TECHNICAL PAPERS
Jul 1, 1996

Practical Modeling of Hurricane Surface Wind Fields

Publication: Journal of Waterway, Port, Coastal, and Ocean Engineering
Volume 122, Issue 4

Abstract

Approaches for recreating hurricane surface winds in relation to ocean wave, surge, and current modeling are reviewed. A discrete numerical wind field model, based on original developments at New York University in the early 1970s and used extensively by the U.S. Army Corps of Engineers (CE) and others, is described in detail. Limitations of the model are also discussed. The CE model for hurricane surface wind fields has been a very useful tool in ocean response (OR) modeling for more than a decade. Recently, several aspects of the model were upgraded, including increased spatial resolution and capabilities for simulating a wider variety of radial pressure and wind profile forms. The upgraded features of the model are described, and their impact on hurricane simulations is illustrated with a hypothetical hurricane and with hurricanes Camille (1969) and Gilbert (1988). The upgrades are expected to lead to improvements in the accuracy of OR modeling, particularly for small, intense hurricanes and for well-documented storms with broad and/or multipeaked radial wind profiles.

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References

1.
Abel, C. E., Tracy, B. A., Vincent, C. L., and Jensen, R. E. (1989). “Hurricane hindcast methodology and wave statistics for Atlantic and Gulf hurricanes from 1956–1975.”WIS Rep. 19, U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
2.
Arya, S. P. S.(1977). “Suggested revisions to certain boundary layer parameterization schemes used in atmospheric circulation models.”Monthly Weather Rev., 105(2), 215–227.
3.
Atkinson, G. D., and Holliday, C. R.(1977). “Tropical cyclone minimum sea level pressure/maximum sustained wind relationship for the western North Pacific.”Monthly Weather Rev., 105(4), 421–427.
4.
Black, P. (1994). “Evolution of maximum wind estimates in typhoons.”Tropical cyclone disasters, J. L. Lighthill, Z. Zhemin, G. Holland, and K. Emmanuel, eds., Peking Univ. Press, China, 104–115.
5.
Black, M. L., and Willoughby, H. E.(1992). “The concentric eyewall cycle of Hurricane Gilbert.”Monthly Weather Rev., 120(6), 947–957.
6.
Blackadar, A. K., and Tennekes, H.(1968). “Asymptotic similarity in neutral baratropic PBL.”J. Atmospheric Sci., 25, 1015–1022.
7.
Cardone, V. J. (1969). “Specification of the wind field distribution in the marine boundary layer for wave forecasting.”Rep. TR-69-1, Geophys. Sci. Lab., New York Univ., New York, N.Y.
8.
Cardone, V. J., and Grant, C. K. (1994). “Southeast Asia Meteorological and Oceanographic Hindcast Study (SEAMOS).”Proc., 10th Offshore Southeast Asia Conf., Singapore.
9.
Cardone, V. J., Greenwood, C. V., and Greenwood, J. A. (1992). “Unified program for the specification of hurricane boundary layer winds over surfaces of specified roughness.”Contract Rep. CERC-92-1, U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
10.
Cardone, V. J., Cox, A. T., Greenwood, J. A., and Thompson, E. F. (1994). “Upgrade of the tropical cyclone surface wind field model.”Miscellaneous Paper CERC-94-14, U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
11.
Chang, S. (1977). “The mutual response of the tropical cyclone and the ocean as revealed by an interacting atmospheric and oceanic model,” PhD dissertation, Pennsylvania State Univ., University Park, Pa.
12.
Chow, S. H. (1971). “A study of the wind field in the planetary boundary layer of a moving tropical cyclone,” MS thesis, School of Engrg. and Sci., New York Univ., New York, N.Y.
13.
Cialone, M. A., and Mark, D. J. (1993). “Standard project hurricane (SPH) model, theory and program documentation.”Coastal modeling system (CMS) user's manual; Instruction Rep. CERC-91-1, M. A. Cialone, ed., U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
14.
Cooper, C. K. (1988). “Parametric models of hurricane-generated winds, waves, and currents in deep water.”Proc., Offshore Technol. Conf., Paper 5738, Houston, Tex.
15.
Deardorff, J. W.(1972). “Parameterization of the planetary boundary layer for use in general circulation models.”Monthly Weather Rev., 100, 93–106.
16.
Forristall, G. Z.(1980). “A two-layer model for hurricane driven currents on an irregular grid.”J. Phys. Oceanography, 10(9), 1417–1438.
17.
Forristall, G. Z., Hamilton, R. C., and Cardone, V. J.(1977). “Continental shelf currents in Tropical Storm Delia: observations and theory.”J. Phys. Oceanography, 7(4), 532–546.
18.
Forristall, G. Z., Ward, E. G., Cardone, V. J., and Borgman, L. E.(1978). “The directional spectra and kinematics of surface waves in Tropical Storm Delia.”J. Phys. Oceanography, 8(5), 888–909.
19.
Forristall, G. Z., Ward, E. G., and Cardone, V. J. (1980). “Directional spectra and wave kinematics in hurricanes Carmen and Eloise.”Proc., 17th Int. Conf. on Coast. Engrg., ASCE, New York, N.Y., 567–586.
20.
Garratt, J. R.(1977). “Review of drag coefficients over oceans and continents.”Monthly Weather Rev., 105, 915–929.
21.
Georgiou, P. N. (1985). “Design wind speeds in tropical cyclone-prone regions.”Rep. BLWT-2, Univ. of Western Ontario, London, Ont., Canada.
22.
Grosskopf, W. D., Griffon, D. L., Berek, E. P., and Sharma, J. N. (1991). “Gulf of Mexico wind, wave, and current database.”Proc., Offshore Technol. Conf., OTC 6539, Houston, Tex., 357–364.
23.
Holland, G. J.(1980). “An analytic model of the wind and pressure profiles in hurricanes.”Monthly Weather Rev., 108(8), 1212–1218.
24.
Krayer, W. R., and Marshall, R. D.(1992). “Gust factors applied to hurricane winds.”Bull. Am. Meteorological Soc., 73(5), 613–617.
25.
Ly, L. N., and O'Conner, W. P. (1991). “Gulf coast hurricane surge simulations using a numerical ocean circulation model.”Proc., MTS '91 Conf., Marine Technol. Soc., New Orleans, La.
26.
Mairs, H. L., Koch, S. P., Gordon, R. B., and Cuellar, R. Jr. (1992). “The storm current response of Gulf of Mexico hurricanes.”Proc., Offshore Technol. Conf., OTC 6833, Houston, Tex., 235–242.
27.
Mark, D. J., and Scheffner, N. W. (1993). “Validation of a continental-scale storm surge model for the coast of Delaware.”Proc., Estuarine and Coast. Modeling Conf., ASCE, New York, N.Y., 249–263.
28.
Monaldo, F. (1988). “Expected differences between buoy and radar altimeter estimates of wind speed and significant wave height and their implications on buoy-altimeter comparisons.”J. Geophys. Res., 93(C3), 2285–2301.
29.
Moss, M. S., and Rosenthal, S. L. (1975). “On the estimation (from bulk data) of boundary layer variables and cloud base mass flux in mature hurricanes.”NOAA Tech. Memo. ERLWMPO-23, U.S. Dept. of Commerce, Washington, D.C.
30.
Pierson, W. J. Jr. (1983). “The measurement of the synoptic scale wind over the ocean.”J. Geophys. Res., 88(C3), 1683–1708.
31.
Powell, M. D.(1982). “The transition of the Hurricane Frederic boundary layer wind field from the open Gulf of Mexico to landfall.”Monthly Weather Rev., 110(12), 1912–1932.
32.
Powell, M. D., and Black, P. G.(1990). “The relationship of hurricane reconnaissance flight-level wind measurements to winds measured by NOAA's oceanic platforms.”J. Wind Engrg. and Industrial Aerodynamics, 36, 381–392.
33.
Powell, M. D., Dodge, P. P., and Black, P. G.(1991). “The landfall of Hurricane Hugo in the Carolinas: surface wind distribution.”Weather and Forecasting, 6, 379–399.
34.
Reece, A. M., and Cardone, V. J. (1982). “Test of wave hindcast model results against measurements during four different meteorological systems.”Proc., Offshore Technol. Conf., OTC 4323, Houston, Tex., 269–293.
35.
Ross, D. B., and Cardone, V. J. (1978). “A comparison of parametric and spectral hurricane wave prediction products.”Turbulent fluxes through the sea surface, wave dynamics and prediction, A. Favre and K. Hasselmann, eds., Plenum Press, New York, N.Y., 647–665.
36.
Shapiro, L. J.(1983). “The asymmetric boundary layer flow under a translating hurricane.”J. Atmospheric Sci., 40, 1984–1998.
37.
Smagorinsky, J.(1963). “General circulation experiments with the primitive equations. I: The basic experiment.”Monthly Weather Rev., 91(3), 99–164.
38.
Smith, S. D. (1988). “Coefficients for sea surface wind stress, heat flux and wind profiles as a function of wind speed and temperature.”J. Geophys. Res., 93(C12), 15467–15472.
39.
Thompson, E. F. (1993). “HURWIN: tropical storm planetary boundary layer wind model.”Coastal modeling system (CMS) user's manual; Instruction Rep. CERC-91-1, M. A. Cialone, ed., U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
40.
Thompson, E. F., and Leenknecht, D. A.(1994). “Wind estimation for coastal modeling applications.”J. Coast. Res., 10(3), 628–636.
41.
Tracy, B. A., and Hubertz, J. M. (1990). “Hindcast hurricane swell for the coast of southern California.”WIS Rep. 21, U.S. Army Engrs. Wtrwy. Experiment Station, Vicksburg, Miss.
42.
WAMDI Group.(1988). “The WAM model—a third generation ocean wave prediction model.”J. Phys. Oceanography, 18(12), 1775–1810.
43.
Willoughby, H. E.(1990). “Temporal changes of the primary circulation in tropical cyclones.”J. Atmospheric Sci., 47, 242–264.
44.
Zilitinkevich, S. S. (1970). Dynamics of the atmospheric boundary layer . Hydrometeorological Press (in Russian).

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Go to Journal of Waterway, Port, Coastal, and Ocean Engineering
Journal of Waterway, Port, Coastal, and Ocean Engineering
Volume 122Issue 4July 1996
Pages: 195 - 205

History

Published online: Jul 1, 1996
Published in print: Jul 1996

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Authors

Affiliations

Edward F. Thompson, Member, ASCE,
Hydr. Engr., U.S. Army Engr. Wtrwy. Experiment Station, Vicksburg, MS 39180.
Vincent J. Cardone
Pres., Oceanweather, Inc., 5 River Rd., Cos Cob, CT 06807.

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