
2) 
2) 
421 
12) 
121 
12) 
V2) 
12) 
V2) 


Stations 521 to 657: Use reference station 


368 


3.1 
22 44 6.0 3.3 
18 44 6.0 3.3 
30 45 6.1 3.3 
33 49 6.4 3.4 
37 $.1 6.6 3.5 
24 46 6.0 3.2 


15 47 6.3 3.4 
1S 43 5.8 3.1 
16 45 6.0 3.2 
17 $.5 7A 3.8 
13 43 5.8 3.1 
08 43 5.9 3.2 
07 43 5.6 3.2 


53 3.3 44 2.3 
Ol 4) 5.5 2.8 
04 40 $.3 2.8 
02 5.0 6.4 3.5 
54 43 5.6 29 


49 3.1 42 
4) 2.6 3.6 
33 2.6 3.5 
30 2.7 3.6 


SSS sss 
=-o~7°eeen 


25 29 3.6 

17 3.1 40 

18 18 2.4 

35 2.6 3.5 18 
Ke) 3.0 3.9 2.0 
29 27 3.6 1.6 
25 3.2 4) 2.1 
39 2.7 3.6 16 
35 2.7 3.6 1.6 
34 2.8 3.7 19 
26 3.0 39 2.0 
29 2.6 3.5 16 
27 2.8 3.7 19 


San Francisco (513). 


659 | Collinsville: ---*+s- tet e treet 3804 121 5) 3.2 43 2.2 
661 | Threemile Slough entrance(4)------*-- 3806 12142} 35 46 2.3 
663 | Rio Vistala)--- 7-2-2 s otter ere 38.09 12142) 36 47 | 24 
665 | Walnut Grovel4):--<ss sss 3814 12131 43 3.1 1.6 
667 | Clarksburg(4):--:- cot 3825 121 31 2.3 2.9 14 
669 | Sacramentol4): sss ott 38.35 121 9% 2.3 29 1.4 
Outer Coast 
671 Bolinas) Bays eee cinieioinie 37 54 «86122 41 4.0 57 3.1 
673 | Bolinas, Bolinas Lagoon--**-***""*"""* 37 55 122 4) 3.0 44 2.3 
675 | Point Reyes:::'*' ooo 38 00 86123 Ol 3.9 $.7 3.1 
677 | Tomales Bay entrance::--""**"**""*"* 3814 122 59 3.5 $.2 27 
679 | Marshall, Tomales Bay'-:**-"**"**"*** 3810 122 54 3.6 5.4 2.8 
681 | Inverness, Tomales Bay'':*:***""****" 3806 122 51 3.7 5.3 2.8 
683 | Bodego Horbor entrance:-*-***-"""""* 38 18 123.03 3.8 5.7 3.1 
685 | Fort Ross ot cc 383) «123 15 39 5.7 3.0 
687 | Point Arena::**:" "7 7c 38 57 «123 44 40 5.8 3.1 
689 | Albion: ss steers 39 14 123 46 40 58 3.1 
691 | Little River Harbor-------s-srsscr er 39:16 ©=123 47 40 5.8 3.1 
693 | Mendocino, Mendocino Bay-:*---:--*"- 39 16 =123 48 40 5.8 3.1 
695 | Fort Bragg Landing::------s7sss7s 39 27. «+123 49 4l 5.8 3.1 
696 a LINoy.o} Rivers: scien i-iicleiciae)cinieiniese 39 25 123 48 4) 6.0 3.2 
697 | Westport::- sss strc crest 39 38 ©6123 47 4.0 58 3.1 
699 | Shelter Coves*-------*-ss secretes 4002 124 04 42 6.0 3.3 
701 | Cape Mendocino: ::**s7t test r tse 4026 124 25 40 5.7 3 
703 | Eel River entrance:s**:** stots ttt 4038 12419 44 6.3 3.4 
Humboldt Boy h “ z 
705 Entrance © sooo setae 4046 12415 43 6.2 3.3 
707 HUMBOLDT BAY (South Jetty):------ 4045 12414 45 64 34 
709 Fields Landing:---"*7**tctttt tes 4043 124 13 49 67 3.6 
7 Hookton Slough:--:--s-tste 4041 124 13 48 66 3.6 
713 Bucksport: = os 3 scenes: 40 46 «6124 12 46 6.5 3.5 
715 fepiqecueccusrbcdacKoer ansoonc 4048 12410 48 67 36 
716 Samoa: ss sss ccc ttt ttt 40 49 124 11 5.1 7.0 38 
717 Arcoto Wharf:::-:*:°5*  vttttet 40 51 124 07 5.0 7.0 3.8 
719 | Teimidod Haorbor-:+*-**s7 ss or tttt tte 4103 124 09 46 64 3.5 
72\\ | Grescent City: = 2-2 eect 4145 12412 5.1 69 3.7 
OREGON 
723 | Brookings, Chetco Cove-----"*--**"-- 42 03 124 17 $1 69 37 
725 | Wedderburn, Rogue River:------"**-** 42 26 124 25 49 67 3.6 
rai || Good Citianclessessoconcanodconigabonos 4244 1248 5.3 7.3 39 
729 | Bandon, Coquille River------:*s:777": 43 07 124 25 5.2 7.0 37 
Coos Bay 
73) Gharlestonwg tei ikooch lini leds 4321 12419 5.7 7.8 41 
733 En pie sic eae nes tacit iia ele 4324 12417 49 6.7 3.5 
735 GoossGoy cee rr ae cite iin 4323 124 13 5.6 7.3 3.9 
Umpqua River 
737 PEN trance ves aire ph ok ih 43 4) 124 12 5.1 69 3.7 
739 Gardiner ee i ee nC et 43 44 124 07 $.1 6.7 35 
741 Reedsport--- > ------ 32-28 + - 4342 124 06 5.1 67 36 
Siuslaw River 
743 Entrance So Ger inn CnC 44 ol 124 08 §2 69 37 
745 Florence: soo cc cc tt 43 58 124 06 5.0 6.6 3.5 
747 | Woldport, Alsea Bay---------*"***---- 4426 124 04 $.8 77 4 
Yaquina Bay ond River 
749 Bor of ontrance::-*--* cscs 4437 124 05 5.9 79 42 
751 ’ Newport 4438 12403 6.0 8.0 43 
752 Southbeach 4438 12403 6.3 83 45 
753 Vaquinoe 443% 124 01 62 82 44 
755 Winant: 22 oec eters 44 35 124 00 63 62 43 
757 Toledo: :s cots certs 44 37 123 56 63 8! 42 
759 | Toft, Siletz Bay--**-77-s ccc 4456 12401 5.0 64 34 
761 Kernville, Siletz River-----*"77-cr ee 44 54 124 00 46 6.1 3.1 
763 | Nestucco Bay entrance:-*--*""***"*": 4510 123 58 58 7.6 40 
Tillamook Bay 
765 Lopeiicmies vopvooncndoennsqnn0000 4534 123 57 57 75 39 
766 Goribolditcte sees cee: linen 4534 123 55 59 7.8 42 
767 Miomi Cove::-::---207o ste 4533 123 54 54 7.4 39 
769 Bey City eeccvesacecnco ses eeessees 45 3) 123 54 54 7A 3.7 
77\ Tillamook, Hoquorten Slough:-::-- 45 28 1235) 5.2 6.6 3.3 


( 4) These data apply only during low river stages. 


Stations 657 to 701: Use reference station San Francisco (513). 
Stations 703 to 771: Use reference station Humboldt (707). 


369 


Neholem River 
773 Brighton ee ery 
775 Nehalem ee ee ee ed 
Columbia River(5) 


777 | Columbia River entrance (N. Jetty)--:: 


779 | \lwaco, Boker Bay, Wash 


781 | Chinook, Baker Bay, Wash------------ 


783 | Hungry Harbor, Wash 
785 | Point Adams, Oreg 


787 | Warrenton, Skipanon River, Oreg::-::-- 


789 | Astoria (Youngs Bay), Oreg 
791 | Astoria (Port Docks), Oreg 


793 | ASTORIA (Tongue Point), Oreg:--------- 


795 | Settlers Point, Oreg 
797 | Harrington Point, Wash 


799 | Skemokawa, Steamboat Slough, Wosh--- 


80! | Cothlamet, Wash 
803 | Wauna, Oreg 
805 | Eagle Cliff, Was 
807 | Stella, Wash 
80? | Longview, Wash 
811 | Kalama, Wash 
813 | Saint Helens, Oreg 
515 | Knapp Lending, Wash 
317 | Kelley Point, Oreg 


319 | St. Johns, Willamette River, Oreg:--:-- 
821 Portland, Willamette River, Oreg:---::- 


823 | Vancouver, Wash 
B25 | Ellsworth, 
827 | Washougal, 
829 | Warrendale, Oreg 


831 | Long Beach 


WASHINGTON 


Willapa Bay and River 


633 Willapa Bay entrance:-::-----:::: 
835 Nohcotta, Willapa Bay::--------:: 
837 Tarlatt Slough, Willopa Bay------:: 
839 Bay Center, Polix River----------- 
841 Toke Point, Willopa Boy----------- 
843 South Bend, Willapa River:-------- 
645 Raymond, Willapa River:---------- 


847 | Groyland 
849 | Westport (ocean) 


Grays Herbor 
851 Point Chehalis----------+-+-++--+ 
853 Bay Citys: 2 steer eee cece ees 
855 Markhamedcrrci tee eercrnicrs 
857 North Channel 
859 ABERDEEN --:------ 
66) Montesano, Chehalis River--------- 


863 | Pacific Beach 


865 | Point Grenville 
867 | Destruction Island 
869 | La Push, Quillayute River 


871 | Cape Alava (Flattery Rocks):---------- 


875 | Neah Bay 
877 | Clallam Bay 
678 | Twin Rivers 
B79 | Crescent Bay 
68! Port Angeles 
883 | Dungonoss 


885 | Sequim Boy entronce 
687 | Gerdiner, Discovery Boy 
689 | Smith Island 
891 | Point Partridge 


Strait of Juan de Fuca 


4540 123 56 5.9 7.8 4) 
45 43 123 53 5.6 7.2 3.7 


4616 12404 5.6 7.5 40 
4618 124 02 6.0 7.6 40 
4616 123 57 6.2 79 4.2 
4616 123 5) 6.4 6.2 44 
4612 123 57 6.4 6.3 44 
4610 123 55 6.5 8.3 44 
4610 123 50 6.7 6.6 45 
4611 123 52 6.2 8.0 42 
4613 123 46 6.5 8.2 43 
4610 123 41 6.3 8.0 4.1 
4616 123.39 6.1 7.7 39 
4616 123 27 5.6 69 
4612 123 23 $.2 6.4 
4610 123 24 $.2 6.3 
4610 123 14 45 $.5 
46 11 123 07 40 49 
4606 122 57 3.3 40 
4600 122 5) 2.6 3.2 
4552 122 48 2.0 2.5 


i) 
c=) 
Greeecrrverroroeeonene 


45 44 122 45 Ss . 

4539 122 46 1.46 2.0 
4535 122 46 V7 2.2 
4531 122 40 1.8 2.4 
45.37 122 40 1.3 1.6 
4536 122 33 1.0 1.4 
4535 122 23 0.5 09 
4537 122 00 04 0.6 


4621 124 03 6.2 6.1 44 


4643 «124 04 6.2 6.) 44 
46 WN 12401 6.0 10,2 5.4 
46 22 12400 7.9 9.4 46. 
38 «123: 57 6.8 69 47 
42 123 58 6.5 6.5 45 
40 «123 48 7.8 9.8 $.2 
41 123 45 7.8 99 5.3 
49 «124 06 6.2 6.1 44 
53 124 07 6.4 6.5 46 


4655 124607] 69 90] 48 
4652 12404| 7.1 92| 49 
4654 12600] 72 92] 49 
4658 12357] 76 O7| 52 
4658 12351) 79 loll 54 
4658 12336] 67 ol] 4) 
4713 12412] 65 66 
4718 12416] 65 66 
4740 12429] 66 @7] 47 
4755 12638] 65 a5 
4810 12444| 60 062 


4623 12644| 58 60] 43 
4822 12437) 55 79] 43 
4816 12418| $0 77] 43 
4810 12357] 44 70] 4.1 
4810 125 44 41 6.7 @.! 
4807 12326| 42 72] 446 
4810 12307| 44 76] 47 
48 05 123 03 26 79 48 
4804 12255] 48 79] 48 
4819 12250} 42 70] 45 
4814 122461 45 77| 47 


( 5) The Columbia River is subject to annual freshets. Short ronge predictions are available at local 
river forecast centers. The data for stations above Harrington Point apply only during low river stages. 


115 CO VSS 


Stations 
Stations 
Stations 
Stations 


VT TO 
831 to 
879 to 


829: 
878: 
891: 


Use 
Use 
Use 
Use 


reference 
reference 
reference 
reference 


370 


station Humboldt (707). 
station Astoria (793). 
station Aberdeen (859). 
station Port Townsend (895). 


Admiralty Inlet 


693 | Admiralty Head: :*-sssststtrrrsestees 48'10 122 40 | 


$.2 64 5.1 
895 | PORT TOWNSEND:------- essere eres 4808 122 46 5.2 64 5.1 
897 | Port Townsend (Point Hudson):----::- 4807 122 45 $.3 8.6 5.2 
899 | Merrowstone Point: -----+-+ssse srr eee 4806 122 41 5.6 8.8 $.3 
900 | Mystery Bay, Marrowstone Island---:---: 4803 122 41 5:0 8.2 5.0 
901 | Bush Point::----sc rte teeter eee 4802 12236) 56 68 5.3 
POZO Gk aD ayia tise telatbelielieiicl cs leleho is 4801 122 43 6.0 9.4 5.6 
903 | Port Ludlow::-*-sc strstr ttt 4755 122 41 64 99 5.9 
905 | Port Gamble------ sess sts reer eee 4752 122 35 67 10.3 61 
907 | Bongor Whart-------s seer rete eee ee 4745 122 44 7.3 10.9 6.4 
908 | Zelatched Point, Dabob Boy::---:----: 47 43 122 49 7.6 11.5 67 
909 Seabeck Pe ee 47 38 122 50 7.8 11.6 68 
910 | Pleasant Haorbor-------*+-+---+-+----- 4740) 122 55 7.7 11.6 68 
Cin] WC Deoooduaeoeooccobononeesodonoor 47°21 123 06 79 18 69 

Puget Sound 
Ce? | ICRI Gone as. 20 OS AOR DORR arO CDGR ono. 4755 12233 6.7 10.3 6.1 
913 | Point No Point-:-------++sssssceeeee 4755 122 32 67 10.4 61 
914 | Edrmonds:-*-- ss sete rte tee 47 49 =6122 23 7.2 10.9 64 
915 | Port Madison: ---°-*-s ss eec reer eres 47 42 «(122 32 7.7 11.46 6.6 
917 | Poulsbo, Liberty Boy--------------->- 4744 122 39 6.1 Wg 69 
919 Brownsville, Port Orchard------------- 47 39 122 37 6.0 11.7 6.8 
921 | SEATTLE (Madison St.), Elliott Bay------ 4736 122 20 7.6 1.3 6.6 
923 | Eighth Ave. S., Duwamish Waterway: --- 47 32 122 19 7.5 Wl 65 
925 | Port Blakely--°---:s-cccctt reece 47:36 ©6122 30 7.8 WS 67 
927 | Pleasant Beoch, Rich Postage:-------- 47 36 122 32 7.8 11.5 6.7 
929 | Bremerton, Port Orchard--:----------- 4733. +122 38 6.0 11.7 68 
931 Tracyton, Dyes Inlet----------------> 47 37 122 40 846 12.3 7.1 
933 | South Colby, Yukon Harbor----------- 47,31) 122/32 79 116 67 
935 Des Moines i ee ray 47 24 122 20 6.0 W7 68 
937 | Burton, Quortermaster Harbor-------:- 47 23 122 28 8.2 We 69 
939 | Gig Horbor-------- +--+ es eee eee 4720 122 35 82 11.6 69 
941 | Tacoma, Commencement Bay---------- 47\7 +122 25 6.1 Hie 68 
943 | Arletta, Hole Possoge----------------: 4717 122 39 9.3 13.0 7.4 
945 | Home, Von Geldern Cove, Corr inlet---- 47 16 122 45 9.7 13.6 7.8 
947 | Weuna, Cerr Inlet-------*-----*7°-°°> 4723 «122 38 9.4 13.1 7.5 
949 | Stellacoom::------- str ttre 4710 122 36 9.4 13.1 7.5 
951 | Hyde Point, McNoil Island------------- 4712 122 39 9.5 13.4 7.7 
953 | Sequelitchew Creek, Nisqually Reach---- 47 07 122 40 9.6 13.4 7.7 
955 | Longbranch, Filucy Bay------------+"- 4713 122 45 97 13.5 7.7 
957 | Henderson Inlet-------+++--s sete eses 4709 #122 50] 10.0 14.0 6.0 
959 | Vaughn, Case Inlet----------------+-- 4720 122 46} 10.2 14.1 8.1 
961 | Allyn, Case Inlet-----------ssreeee °47 23° (122 49 | 10.2 14.1 6. 
963 | Walkers Londing, Pickering Passage---- 4717 122 56] 10.3 143 6.1 
965 | Arcadia, Pickering Possoge------------ 4712 122 56) 104 14.4 62 
967 | Shelton, Ooklond Boy----------------- 4713 12305] 106 14.2 79 
969 | Burns Point, Totten Inlet-------------: 4707 12303] 11.0 15.0 6.5 
971 | Rocky Point, Eld Inlet------------+-+:- 4704 12301 | 10.6 14.7 8.4 
973 | Dofttlemyer Point, Budd Inleot----------- 47 08 122 54] 10.5 14.4 8.2 
975 | Olympia, Budd Inlet-:----:-+-:--++++> 4703 122 54| 105 144 6.2 
Possession Sound ond Port Suson 

977 | Mukilteo: +: +2 oot tee eee eee eee 47 57 +122 18 7.4 11.0 64 
O79 | Everett: ooo i icc 47 59 12213 7.4 Wd 6.5 
981 | Tulolip:: ss ete terete eee es 4804 12217 74 11.2 66 
9B2 | Kayak Point----- esses etree 4808 122 22 7.3 10.9 6.3 
983 | Stanwood, Stillaguamish River(7)------- 4814 122 22 57, 7.4 3.6 


Seratoga Passage ond Skagit Bay 


984 | Greenbank, Whidbey Island------------ 4806 122 34 | 7.6 3 6.6 
985 | Coupeville, Penn Cove:---::---:-°--:: 4813 122 4) | 78 W.5 6.7 
987 | La Conner, Swinomish Channel(8)------ 48 23. «122 30 6.5 10.0 5.9 
989 | Ala Spit::-:- sett eset tte eee 4824 122 35 69 10.5 6.1 
991 | Yokeko Point, Deception Pass:-------- 48 25 122 37 7.3 1.2 6.4 
993 | Cornet Bay, Deception Pass----------- 48 24 122 37 66 10.2 6.0 


(7) The low water seldom falls below the chart datum. 


( 8) The doto for lo Conner apply only during low levels of the channel which usually occur in 
midsummer. Low water seldom falls below the chart datum. 


Stations 893 to 902: Use reference station Port Townsend (895). 
Stations 903 to 993: Use reference station Seattle (921). 


Siva 


Rosario Strait, ete. 


995 | Reservation Bay, Fidalgo Island:------- 48 25 122 40 45 7.6 47 
997 | Aleck Bay, Lopez Island::------------- 4826 122 51 42 7.4 46 
999 | Burrows Bay (Allan Island)------------ 48 28 122 42 5.0 6.1 46 
TOO) | Anacortes, Guemes Channel:---------- 48 31 122 37 48 6.2 5.0 
1003 | Swinomish Channel ent., Padilla Bay--: 48 28 = 12231 $.1 6.4 5.1 
1005 | Thatcher Pass-:----------ssees crs eee 48 32 122 48 5.0 6.2 49 
1006 | Strawberry Bay, Cypress Island-------- 48 34 122 43 48 8.0 49 
1007 | Peavine Pass:---------s:: sss sc eee: 48 36 «6122 48 5.0 8.2 49 
1009 | Eagle Horbor, Cypress Island:--:------ 4835 122 42 5.0 6.2 49 
Bellingham Bay 
1olr Chuckanut Bay----*---s5ss5sss se 48 40 122 30 $.2 8.4 5.1 
1013 Bellingham: ------+-+ss-+5-5-s 4845 12238 $.2 8.6 5.2 
Hale Passage 
1015 Point Miglev-:----:: sss r steer ee 48 45 122 43 $2 6.6 5.2 
1017 | Rosario, East Sound, Orcas Island----: 4839 122 52 49 61 a9 
1019 | Upright Head, Lopez Island----------- 48 34 122 53 46 78 48 
1020 | Orcas, Orcas Island:------:------+--- 48 36 122 57 45 76 47 
San Juan Channel 
1021 Richardson, Lopez Island:-:------- 48 27 122 54 42 7.3 45 
1023 Friday Harbor, San Juan Island::-- 48 33 123 00 45 7.7 48 
Strait of Georgia 
1025 Echo Bay, Sucia Islands:---------- 48 45 122 54 $.2 86 $.2 
1026 Fernndole wtih ce cca ial: 4850 122 43 5.6 9.0 5.4 
1027 Blaine, Semiahmoo Bay:--------:- 49 00 122 46 5.9 9.5 5.6 
Haro Strait 
1029 Kanaka Bay, San Juan Island:----- 48 29 123 05 42 7.3 45 
1031 Roche Horbor, San Juan Island: --- 48 37 123 09 44 75 47 
1033 Turn Point, Stuart Island--------- 48 4) 123 14 44 7.5 47 
1035 Patos Island Wharf--------------- 48 47 122 58 5.3 86 5.2 
ALASKA 
1181 | Cape Muzon, Dall Island, Alaska:------- 5440 132 40 99 12.1 6.4 
1183 | Nichols Bay, Alaska:---------s++-+++> $443 13208] 11.1 13.4 69 
1185 |-Cape Chacon, Alaska----------------- 5442 13201] I) 13.6 7.0 
1187 | Kelp Island Passage, Duke Island------ $453 131 18} 12.2 14.6 7.6 
1189 | Barren Island, Alasko--:----------::- 5445 131 2) 11.6 13.9 7.3 
W191 | Cape Fox, Alaska-::-------++-+-+---s 5446 1305) 12.4 14.6 7.5 
1193 | Port Tongass, Tongass Island, Alaska: :- 5446 13044] 12.4 14.6 7.5 
1195 | Nokat Harbor, Alaska-:----::-:---:-- 54 49 130 42 12.4 14.7 7.6 
1197 ] Haystack Island, B.C(9)----------5-: H $443 13037} 126 15.0 | 78 
Portland Canal, otc. | 
1201 | Wates Island (Cannery), Pearse Canal(9) 5447 13033] 12.9 15.3 7.9 
1203 | Kumeon Bay, B.C(9):--- +s sss sree eee $443 13014] 13.2 15.6 6.1 
1205 | Mill Bay, Noss River, B.C{(9)----------- $500 129 54] 13.2 15.5 6.0 
1207 | Holibut Boy, Alaska(9)---+-----++:--- 5514 13006] 13.4 16.0 64 
1209 | Fords Cove, B.C(9)--- +--+ +s sree e ee $537 13006] 13.7 16.2 04 
1211 | Davis River entrance, Alaska(9)------- 5546 1301) 14.2 16.6 8.6 
1213 | Stewart, B.C(9)- +--+ errr eee $555 12948] 143 16.8 87 
| ! 
Revillagigedo Channel 
1215 | Merse Cove, Duke Island------------- 5455 13115] 12.4 14.6 7.7 
1217 | Kah Shakes Cove:::-------++++-+-ee: $503 13059] 126 15.0 7.8 
1219 | Boca de Quodra-----------++--++++s- $507 13048] 12.7 15.0 77 
1221) | Mary Island Anchorage----:----:----- $506 3112] 130 15.4 8.0 
1222 | Mop Point, Thorne Arm:-:-:-+++++-+- 5523 13) 14] 12.6 15.2 7.9 
1223 | Hassler Harbor, Annette Island::------ 5°13 131 26] 13.1 15.5 8.0 
1224 | Coon Island, George Inlet--------- $5 26 13130] 129 15.3 7.9 
1225 | Gnot Cove, Carroll Inlet---------- oD 55 23 131 20] 13.0 15.4 6.0 
1226 | Nigeliue Point, Carroll inlot:---------- $534 131 22] 13.0 15.4 8.0 
Tongass Norrows 
1227 | KETCHIKAN: =: + +e cere rete reece eee $521 13139] 13:0 15.4 8.0 
W229 liWiordliGovedeeecrreercccclnylitierr 55 24 13144] 13.3 15.7 al 
Behm Conal 
W231 | Alava Bay-------- crete treet ree eeee $5 14 13108] 128 15.2 79 


( nde Heights are referred to mean lower low water, the datum of soundings on National Ocean Survey 
charts. 


Stations 995 to 1035: Use reference station Port Townsend (895). 
Stations 1181 to 1231: Use reference station Ketchikan (1227). 


QV 


Behm Conal 


1233 | Smeaton Boy (Wilson Arm)-*--*sss77** $522 130 38 
1235 | Shoalwoter Pass $526 130 55 
1236 | Vollenar Point----------- $526 131 SI 
1237 Rudyerd Bay SOCIO i i iin) 55 38 130 39 
1239 | Fitzgibbon Cove---:-*:*-ssss est reee $559 131 10 
1241 | Burroughs Boy:::::---7s sss 5602 131 06 
1243 | Bell Arm, Bell lsland--------:s7*7*°": 55 58 131 31 
1245 | Convenient Cove, Hassler Island:-::::: §5 52. 13) 4) 
1247 | Yes, Veo Boy $555 31 47 
1249 Shrimp Boy we cc cece cee sence sess eseees $5 S| 131 28 
125) | Traitors Cove (lower section)::-"**-*** 5543 131 40 
1253 | Troitors Cove (inside narrows):---***-- $5 44 131 37 
1255 | Loring, Noho Boy---*--*-**" 7s" 7" 553% 131 38 
Clorence Strait 
1257 | Tamgos Horbor, Annette Island:------: 55 04 131 33 
1259 | Ingrahom Bay, Prince of Woles Island:- 5459 132 00 
1261 | Menefee Anch., Prince of Wales Island: - 5502 13201 
1263 | Niblack Anchorage, Moira Sound::::--- $504 132 07 
1265 | Metlokatlo, Port Chester:::::**----**- 55 08 131 34 
1267 | Nehento Boy, Grovino Island:------ Pies 55 10 131 48 
1269 | Lancaster Cove, Cholmondeley Sound:- 55 13. 132 06 
1270 | Divide Head, Cholmondeley Sound:-:-- 55 15 132 18 
Kascaon Bay 
1271 Entronc ents iileheleleictsl hicks 55 24 132 10 
1273 Saltery Cove, Skowl Arm:--:--°-"°> 5524 132 19 
1274 Polk Inlet (south end)----------° 7° 55 22 132 29 
1275 Menacnepsoachbobadocanooopsnpooc 55 32 132 24 
1277 Karta (Bayete isle inicio 5534 132 35 
1279 Hollis Anchorage **-""*** "77" 77" $529 132 39 
1281 | Hodley, Lymon Anchorage:-**°***-"--* 55 32 132 17 
1283 | Union Boy, Ernest Sound------->-*"-" $545 132 12 
1285 | Dewey Anchorage, Etolin Islond:------- 5555 132 22 
1287 | Ratz Harbor, Prince of Wales Islond---- $553 132% 
USO PLSCIICPEL C178 F032 GO ORES CEO AL $601 132 55 
1290 | Tkorne Islond, Whole Possoge 56 04 132 58 
1291 | Exchange Cove-----***s sect t trent 5612 133 04 
1293 | Steamer Boy, Etolin Island:---------- 5609 132 41 
1295 | Olive Cove, Zimovio Strait---------"--- 56 11 132 19 
1297 | Bloke Island, Bradfield Canal---------- $613 131 55 
1299 | Wrongell, Wrangell Island-------------- 56 28 132 23 
1301 | Stikine River entr., Point Rothsay------ $635 132 22 
' 
13903 | Minnie Boy-:--: s+ sees tet eeeee $443 132 18 
1905 | Tah Bay: -ccreec ccc etter eee 8450 132 20 
1307 | Hunter Boy: ses sett 5452 132 19 
1309 | Kasso Inlet entrance $456 1323) 
Wt Elbow Bay See cy 54 54 132 39 
1313 | Mobel Island------<*- ss sree reer $500 132 36 
1315 | Keete Island, Nutkwo Inlets------------ §5 03 132 35 
1317 | Keete Inlet: :- +s ee teeter eee 6505 132 29 
Herta Inlet 
1319 Mud Boy ence cee ee eee ete eee 55 05 132 38 
1321 Copper Horbor------+-+--+ +++ $513 132 37 
1323 Sulzer Pe 65 17 132 37 
Keigani Strat 
1325 Kalgoni Horbor:::-----:- +7 +--+ $445 132 43 
1327 American Boy::::::- cts c tte $451. 132 50 
Tlevok Strom 4 
1329 Rose Inlot---- oot ts 5457 132 59 
1331 Kasook Inlet, Sukkwan Island::---- §5 Ol 132 47 
1333 McFarland lslonds--------:-°7+ 7° $504 132 56 
1335 View Cove Ce ee §5 05 133 (o}] 
1337 South Poss, Sukkwon Strait-:----- $5 10 132 52 
Cordova Bay 
1339 Saltery Point--:---ss strc ee 8511 132 48 
1340 North Pass, West End-----------:- $512 132 56 
1341 Natalia Point:-:: sess ser eters 6514 13303 
1343 Soda Bay::: +: strter terse eters 6516 132 58 
1345 Tlevok Narrows: -::cssctt testes 55 16 133 07 


Stations 1233 to 1301: 
Stations 1303 to 1345: 


Use reference station 
Use reference station 


373 


13.2 15.6 6.1 
13.2 156] 6.1 
129 15.3 79 
13.3 15.7 61 
134 615.8 8.2 
134 15.8 83 
136 15.9 6.3 
134 15.7 6.2 
13.3 15.7 6! 
135 1591 62 
135 158 6.1 
130129 63 
134 «15.7 6.2 
128 15.0 7.8 
12.0 144 75 
122 144 75 
122 146 76 
123 147 76 
123 147 77 
127 15) 79 
127 15.1 79 
130 15.2 79 
129 153 80 
13.2 15.6 81 
130 15.4 80 
136 158 62 
13.1 156 6! 
136 15.8 82 
at 165 86 
137 159 82 
137 160] 82 
136 159 82 
13.2 15.6 a! 
1127 15.0 77 
140 ‘163 04 
142 166 86 
14.2 16.5 65 
133 15.7 82 
We 139 73 
' 
10.3 12.7 66 
10.2 125 66 
10.3 12.7 66 
102 125 66 
102 126 66 
104 128 67 
104 128 67 
105 129 67 
104 128 67 
104 128 67 
105 = 12.9 67 
98 19 64 
10.2 124 65 
10.5 12.6 6.6 
105 126 66 
10.3 12.4 66 
105 12.7 66 
105 129 68 
105 129 68 
10.6 13.0 68 
105 129 68 
106 13.0 68 
93 «IN7 62 


Ketchikan (1227). 
Sitka (1539). 


Dall Island, west coast 


Cape Muron (see No. 1181)---::----:- 


1349 | Security Coves-::-s7:se terete tte 10.8 57 
1351 | Forrester Island-::::::ssrtsssr sce eee 10.7 5.6 
1353 | Gooseneck Harbor------s+-sssss sce eee 10.7 5.6 
1355 | Sokie Bay-:::-:ssees sete eee e eens 10.3 5.4 
1357 | Sea Otter Harbor--:-----ssr steers 97 $.1 
Meares Passage to Davidson Inlet 
Meores Passage 
1359 Diver Islands-----sssrs erste ttre 98 5.1 
136) Eagle Point-:-::s2ses ss eeeeeee ees 10.3 52 
1363 Meores Islond, south side---::--:: 10.6 5.5 
Ullea Chonnel! 
1365 Ulloa slam deci tistltetreler-lcrrei-r: 10.7 55 
1367 Waterfall Cannery::---:---++ + 7° -- 10.2 5.3 
1369 Cope Flores:::ss:ssser terete tees 97 5.1 
Bucareli Bay 
1371 Port Santo Cruz, Suemer Island: :-- 99 §.2 
1373 Diamond Point::::*ssssss secs 99 $.2 
1375 Craigs: sere ieee eee nena ees 10.0 $2 
1377 Cruz Pass, San Fernando Island:--- 10.1 5.2 
Gulf of Esquibel! 
1379 Steamboat Bay, Noyes Island::-:--: 10.1 5.3 
1381 Anguilla Island:-------- -- Sarees 10.3 54 
1383 Worm Chuck Inlet, Tonowek Bay: :- 10.2 5.3 
Davidson Inlet 
1385 Port Alice, Heceta Island-:------:: 10.8 5.7 
1387 Korheen, Sea Otter Sound::::--::: 10.6 5.5 
1389 Tuxekan Passage (south end):---:: 10.8 5.6 
1391 Tuzekan, 0.5 mile south of:------- 10.9 56 
1393 Tuxekan Passage (north end):----- 10.8 5.6 
1395 El Capitan Island:::---------ceee: 10.8 $.6 
1397 Cyrus Cove, Sea Otter Sound:-:---- 10.9 5.8 
1399 Marble Passage':--*-------" "7° °° 10.9 5.8 
1401 Marble Island: -----------s7-+ se: 10.7 5.6 
1403 Holbrook. Kosciusko Island-------- 10.8 5.6 
1405 Edno Boy-:: sos tt teeter ete 10.8 $7 
Sumner Strait 
1407 Coronation Island: --sccsc crt 10.7 54 
1409 | Pole Anchorage, Kosciusko Island----:- 1.46 5.9 
1411 | Port McArthur, Kuiu Island::----:--": 10.6 $$ 
1413 | Kell Boy, Affleck Canol, Kuiv lsland:-:: 1.2 5.9 
1414 | Point St. Albono-::---s street Ue} $9 
1415 | Shakon Boy Entrance::*7:775 187" WwW? 62 
1417 | Shobtan, Kosciusko Island-:--'""***"": W7 6.2 
1419 | El Capitan Passage::-:--°"*** 7°" ** 10.8 $.6 
1421 | Port Beauclerc, Kuiv leland:-**--"--* We 62 
1422 | Port Protection, Prince of Wales Island: 12.4 6.4 
1423 Reid Bay seer ree tree ewer eres ereeeee 12.4 6.5 
1424 | Sumner Island-: oe 12.6 66 
1425 | Red Bay, Prince of Wales loland:::-::: 14.6 76 
1426 | Level Islands: sett ttt 15.0 7.8 
1427 | Butterworth Island. Duncan Canal:-::: 18.3 8.0 
1428 | Duncan Canal, Kupreanot Island::::::: 15.2 78 
1429 | Grief Inland, Duncon Conol::::-:::::: 15.4 8.0 
1430 | Castle Islands, Duncan Canal:::::::::: 15.5 8.0 
1431 | St.John Harbor, Zarembo Island::::::: 14.6 7.6 
1432 Greys A 15.6 6.1 
Wrangell Narrows 
1433 | Point Lockwood, Woewodski Islond:-::- $633 132 58] 13.1 15.7 6.1 
1435 | Finger Point, Lindenberg Peninsula: :- 56 41 132 57] 14.2 16.7 8.6 
1436 Anchor Point:'s cess tt ttt ttt 56 38 132 56| 13.6 16.0 6.3 
1437 Petersburg: - ooo oot 56 49 132 57| 13.4 15.7 6.1 


Stations 1349 to 1424: Use reference station Sitka (1539). 
Stations 1425 to 1437: Use reference station Ketchikan (1227). 


374 


Keku Stroit 


1439 | Monte Carlo Islond:-------:s-ssse07> $632 133 46 | 103 12.5 66 
1441 | Seclusion Harbor, Kuiu Island---:----- 5633 133 52] 102 12.3 64 
0%) 1) Cogs fii kooosooo cpap casos oaonaoun 5639 133 43] 11.5 13.8 7A 
1445 | The Summit---*-- ss osc ccc 564) 133 44} 13.2 15.7 82 
1447 | Entrance Island----*-*-*ss scott 5649 133 47] 12.3 14.7 7.6 
1449 | Port Camden, Kuiu Islond-:----*---°- 56 44 133 55} 11.5 13.9 7.2 
1450 | Hamilton Boy, Kupreonot Island:--->-- 56 55 133 50] 11.4 13.8 72 
VEDA CSLOSodcOm GORI no COBB Oras 5658 133 56| 11.7 140 7.3 


VAS 2D yiS trait m stmt initia ol 5637 132 34] 135 16.1 63 
1453 | Cosmos Point-------- scott $640 13237] 131 15.6 68.1 
1454 | Ideal Cove, Mitkof Island:-------:-°: $640 13238] 135 16.1 83 
1455) Brown Covel iil oll iii abies leer $653 132 48 | 135 15.8 6.2 
1457. | aVhomas) Boy ently ti =)=)=122=1> 5700 132 47] 13.0 154 8.0 
1459 | Portage Bay, Kupreanot Island:---:--- 5700 133 19} 13.0 15.5 6.1 
1461 | Cleveland Passage, Whitney Island:::-- 5713. 133 30] 126 15.0 78 
1463 | Pybus Boy, Admiralty Island:--------- 57 18 134 06 | 119 143 74 
1465 | Eliza Horbor, Liesno: Island----------- 5710 13417] 119 143 74 
1467 | Saginaw Boy, Kuw Island:------------ 56 54 134 18 | 116 140 7.3 


Stephens Passage 


1469 | Port Houghton, Robert Islands-------- 57 18 133 28} 13.0 15.4 8.0 
1471 Hobart Boy)-st: ot Nieia = ink hsp ones rcter 57 24 133 25 | 12.7 15.1 78 
1473 | Good Island, Gambier Boy:----------- 57 29 133 $4] 124 14.8 7.7 
1475 | Windham Bay:-----*cc tcc 5733 133 3| 127 15.1 7.8 
1477 | Rasp Ledge, Seymour Coanol----------- 57 41 134 02] 12.9 15.6 62 
1479 | Windtoll Horbor, Seymour Canal:----:- 57 52 134 16] 13.5 16.0 6.3 
1481 | Holkham Boy, Wood Spit----::-:-----: 57 43. 133.35 | 13.0 15.4 8.0 
1483 | Port Snettisham, Point Styleman:---- 57 58 133 53 | 13.4 15.8 6.2 
1485 | Voku Harbor----- 2-227" e eee $804 13401] 13.1 15.5 60 
1486: | Greely Point, Tokyu Inlet--------------- 58 13 134 04 | 13.2 1$.7 8.1 
1487 | Taku Point, Toku Inlet----------*°-*: 58 24 13401] 141 16.7 6.6 
1489 | JUNEAU:+--- eee eee 58 18 13425| 138 16.4 85 
1491 | Fritz Cove, Douglos Island::--:------:- 58 19 134 36] 13.5 15.9 8.2 
VA928 WAU ken Bo yore techs thin cision ec: $823. 13439] 13.3 15.9 82 
Lynn Canal 
1493 | Funter, Funter Boy------ scoot $815 134 54] 12.6 15.1 7.9 
1495 | Barlow Cove, Manstield Peninsula’:::-- 5820 13453] 129 15.0 7.8 
1497 | William Henry Bay--**s sss 5843 135 14] 13.2 15.7 82 
1499 | Pyramid Harbor, Chilkot inlet--------- 59 11 135 28} 13.9 16.3 8.3 
1501 | Haines, Chilkoot Imlet::*------s-77"°> 59 14 135 26] 142 16.8 87 
1503 | Skogwoy, Taiyo Inlet(10)------- +--+": 59 27. 135 19 |} 16.) 16.7 8.7 
Chathom Strait 
1505 | Port Alexander, Baranof Island:-----:- 5615 134 39 9.0 4 6.0 
1507 | Port Conclusion, Baranof Island:------ 56 15 134 40 9.0 11.4 60 
1509 | Port Walter, Baranof Island:------*-:: 56 23 134 40 9.1 11.5 6.0 
1511 | Table Bay, Kuiu Island:--:-+-:------: $610 134 15 6.8 aL 5.8 
1513 | Port Malmesbury, Kuiu Island-:----:-: 56 18 134 14 88 11.2 59 
1515 | Tebenkof Bay, Kuiu Island-+-:-----::- $625 134 08 9.4 11.8 62 
US50G |) Goch Gia Bayyeceosceccusonoou0ceGKS $651 13443] 10.2 12.7 67 
1517 | Security Bay, Kuiu Island--++------::- 56 5) 134 21 Wl 13.6 7. 
Goochatid? Somme) BORD Se | | 
1518 | Baranof, Warm Spring Boy:::-*----- °° 5705 134 50} 11.0 13.4 7.0 
1519 | Whitewater Bay, Admiralty Island------ 57 14 134 36 | 11.4 13.9 7.6 
DSP || Recon: Cpe canoe sac0nos0s99900R0nD00 ‘| $713 13452] Ile 13.8 7.2 
1523 | Point Thatcher::---- occ e ete t eee eeeee $725 13451| 116 142] 7.6 
Peril Strait (see below)------*---*7*"- So Selo o See] es 
DE¥2) || Celhanag= ooo 500 co oonaDoGDDQDGGHDONS 57 28 134 34) 11.6 14.1 7.4 
Kootsnahoo Inlet 
1527 Favorite Bay-*:--s-s otto 57 29 13433} 106 13.0 7.2 
1529 Mitchell Bay------essess cert 57 32 134 24 9.2 11.0 5.6 
1531 | Freshwoter Bay, Chichagof Island:----- 5751 13501 | 119 14.4 78 
ey Scio | asboooasocae SSeS a FSS ik So a SS 
1532 | Tenakee Springs, Tenakee Inlet------- 57 47 135 13 | 12.3 14.7 7.7 


(10) For 135th meridian time subtract one hour from the differences for Skagway. 


Stations 1439 to 1451: Use reference station Ketchikan (1227). 
Stations 1452 to 1503 and 1518 to 1532: 

Use reference station Juneau (1489). 

Stations 1505 to 1517: Use reference station Sitka (1539). 


SID 


Baranof Island, west coast 


1533 | Cape Ommaney:-::---+------eee sees 

1535 | Port Banks, Whale Bay:----------+-:> 
Sitka Sound 

1537 Symonds Bay, Biorka Island:--::-- 

1539 CHhils(\eesanotronnpootboossoonbo0dcd. 

1541 Dog Point, Lisionski Peninsula--:-:- 

1543 Olga Point, Olga Strait:---+---+---> 
Kruzof Island 

1545 Shoals Point--------+-++---5+e0e: 

1547 GilmenliBoyerre cece rere cece 
Neva Strait 

1549 Whitestone Narrows: ------+---+--- 

155) Zeal Poin triste eelreiteciiaeren ier 


Salisbury Sound and Peril Strait 


1553 | Klokachef Island:--:----+-:-+++-++-:- 
1555 | Scraggy Point--------+-++-seeee seers 
1557 | Kakul Narrows:::::----:-*:> Sndscooos 
1559 | Haley Anchorage, Fish Bay--::-+------ 
1561 | Serguis Norrows:-----+-stsseseeceeee 
1563 Bear Boy: se er reer rete teens 
1565 | Povorotni Island, Pogibshi Point------- 
1567 Nismeni Cove::::: ss tects steer ce eee 
1569 lFPointhelivabethaeneecriccereiaanerie 
1471 Lindenburg Head: --- 2s sees esc ee ence 
1573 | Fairway Island::-+--sssees se eee eee eee 


Chichagof Island, west coast 


1875 | Falcon Arm, Slocum Arm:-----+-----+> 
1577 | Elbow Passage, Klag Bay-------------- 
1579 | Kimshan Cove, Ogden Passage::--:----- 
158) | Dey Pass. Hill Island---+----++-eeeeeee 
Lisionski Strait? ond Inlet 
1$83 Canoe Cove, North Poss 
1585 Stag Boy-ssstrss este eee ee 000 
1587 IMineritslandecerieciritecccieicisisteieiesie 
Yokobi Islond, outer coast 
1589 Tokonis Bay: ss: sss te err e eee eeee 
1591 Surge Baysssss sss street eee e eens 
Cross Sound 
1893 | Cape Binghom:::--+--0sssseeee ee eeee 
WS9SHilhGapemSpence recbeieiccieeiecir citer 
ISPAeliGranifenGove tect ciierrien iri 
1599 | Port Althorp:- +: ss este ete cece ees ° 
160) | Inian Cove, North Inian Pass-+::-+---: 
1603 | Point Lavinia, South Inian Pass:--::::- 
Icy Strait 
1605 ildohow Inlet iiiireieilrletctstelerstercielel-tete es 
1607 | Lemesurier I. Light, North Passoge:---- 
1609 | Mud Bay, Goose Island::::----++++-++: 
1611 | Point Adolphus-:-- ++: secretes seeees 
1613 | Flynn Coves::: 2:2: etc e cece cece c ees 
161S5e We xcursionninletctecsccieciccceir nee 
1617 | Hoonah Horbor, Port Frederick::+--:-- 
TelORNESwonsanktarborcucurten 
Glacier Bay 
1621 BartlettiCoveeirecece cern: 
1622 Willoughby Island: sss setter eee eaee 
1623 Mie (po0s0800 oboccocos0b000000 
1624 Composite Island::-----+++-++-+++ 
Gulf of Alaska 
1625 Graves Harbor:-:-- +++ esse tere eens 
1627 Dixon Horbor ss)s)\a)s\e\s\e\e/e/¢i9s( eel ue see sie 


1629 | Lituyo Bay, 
1631 | Dry Boy:-- 


2 miles inside entrance:::- 


1633 | Vokutat, Yokutot Bay::::-+-+:---+++-- 
1635 | ley Boys sss sere etree eee eee ee ee 
1637 | Wingham Island, Controller Boy-------- 


Stations 1533 
Use reference 


Stations 1565 
Use reference 


to 1563; 1575 to 1609; and 
station Sitka (1539). 


58 16 
58 23 
58 37 
59 10 
59 33 
$9 53 
60 03 


134 40 
134 59 


135 31 | 


135 20 


135 25 | 
135 32 


135 38 
135 50 


135 34 
135 36 


135 53 
135 43 
135 41 
435 37 
135 38 
135 35 


135 33 
135 25 
135 17 
135 02 
134 53 


135 56 
136 05 
136 06 
136 17 


136 25 
136 18 
136 20 


136 31 
136 32 


136 34 
136 40 
136 24 
136 21 
136 20 
136 21 


136 O9 
136 02 
136 02 
135 47 
135 35 
135 29 
135 28 
135 08 


135 53 
136 07 
136 07 
136 34 


136 41 
136 52 
137 37 
138 37 
139 44 
141 28 
144 24 


FO RLS /S Vand al6iile Eon M6240 
station Juneau (1489). 


376 


7.6 99 5.3 
7.7 99 5.3 
7.6 9.8 5.2 
7.7 99 $.3 
7.8 10.0 5.3 
7.7 99 5.3 
7.6 9.8 5.2 
8.0 10.5 $.5 
7.8 99 5.3 
8.0 10.1 5.4 
7.5 99 $.2 
7.5 9.8 $.2 
7.8 10.0 $.3 
7.8 10.1 5.4 
10.9 13.3 69 
W.2 13.6 7.2 
12.5 14.9 7.7 
12.5 15.0 77 
12.1 14.7 7.6 
U2 14.5 7.5 
11.6 14.2 7.4 
6.1 10.2 $.6 
8.4 10.7 $.7 
7.8 10.1 $.4 
7.9 10.2 |- 3.3 
7.9 10.1 $.2 
79 10.2 $.3 
8.) 10.4 5.5 
7.6 10.1 5.3 
7.5 99 5.1 
8.1 10.3 5.4 
6.1 10.3 5.5 
67 Iho 5.8 
86 10.9 5.8 
9.2 Ue) 6.0 
9.5 V9 6.) 
96 12.0 6.2 
10.2 12.6 66 
10.6 12.9 67 
12.0 14.5 7.5 


UGAS; je@) IL(3}7/ ¢ 


Copper River Delta 


1639 Kokinhenik Island(11)------------- O18 4595) -— —— | -—— 
1641 Pete Dahl Slough:--------+---++-- 6023 145 24 7.7 10.0 53 
1643 | Eyaok River entrance---**-*+-+-7- tee: 60 28 145 40 8.6 10.8 5.7 
1645 | Middleton Islond (north end)---------- 59 28 146 19 8.0 10.3 5.4 


Prince William Sound 


Orca Inlet 
1646 Shog Rock---++-2+0e0reeeeeee eens 6028 14559] 9.1 114] 60 
1647 Gravel Point---*-++tt terete rte eeee 60 28 145 58 10.0 123 65 
1649 CORDOVA +++ 222s eee ee ee eee eee eeee 6034 14545] 101 124] 64 
1651 Orca sec e cc cteerectessceecieess 6035 145 43 99 12.4 64 
1653 | Windy Boy, Howkins Islond----------- 6034 «145 58 9.6 12.1 6.3 
1654 | Comfort Cove, Port Gravina:-:::--:--- 6043 146 05 9.5 11.8 6.2 
Hinchinbrook Island 
1655 Johnstone Point-:-+-+--+--ssess: 60 29 «146 37 9.4 11.8 6.1 
1657 Port Etches=- <0 j0- si ---)-- 2 *2° 60 20 146 33 9.0 11.2 5.8 
Montague Isolnd 
1659 Patton) Bays emi ciieinsininiainsinie s+) 59 54 147 26 79 10.2 5.3 
1661 Macleod Harbor:---*-***-*sss7 7 5953 147 46 68 11.0 5.8 
1663 Hanning Bay'-s-*s sts ttt 59 57 147 41 9.2 15 6.0 
1665 Port Chalmers-------***-***ctct': 60 14 147 14 9.3 V1.7 6.1 
1666 | Gibbon Anchorage, Green Island-:::-:- 6016 147 26 9.5 1.5 6.1 
1667 | Latouche, Latouche Island-:-------::- 60 03 147 54 9.1 11.5 6.0 
1669 | Sawmill Bay, Evans Island:-:---::---- 6003 148 04 69 11.3 5.9 
1671 | Snug Harbor, Knight Island----------- 6014 147 43 94 V7 6.1 
1672 | Port Audrey, Knight Island:----------- 60 20 147 46 9.6 12.1 6.4 
1673 | Smith Island::--:-+sscssscrc sss 6032 147 19 9.4 11.8 6.1 
1675 | Sung Corner Cove, Port Fidalgo-------- 6044 146 39 9.5 12.0 6.2 
1676 | Landlocked Bay, Port Fidalgo:------:- 60 51 146 32 9.5 Wg 6.1 
Valdez Arm 
1677 Ellamar, Tatitlek Narrows 60 54 146 42 9.5 1g 62 
1678 Ly) LATS SS DG SOCO SS OC OCOOOD 60 57 146 46 9.6 12.1 63 
1679 WackwB ay sricsil-nialcniel-icielaiel-iniiiaiots 6102 146 38 9.6 12.1 63 
1681 VALDEZ, Port Valdez------+-----:- 6108 146 21 97 12.0 63 
1683 | Jackson Cove, Glacier Island----- 6053 +147 14 9.5 119 0.2 
1685 | Naked Island, McPherson Passage- 60 40 147 24 9.5 11.8 61 
1686 | Kings Bay, Port Nellie Juan------- a 6032 148 28 9.5 1g 6.2 
1687 | Culross Bay, Wells Passage-------:---: 60 44 148 11 97 12.1 63 
1688 | Long Bay Entrance, Culross Passage:--- 60 42 148 16 9.3 11.6 6.1 
1689 | Whittier, Passage Canal--------------- 60 47 148 40 9.8 12.3 64 
1690 | Applegate Island------+---::-++++-++ 6038 148 10 9.5 1g 6.2 
1691 | Eshamy Boy, Knight Island Passage--:- 60 27 147 59 97 12.1 64 
1693 | Chenega Island, Dangerous Passage:--- 60 20 148 O09 9.2 11.6 6.1 
1695 | Hogg Bay, Port Bainbridge------------ 60 04 148 12 8.3 10.6 5.5 
Kenai Peninsula, outer coast 
1697 | Day Harbor-:--------ss ests eres 60 Ol 149 03 8.2 10.5 5.5 
1699 | Seward, Resurrection Bay------------: 6006 149 27 8.3 10.5 5.4 
1701 | Camp Cove, Aialik Boy---------------- 59 42 149 45 8.4 10.7 5.5 
1703 | Two Arm Bay:-----:- 772222722 eee 59 40 150 06 87 11.0 57 
1705 | Chance Cove (Lagoon)::------:-----:- $9 29 150 19 87 11.0 5.7 
1707 .| Beauty Bay, Nuka Bay----:::------::: 59 31 150.38 9.1 4 5.9 
1709 | Nuka Passage:------7--7ssere sees: 5924 15040] 9.2 115 6.0 
W711 | Takoma Cove, Port Dick--:-----:--:-- 5915 15059} 98 12.1 6.3 
1713 | Picnic Harbor, Rocky Bay------------- 59 15 151 26 | 105 12.7 6.6 
Cook Inlet 
1715 | Ushaga? Island, Barren Islands:-------- 58 57 152 16 1.4 13.7 7.2 
1717 | Port Chathom:::--------ss--s esse ee 5913 151 44] 12.0 14.3 7.5 
W719 | Port Graham---------- +--+ se eres 59 21 151 50 | 144 16.5 8.6 
1721 | SELDOVIA, Kachemak Bay-----------:-: 59 26 151 43 15.4 17.6 9.3 
1722 | Homer, Kachemak Bay------:-:------:- 59 38 151 27 15.7 18.1 9.5 
1723 | Cape Ninmilchik:-------:+--e2se sree eee 60 Ol 151 43 | 16.5. 19.1 10.1 
1724 | Ninilchik-:::+s- 7s tsetse ttre eee eee 6003 151 40] 16.7 19.1 10.0 
1725 | Kenai River entrance----*---------::: 6033 «151 17 | 17.7 20.7 11.0 
1726 | Kenai City Pier---:--------+--:---::- 6033 151 14|{ 17.5 19.8 10.4 
1727 | NIKISHKA:------22220se sere cere e eens } 4041 15124] 17.7 204] 109 


(11) Because of shoals, low water at this place is restricted from falling below half tide love! outside 
the river entrance. 


Stations 1639 to 1713: Use reference station Cordova (1649). 
Stations 1715 to 1727: Use reference station Seldovia (1721). 


377 


Cook Inlet 
1728 | East Foreland--++---:sssses reer reese 60 43 151 25 | 18.0 21.0 1.2 
Ores |) lato Thor bo soocbsp dino ps o7Goso005 6110 150 12 | 24.4 27.0 14.2 
1731 | Sunrise, Turnagain Arm(12)-:--------- 6054 14926) 33 333 17.1 
1733 | ANCHORAGE, Knik Arm--+:-+*--:+s--5° 61 14 149 54 | 26.1 29.0 15.3 
1735 | Eklutmo, Knik Arm(13)---- sss esos 6128 #14922 }/-- rf 
1737 | North Forelond-------ss sects ttt: 6103 15110} 183 21.0 1.3 
1738 | Dritt River Terminal-*----*+-+-+++-°- 60 34 152 08 | 15.4 18.1 9.7 
1739 | Tuxedni Chonnel--------ssss str t tte 6009 152 38} 14.0 16.6 89 
1740 | Snug Horbor:-----ss sss: 6006 152 34} 13.2 15.7 8.3 
1741 | MWiomne Boy-ss: sss ct tts 59 37. 153 35 | 12.3 14.5 7.5 
1742 | Nordyke Islond, Kamishak Boy:------- 59 11 154 05 | 12.9 15.2 8.0 
Kodiok and Afognak Islands 

1743 | Andreon Bay, Shuyok Islond:--------- 58 31 152 25 | 9.0 1.3 59 
1745 | Perenoso Bay::*--*ssc test t tte: BY} 2) WEY? ¢2/ 9.0 11.3 59 
NY || Soc) Lappecasceadoc capone co ceboeconce §8)22) 15215 89 11.2 5.8 
D2 1) vont Loess sscobasodcccnacannnGoo00 58 19 152 04 89 11.2 5.8 
1751 | Marmot Island, Marmot Strait--------- 58 14 151 52 7.7 9.8 49 
02) | Deen Bopeceseodesocccagescsopogconn 58 13 152 19 69 8.9 45 
1755 | Kazakot Bay, Marmot Bay----:-------- 58 08 152 34 7.2 9.4 49 
1757 | Fox Boy, Whale Island---------------- 57 59 152 45 7.8 10.0 5.2 
1759 | Kizhuyok Boy------------ reser reese 57 49 86152 54 76 9.6 49 
1761 | Kizhuyak Point------:--++++-+2+-++--> 57 54 152 39 7.3 9.4 48 
1763 | Ouzinkie, Spruce Island--------------- $7 55 152 30 7.0 9.1 46 
1765 | Spruce Island (north side)------------ 57 56 152 26 7.1 9.2 47 
1767 | KODIAK, Kodiok Harbor--------------- 57 47 152 24 6.6 85 43 
1769 | St. Poul Harbor-------++---+-+-+---- 57 44 152 29 67 87 44 
1771 | Womens Bay-:-:-s ccc 57 43 152 31 68 88 45 
1773 | Ugok Bay (Saltery Cove)-------------- 57 29 152 44 66 8.4 43 
1775 | Port Hobron, Sitkalidak Island-------- 57 10 153 09 6.4 8.3 44 
1777 | Three Saints Bay:-::---*- esse eet ee 57 07 153 3) 6.5 8.3 44 
(AD 1 dcp Goyecseososc° canoe poscocedoonen 96 58 «153 42] 64 8.2 44 
1780 | Sitkinak Lagoon: :-**ss sess strstr eee 56 30 154 08 5.6 7.5 4.1 
1781 | Lazy Boy, Alitok Bay-::**--:-+---+--- 56 54 15415 9.3 VW7 6.2 
1783 | Moser Boy (Trap Point)-------------- 5700 15409] 93 11.6 6.2 
1785 | Olga Bay (A. P. A. Cannery):---------: 57 10 154 14 1.0 14 0.6 

Uyok Bay 
1787 ()7-| JODO DOO OOD OC OOO GOOG Orn 57 38 15400) 11.3 13.8 7.3 
1789 Loco Dicyeene2coeconc05 00000000 57 32. 154 00} 11.2 13.7 7.2 
1791 Mining Camp:---:-- 7777s secret: 57 28 153 49] 115 13.9 7.3 
1793 Bodnar Croyponeesus000cc0ocaD0p00 5733 153 44] 11.3 13.8 7.3 

Ugonik Bay 
1795 Villagentsland sci ecr ie ioe 57 47 153 33 | 11.7 14.4 7.5 
1797 Northeast Arm------- sc csc ttre 57 44 153 20 | 11.4 13.9 7.3 
1799 Ugonik Passage-----°------------ $7 48 153 18] 119 146 7.6 
1BOl | Viekoda Bay:---*---- scr ttc r cs 57 54 153 10 | 11.8 14.4 7.6 

Kupreonof Strait 
1803 Onioni Ba yee tires er 58 03 153 14] 11.8 14.4 7.6 
1805 Dry Spruce Island---------------> 57 57 153 02 | 11.4 13.9 7.4 
1807 Noachains Island: ----- +--+ seer tcc 57 59 152 56 | 11.2 13.6 7.2 
1809 Uzkostin Poin teicher erin tiki te 57 56 152 49 8.8 11.6 6.2 
1811 | Dolphin Foint, Raspberry Stroit------- 58 07 153 09 | 11.5 14.0 7.3 
1813 | Malina Bay, Shelikof Strait-----------: 58 II 152 57 | 12.0 14.5 77 
1815 | Redfox Bay, Shuyak Strait------------ 58 27 152 36 | 11.3 13.7 7.2 

i) i) iy 

Kodiak and Afognak Islunds 
Shuyak Island 
1817 Ley Doggone ooo oncngscanogabaoupRGe $833 15237] 11.5 13.9 7.3 
1819 Carry Inlet: 0st ete e teens 5835 15231 | 10.7 13.1 69 
Alaska Peniniwla 

1821 | Kukak, Kukak Bay:*::-*:ss ssc es eres $820 15407] I1I.I 13.3 69 
1823 | Katmai Bay, Shelikof Strait--:-----+-- 58 00 154 59 10.5 12.8 6.6 
US3, || sco Doesesoconsnagoocnog0oadoceod 57 42 155 23 9.8 12.1 6.4 


(12) A bore frequently occurs in Turnagain Arm just after low water. Under favorable conditions it 
is said to reach a height of 6 feet. 


(13) Because of the shoal condition of the upper part of Knik Arm, the channel off Ekluina becomes 


practically a nontidal stream during the period when the height of the tide at Anchorage is less 
thon 15 feet above mean lower low water. 


Stations) 1/28) 3/3) sto) by 42 sand 1/ 8i/ eo) 82.5): 

Use reference station Seldovia (1721). 

Stations 1729 to 1735: Use reference station Anchorage (1733). 
Stations 1743 to 1785: Use reference station Kodiak (1767). 


378 


Alosko 


Penniwle 


1827 | Kanatak Lagoon, Portage Boy::----::: 
1829 | Lees Cabins, Wide Boy:::::::---:--::> 


1831 | Anchorage Bay-- 
1833 | Three Star Point: 


1835 | Chiachi Island (east side)::*-:-:::::: 


1837 | Kupreanof Harbor, 


Paul Island-:--:-::- 


1839 | Fox Bay, Kupreanol Peninsula:--:----: 
1841 Dent Point, Stepovak Bay:----------:: 
Shumagin Islands 
1843 Korovin Island (east side)-----**:- 
1845 Sanborn Harbor, Nagai Island::---- 
1847 Mist Harbor, Nagai Island:--:::--- 
1649 Pirate Cove, Popot Island:-------- 
1851 Sand Point, Popof Island:--:-- 90 
1853 Zachary Bay, Unga Island:--------- 


1855 | Albatross Anchorage, Balboa Bay 


1857 | Beaver Bay---:-- 
1859 | Seal Cape, Coal 
1861 | Ukolnoi Island:-- 
1863 | Dolgoi Harbor, Do 
1865 | Settlement Point, 


Bay 


Igoi Island 
Paviof Bay 


1867 | Canoe Bay, Paviof Bay::-:-----------: 


1869 | King Cove------- 


1871 | Lenard Harbor, Cold Bay-:--:--+-:--:: 


1873 | Cold Bay-------- 


1875 || Morzhovoi Bay-------20- +: seers 
Sonak Islands 
1877 Peterson Bay-------:-:90- 7+ sees 
1879 Sonak Harbor:------------------- 
Aleution Islands 
Unimak Islond 
1881 Dora Harbor----cr sete t ttt eeeee 
1aa2 (ano. Licpposbocso0cssec006005000 
1885 False Pass, Isanotski Strait-------- 
1887 St. Catherine Cove:::--:+-++++:-:- 
1889 Cope Mordvinol-:::+::ssseeeeeeee 
1891 Cape Sarichef:::+:::++2e+-ee cree 
1893 Scotch Cap-s::osc steers eee cees 


1895 | Tigalda Bay, Tigol 


daulslandseeccces 


1897 | Trident Bay, Akun Island:----------:- 


1899 | Akun Bay, Akun | 


sland idea cileriecisis: 


1901 | Akutan Harbor, Akutan Island-:-::+--- 


1903 | Malga Bay, Unalg 
Unolaska Island 


o Island::::-+--+++--- 


1905 English Bay::---ssr seer reece 
1907 OUTCH HARBOR, Amaknak Island:--- 
1909 Unoloskaseriss: emiicciinm cits leis « 
oil Anderson Boy: -' sss sss ester eee 
1913 Bian Qoyyeos s0oo0nc0cnscc00n0000 
1915 Kashegon@ay sess ek rice 
1917 Chernolski Horbor::-++-sseeeeeees 
1919 Kulillek Bays erect cette 
1921 GocfniCeieecasosovbnocbbcosebeoo 
1923 RoveniBoy-caccacet nce 
1925 UsetiBarsecer eee ieee 
1927 Udamot Boy, Sedanke Island------- 
1929 Udegok Straits ss sete ete e eee eens 
1931 Kisselen Bay, Beover inlet--------- 
1933 | Bogoslof Island: :--c + sss seeeee eee e es 
Umnak Island 
1935 Otter Point: ::: 2s: eset eee eeneee 
1937 Inonudok Bay:::-:::s-seeeee teens 
1939 GCG: Lepeeadgovedco000cdHaeenada 
1941 Adugok Islands: -:-: eect eeccceees 
1943 CopeiSagoketece eee 
1945 Driftwood Boys eee etter eee eee 
1947 Kigul Islond-----:--see esse esse eee 
1949 | Applegate Cove, Chuginadak Islond--:-- 
1951 | Herbert Island, west side:---::::----- 
Yuneska Island 
1953 East Cover: 2 ect t cece cecenes 
1955 North side: : sss sss eee eee e cence 


1957 | Amukta Island, no 


Stations 1827 to 1883: 
Stations 1885 to 1957: 


rth Bide ss steers 


Use reference station 
Use reference station 


379 


SESELELLAE Le 
SBESQIREFl[s BS 


156 04 
156 18 
158 24 
159 10 
159 06 
159 21 
159 37 
159 53 


160 09 
159 59 
159 51 
160 22 
160 30 
160 37 
160 37 
160 50 
161 20 
161 32 
161 48 
161 28 
161 16 
162 19 
162 23 
162 42 
162 58 


162 38 
162 49 


163 16 
163 19 


163 24 
163 30 
164 28 
164 55 
164 44 
164 59 
165 32 
165 32 
165 48 
166 10 


166 15 
166 32 
166 32 
166 50 
167 03 
167 05 
167 32 
167 O1 
166 56 
166 52 
166 48 
166 13 
166 18 
166 34 
168 02 


167 51 
168 2! 
168 50 
169 10 


169 03 | 


168 43 
168 26 


169 52 | 
170 09 | 


170 34 
170 42 
71 14 


3.2 $.0 3.1 
3.3 $.4 3.1 
1.8 3.3 19 
2.5 4) 2.1 
1.6 3.0 V9 
2.4 3.9 2.5 
1.8 3.3 2.0 
1.8 3.0 1.8 
2.2 3.7 2.3 
2.2 3.7 2.3 
2.4 40 2.5 
2.3 4.0 2.4 


7 
3.9 6.1 3.3 
3.3 $.1 2.9 
3.5 5.5 29 
3.5 $.2 3.0 
2.4 3.9 2.5 


Kodiak (1767). 
Dutch Harbor (1907). 


Aleution Islands 


1959 | Finch Cove, Seguom Islandt:------"--° $223 172 24) - — 3.2 1.6 
Atko Island 
1960 Martin Harbor, Korovin Bayt::-::-: $214 17418} —- — 3.2 1.6 
1981 Nozan Boyt:::- soos c cc $212 IW} - - 3.3 1.6 
1962 Cope Utalug (4 miles west of)t----- $207 174 12}]- - 44 2.2 
1963 Atka Poss, east end?-------7ss7 7: 52 00 WW - 46 2.3 
1964 Sagchudok Islandt:-------++ss 50°: §202 17429 |—- — 46 2.3 
1965 Explorer Bayt------sc ccc tt ttt 52 04 74Mi- 46 2.3 
1966 Bechevin Bayt------ssott ttt $202 17507 |- - 3.5 7 
1967 | Fenimore Paosst----" oss t ccc $158 178 35} - — 3.3 1.6 
1969 | Bugle Point, Great Sitkin Islandt------ $202 17559 }- - 3.3 16 
1971 | Sand Bay. Great Sitkin Island?-------- 5158 17605/—- — 3.6 1.8 
1973 | Tonager Point. Chugul Island?--------- $157 175 S2}- - 37 9 
1975 | Chisak Bay, Little Tonago lelandt- . 5148 17608 }—- — 3.3 V7 
1977 | Cemetery Point, Kagolosko Islondt:---- 5149 176 16}—- — 3.4 7 
1979 | Laska Cove, Kegalaske Islond?--------- $150 176 24}- - 3.6 1.8 
Adak Island 
1981 Clom Legoon. Kuluk Boy?-------"-- $156 176 36}- — 2.9 14 
1983 SWEEPER COVE, Kuluk Boy?-------- $151 17639} —- — 3.7 1.8 
1985 Finger Boy. Kuluk Bay?--------"-- 5150 17637 }- - 3.7 1.8 
1987 Adak Bight?------:-:-""- O900 5146 176 26}- — 3.7 1.6 
1989 Boot Boyt---ssssetcrrt 6143 17632)—- — 36 18 
1991 Bay of Woterfallst------*--7"7°7"* $139 176 S0},- —- 3.5 7 
1993, Three Arm Bayf----s-ssc ct $145 17651 }- - 3.7 1.8 
1995 Unalga Bight?------sssserrrr re $147 176 48) - - 3.6 18 
1997 Andrew Boy? ----- sot 5159 17638} - — 3.6 18 
Konaga Island 
1999 Shoal Pointf---s:s sss $152 177 04} - — 3.2 1.6 
2001 Cape Chlanok?--------sssts rrr $143 17709} — - 3.4 V7 
2003 Konogo Boy? cee cree eee cece eres $1 43 W7A2t-- 3.9 19 
2005 Cope Chunutt:--:sssssrrrrrcrrests 5140 17738)- - 4. 20 
Tanogo Island 
2007 Gusty Boyf---- sot $152 177 S4)- - 3.3 1.6 
2009 Hot Springs Boyt: -----s-s7s7 7 $147 177 48)- - 3.1 S$ 
2011 Tonago Boyt: ** sss 5143 178 00|/- — 40 2.0 
2013 Losh Bavf----7 oss 5140 17803 |- - 42 2.1 
Delorof Islonds 
2015 Ogliuge Island (east coost)t:-----:- $136 17837 |- - 3.5 7 
2017 Gareloi Islandt--------ssssctt $145 178 48|- = 3.7 1.8 
2019 Ulak Islandt::-:+sscrccc sc $122 17859|- - 3.8 19 
Rot tslonds 
2021 South Bight. Amchitka Island?::::- $123 18037 }- - 3.5 1.7 
2023 Constantine Harbor. Amchitka If: -- $125 10043 |- - 2.8 1.4 
2025 Gertrude Cove. Kiska Island?:----- $156 18233 |- - 3.2 1.6 
2027 Kisko Harbor. Kiska Islandt:-:---- $159 162 27|- - 3.6 1.6 
2029 | Alcan Harbor. Shemyo Islandt::::::::- $244 1865 S6|—- — 3.4 1.7 
2031 | Otkriti Boy. Agoattu Island?:--------°> $223 1866 22|—- — 3.4 1.7 
Attu Islond 
2033 MASSACRE BAYT: ss sess $250 186 48|— — 3.3 1.6 
2035 Chichagof Horbort------°--"°* on $256 186 46|]—- — 3.6 1.6 
2037 Holtz Boyf------ sts 5256 186 50|—- — 3.7 1.6 
2039 Steller Covet::::sssss oct §259 187 06|—- — 37 1.8 
2041 Etienne Bay? sso sect $256 1867 23|—- — 3.7 1.6 
Bristol Bay 
2043 | Amak Island-::-*--77s strc 5525 16307} 5.2 77 47 
2045 | Geant Point. Izembek Lagoon'::''::': $516 16254} 3.2 45 2.6 
2047 | Port Moller (Entrance Point):----°*--"- 5559 16034] 7.6 10.8 6.2 
2048 | Port Heiden---*--sss sss t tt 5656 158 44 65 12.3 69 
Egegik River 
2049 Entrance:::-ssoostts rr 5814 15730] 13.8 18.2 9.4 
2051 BOOGfIzo 0° spb onan otocnHaoOaGoD0RO 5813 157 22] 10.8 13.3 6.2 
2053 | Middle Bluff. Kvichak Boy'----"-"-""*: 58 27 157 30] 15.2 19.6 10.1 
Naknek River 
2055 Entrance(14)-:--esss secret 58 43 15703] 185 22.6 11.4 
2057 Morokas Points:-:scrc crt t 58 44 156 56} 15.1 17.8 6.4 
2059 Omakstalia Point::---- 7777s ttt 58 42 156 45 6.3 6.1 3.4 
2061 Naknek Air Bases: 7 soot t rt ts 5840 156 39 2.1 3.2 1.2 


t The tide at this place is chiefly diurnal. 


(14) No low water falls below —2 feet. 


Stations 1959 to 2027: Use reference station Sweeper Cove (1983). 
Stations 2029 to 2041: Use reference station Massacre Bay (2033). 
Stations 2043 to 2045: Use reference station Dutch Harbor (1907). 
Stations 2047 to 2061: Use reference station Nushagak Bay (2071). 


380 


Kvichak River 
2063 Nokeen: 2-22-0202 e sec eere eee eeees 5856 15702| 154 179] 84 
2065 Kvichak----- 20202 ree reece eee 5858 15657] 139 165] 7.8 
2067 Levelock=- = 2-205 r steerer eee 5907 15650] a2 103] 46 
Nushagok Bay 
2069 Protection Point::-*--*ste tc rrcree 58 30 158 42 12.7 16.9 88 
2071 NUSHAGAK BAY (Clarks Point):-:-- 58 51 158 33 | 15.3 19.5 10.1 
2073 Sror) Gaivieo.sos0 298 ocpcpnaasnoda 59 02 158 27) 15.9 19.8 10.0 
2075 Black Rock. Walrus Islands(15)----- 58 42 160 11 5.9 9.5 47 
Bering Sea 
2093 | Village Cove, St. Paul Island 5707 170 16 2.0 3.2 2.0 
2095 | St. Matthew Island: -----:sssssssssee 60 22 +172 43 1.3 2.1 1.2 
St. Lawrence Island 
2097 Northeast Capes sssss ttc 6317 168 44 19 2.4 it 
2099 Fossil River entrance:*:---*"* ne 63 28 170 02 1.3 17 0.8 
2101 Niyrakpak Lagoon entrance:- see 63 37 171 23 0.9 1.2 0.6 
2103 Moghoweyik River entrance:- oD 63 28 171 50 1.3 1.7 0.8 
2105 Poweoiliak Point::-*-*****"": fe 63 21 171 16 1.8 2.4 1.2 
2107 Moknik Lagoon entrance::*:-* 6307 169 25 15 9 09 
2109 | Tochikuga Boy, Nunivok Island:+--+--- 6004 167 14 3.1 43 2.3 
2110 | Kokechik Bay---:--**c ccs s BO9000 61 42 166 00 48 65 3.4 
2113 [ Cape Romonrof::::-s-- sss t ttt 6149 166 05 5.2 6.8 3.3 
2115 | Block, Block River:::--*ssssttrr tree 6220 165 19 3.8 $.0 2.5 
Norton Sound 
2117 Kwikluak Pass, Yukon River:::*:::- 62 37 164 51 1.4 2.3 08 
2119 Kowoanok Poss entrance, Yukon R--- 6302 164 28 5 2.7 09 
212) | Apoon Mouth, Yukon Riverf:-----°> 6303 16323 |—- — 40 2.0 
2123 Pikmiktolik River entroncet:-:*--> 6316 162 36)- — 42 2.1 
2125 Oy WKen VN s(Wfoos ossaacqocnoegonone 63 29 16210251 —s— 3.9 2.0 
2127 North Boy, Stvort Island? 63 37 162 30|- — 2.8 1.4 
2129 Carolyn Island. Golovnin Bayt-:::::- 64527 er 62i5 20) ba 18 09 
2131 (MISC PASOS I s00GHoNoSSOODDOD OOO 6430 165 24 1.0 1.6 0.9 
JISIeortauCclarence sect iii clicks 6513 166 28 1.2 1.4 0.7 
Arctic Ocean! 6) 
2135 | Kiwolik, Kotzebue Sound:-:----*--""-> 66 08 161 52 2.1 2.7 1.3 
2137 |/Point Barrow:-:--:-s 7s tc octet 7122 «156 22 | 0.3 0.4 0.2 
2139 | Floxman Island----:--***c sc ccc ttt 70 11 145 50 0.5 0.7 03 
2141 | Herschel Island, Mackenzie Bay:-----"- 69 34 138 55 0.6 0.7 5 
2143 | Tuktoyaktuk, Mackenzie Bay-------"-- 69 27 133 00 | it 1.2 13 


t The tide at this ploce is chiefly diurnal. 


(15) When the difference in height between lower high wurer ang higher low water at Nushagok Bay is 
less than 8 feet the corresponding tides at Black Rock should not be used os the tide ot Block Rock 
is then likely to be diurnal. 


(16) Along the Arctic coast of Alaska eost of Cape Lisburne the mean range is about % foot. 


Stations 2063 to 2075: Use reference station Nushagak Bay (2071). 
Stations 2093 to 2095 and 2131 to 2133: 

Use reference station Dutch Harbor (1907). 

Stations 2097 to 2101: Use reference station Nushagak Bay (2071). 
SEaAinions Zils c@ ZS) ema 23S eo DivAs)s 

Use reference station Kodiak (1767). 


Stations 2121 to 2129: Use reference station St. Michael (2125). 


381 


HAWAIIAN ISLANDS 


2145 | Midway Islands:---:++-+-ss sree eee eee 2813 «4177 22 0.8 1.2 0.6 
2147 | Lisionski Island--++--+stse eee eeeeee 2604 173 58 0.5 0.8 0.3 
2149 | Laysan Island-----+se-seee seers ee eee 2546 8171 45 0.7 lo 0.4 
2151 | East Island, French Frigate Shoals:-:-- 2347 «166 13 09 14 0.6 
2153 | Nonopapa, Niihau Island:--------+-:- 21 52 160 14 1.0 1.6 0.7 
Kavai Island 
2155 Waimea Bay:-----sss errr r seers 21 57 159 40 1.0 1.6 0.7 
2157 Port Allen, Hanapepe Bay--::::--- 2154 159 35 tl 7 0.7 
2159 Nowiliwili Baoysss- sess teeter eee 21 58 159 21 Vt 1.8 08 
2161 Hanamoulu Boy-:+--sssssss sees 2200 159 20 1.2 1.8 0.8 
2163 Hanolei Boy: -++-+----+--++-++e: 22:13 159 30 1.3 18 0.8 
Oohu Island 
2165 Holeiwo, Waialua Boyf-------::--::- 2136 15807} —- - 1.6 0.7 
2167 Woianae sss sss e ttre eee e eres 2127 «158 12 1.2 1.8 0.8 
2169 HONOLULU:-+------ essere eee e eee 21 18 157 52 1.2 9 0.8 
2171 Honaumoa Bay::++---- eres cress 2117 157 42 1.3 19 08 
2173 Waimanalo: rset eee 2120 157 42 Vt 1.8 0.8 
2174 Moku © Loe:-::22s 22s teste e reece 2126 157 48 1.2 2.0 1.0 
2175 Waikane, Kaneohe Bay:--:-:--:::- 2130 157 5) 1.4 2.2 LAL 
2177 Lore Bays esse ete eee 21 39 157 56 1.3 2.2 0.9 
Motakai Islond 
2179 ({ljuudesopodoboababobecoodeuunD 2106 15712 13 2.0 08 
2181 Kaunakakais:++ss-s ss eeee sees eee 21 05 157 02 1.4 2.1 09 
2183 Kamalo Harbor-----++-+ +++ eee 2103 156 53 14 2.1 09 
2185 Pukoo Harbor:-:-:---sseeee eee eee 2104 156 48 la 2.1 09 
2187 | Kaumolapou, Lanai Island::::::-::-:- 20 47 +=157 00 5 2.2 09 
Maui Island 
2189 Mohuluiss sss see cree eee e ee eee ee 2054 156 28 1.5 2.3 Vt 
2191 (Pageecshnubpoopsbidodposoonbope 2046 «155 59 1.8 25 ml 
2193 Makenaeiionatintcrcrerocne eee 2039 156 27 12 1.8 08 
2195 Kihei, Maolaea Bay-----+++-++++::- 20 47 156 28 1.6 2.3 1.0 
2197 Lahaina:--+++------2ss sere e ee eee 2053 (156 4) 1.4 2.2 1.0 
Kahoolowe Island 
2199 Kuheia Boy: sss sess eee eee eee 20 36 86156 36 5 2.1 0.9 
2201 Smuggler Cove::-:-:::ssreeeeeees 2031 156 4) 5 2.2 0.9 
Hawaii Island 
2203 Mahukona:- sss sees sete rete eee ee 20 11 155 54 1.4 2.1 0.9 
2205 Kawaihae::+-:- ss sees reese eee eee 2002 155 50 1.3 2.0 0.8 
2207 Kailua Kona:-:+-+-sss sees eee eeee 19 39 156 00 1.4 2.1 0.9 
2209 Napoopoo, Kealakekua Bay:-:----- 19 28 8155 55 1.4 2.1 09 
2211 Honuapo ss sss street eee eee 1905 155 33 7 2.5 UA 
2213 (‘‘Fiffecdacaconodoousosobsaneneese 19 44 15504 1.6 24 ml 
2215 | Johnston Atoll:------ ses secre eee eens 1645 169 3) 1.8 2.1 1.0 


1 The tide of this place is chiefly diurnal. See caution note on page 166. 


Stations 2145 to 2215: Use reference station Honolulu (2169). 


#U.S. GOVERNMENT PRINTING OFFICE: 1981 725-629 1-3 3 8 2 


“4