DocumentCode
1014924
Title
Numerical computation of scattering from a perfectly conducting random surface
Author
Axline, R.M. ; Fung, Adrian K.
Author_Institution
Univ. of Kansas Center for Research Inc., Lawrence, KS, USA
Volume
26
Issue
3
fYear
1978
fDate
5/1/1978 12:00:00 AM
Firstpage
482
Lastpage
488
Abstract
A one-dimensionally rough random surface with known statistical properties was generated by digital computer. This surface was divided into many segments of equal length. The moments method was applied to each surface segment assuming perfect conductivity to compute the induced surface current and subsequently the backscattered field due to an impinging plane wave. The return power was then calculated and averaged over different segments. Unlike numerical computations of scattering from deterministic surfaces, problems of stability (as defined by Blackman and Turkey [11]) and convergence of the solution exist for random surface scattering. It is shown that the stability of the numerically computed estimate of the backscattered average power depends on
, the total number of disjoint surface segments averaged;
, the spacing between surface current points;
, the width of each surface segment; and
, the width of the window function. Relations are obtained which help to make an appropriate choice of these parameters. In general, choices of
, and
are quite sensitive to the incident wavelength and the angular scattering properties of the surface.
, the total number of disjoint surface segments averaged;
, the spacing between surface current points;
, the width of each surface segment; and
, the width of the window function. Relations are obtained which help to make an appropriate choice of these parameters. In general, choices of
, and
are quite sensitive to the incident wavelength and the angular scattering properties of the surface.Keywords
Backscatter; Electromagnetic (EM) scattering by rough surfaces; Electromagnetic wave scattering; Moment methods; Monte Carlo methods; Antennas and propagation; Electromagnetic scattering; Optical scattering; Optical surface waves; Radar scattering; Rough surfaces; Sea surface; Stability; Surface roughness; Surface waves;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.1978.1141871
Filename
1141871
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