DocumentCode
1085915
Title
Scattering by Conducting Bodies Coated With Bi-Isotropic Materials
Author
Dao-Xiang Wang ; Pui Yi Lau ; Kai-Ning, E.
Author_Institution
City Univ. of Hong Kong, Hong Kong
Volume
55
Issue
8
fYear
2007
Firstpage
2313
Lastpage
2319
Abstract
Electromagnetic scattering by arbitrarily shaped conducting bodies coated with general bi-isotropic materials is formulated in terms of the surface integral equation method. In order to facilitate the implementation of the surface equivalence principle, a field decomposition scheme is utilized to split a bi-isotropic media into two equivalent isotropic media. By enforcing the boundary condition on the interfaces of the body, a set of coupled integral equations is finally obtained for the unknown surface currents and then numerically solved using the moment methods combined with the vector triangular basis function. The fast multipole technique has been embedded into the algorithm to accelerate the solution process. The validity of theoretical formulations is verified by numerical results and their comparisons. The calculated results for bi-isotropically coated conducting spheres and oblate spheroids are compared with the exact solution and the existing data, and excellent agreements are observed.
Keywords
boundary integral equations; conducting bodies; electromagnetic coupling; electromagnetic wave scattering; method of moments; biisotropic material; conducting bodies; coupled integral equation; electromagnetic scattering; field decomposition scheme; moment method; multipole technique; surface equivalence principle; surface integral equation method; vector triangular basis function; Bismuth; Boundary conditions; Conducting materials; Conductors; Electromagnetic scattering; Finite difference methods; Integral equations; Moment methods; Optical scattering; Optical surface waves; Bi-isotropic media; method of moments (MoM); surface integral equations;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2007.901850
Filename
4286032
Link To Document