DocumentCode
1051200
Title
Static and dynamic modeling of a SAR imaged ocean scene
Author
Shuchman, Robert A. ; Maffett, Andrew L. ; Klooster, Alex, Jr.
Author_Institution
Environmental Research Institute of Michigan, Ann Arbor, MI, USA
Volume
6
Issue
2
fYear
1981
fDate
4/1/1981 12:00:00 AM
Firstpage
41
Lastpage
49
Abstract
A number of models exist that attempt to explain wave imagery obtained with a synthetic aperture radar (SAR). These models are of two types; static models that depend on instantaneous surface features and dynamic models that employ surface velocities. Radar backscatter values (
) were calculated from 1.3- and 9.4-GHz SAR data collected off Marineland, FL. The
data (averaged over many wave trains) collected at Marineland can best be modeled by the Bragg-Rice-Phillips model which is based on roughness variation and the complex dielectric constant of oceans. This result suggests that capillaries on the surface of oceanic waves are the primary cause for the surface return observed by a SAR. Salinity and temperature of the sea at small and medium incidence angles produce little effect upon sea-surface reflection coefficients at
-band, for either of the linear polarizations. The authors\´ observation of moving ocean, imaged by the SAR and studied in the SAR optical correlator, support a theory that the ocean surface appears relatively stationary in the absence of currents. The reflecting surface is most likely moving slowly (i.e., capillaries) relative to the phase velocity of the large gravity waves.
) were calculated from 1.3- and 9.4-GHz SAR data collected off Marineland, FL. The
data (averaged over many wave trains) collected at Marineland can best be modeled by the Bragg-Rice-Phillips model which is based on roughness variation and the complex dielectric constant of oceans. This result suggests that capillaries on the surface of oceanic waves are the primary cause for the surface return observed by a SAR. Salinity and temperature of the sea at small and medium incidence angles produce little effect upon sea-surface reflection coefficients at
-band, for either of the linear polarizations. The authors\´ observation of moving ocean, imaged by the SAR and studied in the SAR optical correlator, support a theory that the ocean surface appears relatively stationary in the absence of currents. The reflecting surface is most likely moving slowly (i.e., capillaries) relative to the phase velocity of the large gravity waves.Keywords
Sea surface electromagnetic scattering; Synthetic-aperture radar; Backscatter; Layout; Ocean temperature; Optical surface waves; Radar imaging; Rough surfaces; Sea surface; Surface roughness; Surface waves; Synthetic aperture radar;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.1981.1145485
Filename
1145485
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