DocumentCode
1302975
Title
Monte Carlo simulations of large-scale one-dimensional random rough-surface scattering at near-grazing incidence: Penetrable case
Author
Chan, Chi Hou ; Tsang, Leung ; Li, Qin
Author_Institution
Appl. Electromagn. Lab., City Univ. of Hong Kong, Kowloon, Hong Kong
Volume
46
Issue
1
fYear
1998
fDate
1/1/1998 12:00:00 AM
Firstpage
142
Lastpage
149
Abstract
Scattering from dielectric one-dimensional (1-D) random rough surfaces at near grazing incidence is studied for both TE and TM cases. To obtain accurate results at incidence angles of 80°-85°, we use long surface lengths of up to 1000 wavelengths. Numerical results are illustrated for dielectric surfaces corresponding to soil surfaces with various moisture contents. Results indicate that TM backscattering is much larger than that of TE backscattering. The ratio of TM to TE backscattering increases as a function of soil moisture and can be used as an indicator of soil moisture in remote sensing applications. However, the ratio of TM to TE backscattering is much lower than that predicted by the small perturbation method. To facilitate computation of scattering by such long surfaces, the previously developed banded-matrix iteration approach/canonical grid method (BMIA/CG) has been extended to dielectric surfaces. The numerical algorithm consists of translating the nonnear-field interaction to a flat surface and the interaction subsequently calculated by fast Fourier transform (FFT)
Keywords
Monte Carlo methods; backscatter; electromagnetic wave scattering; fast Fourier transforms; hydrological techniques; iterative methods; moisture; remote sensing; soil; 1.43 GHz; Monte Carlo simulations; TE backscattering; TE case; TM backscattering; TM case; banded-matrix iteration approach; canonical grid method; dielectric surfaces; fast Fourier transform; flat surface; incidence angles; large-scale one-dimensional random rough-surface scattering; long surface lengths; near-grazing incidence; nonnear-field interaction; numerical algorithm; penetrable case; remote sensing applications; soil moisture; soil surfaces; Backscatter; Dielectrics; Large-scale systems; Remote sensing; Rough surfaces; Scattering; Soil moisture; Surface roughness; Surface waves; Tellurium;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/8.655461
Filename
655461
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