DocumentCode
1549404
Title
A numerical study of backscattering from time-evolving sea surfaces: comparison of hydrodynamic models
Author
Johnson, Joel T. ; Toporkov, Jakov V. ; Brown, Gary S.
Author_Institution
Dept. of Electr. Eng. & Electro Sci. Lab., Ohio State Univ., Columbus, OH, USA
Volume
39
Issue
11
fYear
2001
fDate
11/1/2001 12:00:00 AM
Firstpage
2411
Lastpage
2420
Abstract
Results from a Monte Carlo simulation of backscattering from one-dimensional (1-D) time-evolving sea surface models are reported. A numerical electromagnetic method based on an accelerated forward-backward approach is used to calculate backscattered returns from impedance surface profiles at incidence angles of 0° (normal), 40°, and 80°. Surfaces are initialized as realizations of a Pierson-Moskowitz spectrum and then stepped in time through a numerical hydrodynamic method. Results from three distinct hydrodynamic methods are compared: a linear evolution, the "improved linear representation" of Creamer et al. (1989), and the "Watson-West" approach of West et al. (1987). Instabilities in the West model due to formation of steep wave features limit the study to L-band backscattering for wind speeds less than 2 m/s, so that the surfaces considered are only slightly rough on an electromagnetic scale. The small slope approximation for electromagnetic scattering is shown to provide reasonable predictions in this limit. Statistics of the resulting surface profiles and backscattered fields are compared for the three models and are found to be similar in most respects. Backscattered field Doppler spectra, however, show differences, with the West model apparently capturing more nonlinear interactions in the surface evolution
Keywords
Doppler radar; Monte Carlo methods; backscatter; ocean waves; remote sensing by radar; 1D time-evolving sea surface models; Doppler spectra; EM scattering; L-band backscattering; Monte Carlo simulation; Pierson-Moskowitz spectrum; West model; backscattered fields; hydrodynamic model comparison; impedance surface profiles; nonlinear interactions; numerical EM method; numerical hydrodynamic method; numerical study; rough sea surface scattering; small slope approximation; surface evolution; wind speeds; Acceleration; Backscatter; Electromagnetic modeling; Electromagnetic scattering; Hydrodynamics; L-band; Rough surfaces; Sea surface; Surface impedance; Surface roughness;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.964977
Filename
964977
Link To Document