DocumentCode
835957
Title
Shooting and bouncing rays: calculating the RCS of an arbitrarily shaped cavity
Author
Ling, Hao ; Chou, Ri-Chee ; Lee, Shung-wu
Author_Institution
Dept. of Electr. & Comput. Eng., Texas Univ., Austin, TX, USA
Volume
37
Issue
2
fYear
1989
Firstpage
194
Lastpage
205
Abstract
A ray-shooting approach is presented for calculating the interior radar cross section (RCS) from a partially open cavity. In the problem considered, a dense grid of rays is launched into the cavity through the opening. The rays bounce from the cavity walls based on the laws of geometrical optics and eventually exit the cavity via the aperture. The ray-bouncing method is based on tracking a large number of rays launched into the cavity through the opening and determining the geometrical optics field associated with each ray by taking into consideration: (1) the geometrical divergence factor, (2) polarization, and (3) material loading of the cavity walls. A physical optics scheme is then applied to compute the backscattered field from the exit rays. This method is so simple in concept that there is virtually no restriction on the shape or material loading of the cavity. Numerical results obtained by this method are compared with those for the modal analysis for a circular cylinder terminated by a PEC plate. RCS results for an S-bend circular cylinder generated on the Cray X-MP supercomputer show significant RCS reduction. Some of the limitations and possible extensions of this technique are discussed.<>
Keywords
backscatter; electromagnetic wave scattering; geometrical optics; physical optics; radar cross-sections; RCS; S-bend circular cylinder; arbitrarily shaped cavity; backscattered field; bouncing rays; geometrical divergence factor; geometrical optics; interior radar cross section; material loading; partially open cavity; physical optics; polarization; ray tracing; ray-bouncing method; ray-shooting approach; Apertures; Geometrical optics; Optical computing; Optical materials; Optical polarization; Physical optics; Physics computing; Radar cross section; Radar tracking; Shape;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/8.18706
Filename
18706
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