DocumentCode :
1432305
Title :
RCS reduction of canonical targets using genetic algorithm synthesized RAM
Author :
Mosallaei, Hossein ; Rahmat-Samii, Yahya
Author_Institution :
Dept. of Electr. Eng., California Univ., Los Angeles, CA, USA
Volume :
48
Issue :
10
fYear :
2000
fDate :
10/1/2000 12:00:00 AM
Firstpage :
1594
Lastpage :
1606
Abstract :
Radar cross section (RCS) reduction of canonical (planar, cylindrical, and spherical) conducting targets is the focus of this paper. In particular, a novel procedure is presented for synthesizing radar absorbing materials (RAM) for RCS reduction in a wide-band frequency range. The modal solutions of Maxwell´s equations for the multilayered planar, cylindrical, and spherical canonical structures is integrated into a genetic algorithm (GA) optimization technique to obtain the best optimal composite coating. It Is shown that by using an optimal RAM, the RCS of these canonical structures can be significantly reduced. Characteristics of bistatic RCS of coated cylindrical and spherical structures are also studied and compared with the conducting structures without coating. It is shown that no optimal coating can be found to reduce the RCS in the deep shadow region. An in-depth study has been performed to evaluate the potential usage of the optimal planar coating as applied to the curved surfaces. It is observed that the optimal planar coating can noticeably reduce the RCS of the spherical structure. This observation was essential in introducing a novel efficient GA with hybrid planar/curved surface implementation using as part of its initial generation the best population obtained for the planar RAM design. These results suggest that the optimal RAM for a surface with arbitrary curvature may be efficiently determined by applying the GA with hybrid planar/curved surface population initialization
Keywords :
Maxwell equations; conducting bodies; electromagnetic wave absorption; electromagnetic wave scattering; genetic algorithms; inhomogeneous media; radar cross-sections; Maxwell´s equations; RCS reduction; canonical targets; conducting structures; cylindrical conducting targets; deep shadow region; genetic algorithm synthesized RAM; hybrid planar/curved surface; istatic RCS; modal solutions; multilayered planar structures; optimal RAM; optimal composite coating; optimal planar coating; planar RAM design; planar conducting targets; population initialization; radar absorbing materials; radar cross section; spherical conducting targets; wide-band frequency range; Coatings; Conducting materials; Design optimization; Electromagnetic scattering; Frequency synthesizers; Genetic algorithms; Maxwell equations; Radar cross section; Radar scattering; Read-write memory;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/8.899676
Filename :
899676
Link To Document :
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