1999 IEEE.
Personal use of this material is
permitted. However, permission to reprint/republish this
material for advertising or promotional purposes or for
creating new collective works for resale or redistribution
to servers or lists, or to reuse any copyrighted component
of this work in other works must be obtained from the
IEEE.
IEEE Transactions on Antennas and Propagation
Volume 47 Number 2, February 1999
Table of Contents for this issue
Complete paper in PDF format
Hydrodynamic Effects in Low-Grazing Angle
Backscattering from the Ocean
Enrique A. Caponi, Bruce M. Lake, and Henry C. Yuen
Page 354.
Abstract:
Time series of returned power, Doppler spectra and range
versus time intensity (RTI) images collected from low-grazing angle
radar backscattering from the ocean present features which cannot be
explained solely within the framework of resonant Bragg scattering. We
propose that most of the observed characteristics are a consequence of
the way in which waves evolve on the surface of the ocean. To illustrate
this point, we have built a model consisting of a hydrodynamic module
and a radar response module. The hydrodynamics module includes most of
the physics thought to be relevant to the evolution of a wavefield
(i.e., nonlinear interactions, wind, and wavebreaking). The radar module
computes the backscattering as the accumulation of Bragg response from
every tilted facet of the reconstructed surface, except for those
locations where hydrodynamic conditions leading to wavebreaking are
detected. Facets involved in wavebreaking are assumed to contribute to
the backscattering in a quasi-specular polarization independent fashion.
The hydrodynamics module is used to simulate the evolution of a
nonlinear wave field, starting from essentially monochromatic
conditions. The evolution reproduces known characteristics of these
systems, including the generation of sideband instabilities and
downshifting. The radar response module is then exercised on the
resulting surface at various stages of development. Simulated RTI's at
very low-grazing angles reproduce the observed polarimetric
characteristics, as well as their behavior when the grazing angle is
increased. Simulated Doppler spectra reproduce the peak separation
phenomenon observed in field measurements at very low-grazing angles and
also show a behavior similar to that shown by field data when the
grazing angle is increased.
References
-
J. R. Apel, "An improved model of the ocean surface wave
vector spectrum and its effects on radar backscatter,"
J. Geophys. Res., vol. 99, pp.
16269-16291, 1994.
-
E. A. Caponi, P. G. Saffman, and H. C. Yuen, "Instability
and confined chaos in a nonlinear dispersive wave system,"
Phys. Fluids, vol. 25, pp.
2159-2166, 1982.
-
E. A. Caponi, "Implementation of TRW's low grazing angle
radar return model," TRW Rep. 63817-6004-UT-2.1, Mar. 1996.
-
D. R. Crawford, P. G. Saffman, and H. C. Yuen, "Evolution of
a random inhomogeneous field of nonlinear deep-water gravity
waves," Wave Motion, vol. 2,
pp. 1-16, 1980.
-
D. B. Creamer, F. Henyey, R. Schult, and J. Wright,
"Improved linear representation of ocean surface waves,"
J. Fluid Mech., vol. 205, pp.
135-161, 1989.
-
P. A. E. M. Janssen, P. Lionello, and L. Zambresky, "On the
interaction of wind and waves," Phil. Trans.
Royal Soc. London, vol. A329, pp. 289-301,
1989.
-
A. T. Jessup, W. K. Melville, and W. C. Keller, "Breaking
waves affecting microwave backscatter, 1, detection and
verification," J. Geophys.
Res., vol. 96, pp. 20547-20559, 1991.
-
A. I. Kalmykov and V. V. Pustovoytenko, "On polarization
features of radio signals scattered from the sea surface at small
grazingl angle," J. Geophys.
Res., vol. 81, pp. 1960-1964, 1976.
-
V. P. Krasitskii, "Canonical transformation in a theory of
weakly nonlinear waves with a nondecay dispersion law,"
Sov. Phys., vol. JETP71, pp.
921-927, 1990.
-
--, "On reduced equations in the Hamiltonian theory of
weakly nonlinear surface waves," J. Fluid
Mech., vol. 272, pp. 1-20, 1994.
-
B. M. Lake, H. C. Yuen, H. Rungaldier, and W. E. Ferguson,
"Nonlinear deep water waves: Theory and experiment--Part 2:
Evolution of a continuous wave train," J. Fluid
Mech., vol. 83, pp. 49-74, 1977.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, C. L. Hindman, B. M.
Lake, H. Rungaldier, J. C. Shelton, A. B. Williams, R. Yee, and H. C.
Yuen, "X band microwave backscattering from ocean waves,"
J. Geophys. Res., vol. 100, pp.
2591-2611, 1995.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, E. Caponi, C. L. Hindman,
B. M. Lake, H. Rungaldier, and J. C. Shelton, "Power spectral
lineshapes of microwave radiation backscattered from sea surfaces at
small grazing angles," Proc. Inst. Elect.
Eng.--RSN, vol. 142, pp. 252-258,
1995.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, B. M. Lake, H.
Rungaldier, J. C. Shelton, H. R. Thomson Jr., M. D. White, and R. Yee,
"TRW experiments at OEL-UC Santa Barbara--Part 1:
Pulse-chirped radar calibration and Bragg scattering at small grazing
angles," TRW Rep. 63817-6001-UT-6.2, Aug. 1995.
-
--, "TRW experiments at OEL-UC Santa
Barbara--Part 2: Microwave backscattering from breaking gravity
waves," TRW Rep. 63817-6001-UT-7.1, Sept. 1995.
-
--, "TRW experiments at OEL-UC Santa
Barbara--Part 4: Breaking-wave energy and grazing-angle dependent
polarimetric Doppler spectra," TRW Rep. 63817-6001-UT-9.1, Dec.
18, 1995.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, E. Caponi, M. Caponi, C.
L. Hindman, B. M. Lake, and H. Rungaldier, "Wind-speed dependence
of small-grazing-angle microwave backscatter from sea surfaces,"
IEEE Trans. Antennas Propagat., vol.
44, pp. 333-340, 1996.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, B. M. Lake, H.
Rungaldier, J. C. Shelton, H. R. Thompson Jr., and R. Yee,
"Dependence of polarimetric Doppler spectra on breaking-wave
energy," in Proc. Int. Symp. Geosci. Remote
Sensing, Lincoln, NE, May 1996, vol. IV, pp.
2201-2203.
-
--, "Depolarization in microwave scatterometry,"
in Proc. Int. Symp. Geosci. Remote
Sensing, Lincoln, NE, May 1996, vol. IV, pp.
2213-2215.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, B. M. Lake, H.
Rungaldier, J. C. Shelton, H. R. Thomson Jr., M. D. White, and R. Yee,
"TRW experiments at OEL-UC Santa Barbara--Part 5:
Depolarization in microwave scatterometry," TRW Rep.
63817-6001-UT-10.1, Jan. 1996.
-
P. H. Y. Lee, J. D. Barter, and H. R. Thomson Jr., "TRW
experiments at OEL-UC Santa Barbara--Part 6: Lineshape analysis of
breaking-wave Doppler spectra," TRW Rep. 63817-6001-UT-11.1, Jan.
1996.
-
P. H. Y. Lee, J. D. Barter, K. L. Beach, B. M. Lake, H.
Rungaldier, H. R. Thompson Jr., and R. Yee, "Scattering from
breaking gravity waves without wind," TRW Rep. 63817-6001-UT-15.4,
Mar. 1997.
-
W. K. Melville, "Wave modulation and breakdown,"
J. Fluid Mech., vol. 128, pp.
489-506, 1983.
-
W. J. Pierson Jr. and R. A. Stacy, "The elevation, slope,
and curvature spectra of a wind roughened sea surface," NASA Rep.
CR-2247, 1973.
-
S. O. Rice, "Reflection of electromagnetic waves from
slightly rough surfaces," Commun. Pure Appl.
Math., vol. 4, pp. 351-378, 1951.
-
M. J. Smith, E. M. Poulter, and J. A. McGregor, "Doppler
radar measurements of wave groups and breaking waves,"
J. Geophys. Res., vol. 101, pp.
14269-14282, 1996.
-
R. L. Snyder, F. W. Dobson, J. A. Elliot, and R. B. Long,
"Array measurements of atmospheric pressure fluctuations above
surface gravity waves," J. Fluid
Mech., vol. 102, pp. 1-59, 1981.
-
G. R. Valenzuela, "Theories for the interaction of
electromagnetic and oceanic waves--A review,"
Boundary Layer Meteorol., vol. 13,
pp. 61-85, 1978.
-
G. R. Valenzuela, "Scattering of electromagnetic waves from
the ocean," in Surveillance of Environmental
Pollution and Resources by Electromagnetic Waves, T.
Lund, Ed.Norwell, MA: Reidel, 1978, pp. 196-226.
-
K. D. Ward, C. J. Baker, and S. Watts, "Maritime
surveillance radar. Part 1: Radar scattering from the ocean
surface," Inst. Elect. Eng. Radar Signal
Processing, vol. 137, pt. F, pp. 51-62,
1990.
-
K. D. Ward and P. W. Shepherd, "Bistatic radar sea clutter
experiments and spatial coherence," in Inst.
Elect. Eng. Radar 92: Int. Conf., Brighton, U.K.,
1992, pp. 22-25.
-
L. B. Wetzel, "On microwave scattering by breaking ocean
waves," in Wave Dynamics and Radio Probing of
Ocean Surface, O. M. Phillips and K. Hasselmann,
Eds.New York: Plenum, 1986, pp. 273-284.
-
H. C. Yuen and B. M. Lake, "Nonlinear dynamics of deep-water
gravity waves," Adv. Appl.
Mech., vol. 22, pp. 67-229, 1982.
-
V. E. Zakharov, "Stability of periodic waves of finite
amplitude on the surface of a deep fluid," Zh.
Prikl. Mekh. Tekh. Fiz., vol. 65, pp. 86-94,
1968; transl. J. Appl. Mech. Tech.
Phys., vol. 2, pp. 190-194, 1968.