Title :
SEM representation of transient scattering from conducting planar objects in layered media
Author :
Wang, Y. ; Shuley, N.V. ; Yau, D.
Author_Institution :
Dept. of Comput. Sci. & Electr. Eng., Queensland Univ., St. Lucia, Qld., Australia
fDate :
4/1/2000 12:00:00 AM
Abstract :
The scattering of a plane wave from conducting planar objects in layered media has been analysed by a frequency-domain method of moments (MoM) with rooftop basis functions and Galerkin´s procedure. Green´s functions for layered media involved in the computation of the matrix elements are evaluated using the closed-form expressions obtained from the robust approach using the generalised pencil-of-function (GPOF) method. The time-domain scattered field from the scatterer illuminated by an electromagnetic pulse is obtained from its frequency-domain data via the inverse fast Fourier transform (FFT). The poles and residues of the time-domain response are then extracted via the GPOF method. The singularity expansion method (SEM) representation of the time-domain response using the poles and residues is finally obtained. The pole locations in a complex frequency plane as a function of the substrate thickness, relative dielectric permittivity and dielectric loss are also investigated. Complex natural resonances for a microstrip dipole and patch are sufficiently diverse for identification purposes, thus demonstrating that only pole and residue information is required for target characterisation
Keywords :
Green´s function methods; conducting bodies; dielectric losses; dipole antennas; electromagnetic fields; electromagnetic pulse; electromagnetic wave scattering; fast Fourier transforms; frequency-domain analysis; inhomogeneous media; integral equations; inverse problems; matrix algebra; method of moments; microstrip antennas; permittivity; resonance; transients; FFT; GPOF method; Galerkin´s procedure; Green´s functions; MoM; SEM representation; closed-form expressions; complex frequency plane; complex natural resonances; conducting planar objects; dielectric loss; electromagnetic pulse; frequency-domain data; frequency-domain method of moments; generalised pencil-of-function method; identification; inverse fast Fourier transform; layered media; matrix elements; microstrip dipole; microstrip patch; mixed potential integral equation; plane wave scattering; pole locations; relative dielectric permittivity; residues; rooftop basis functions; singularity expansion method; substrate thickness; target characterisation; time-domain response; time-domain scattered field; transient scattering;
Journal_Title :
Microwaves, Antennas and Propagation, IEE Proceedings
DOI :
10.1049/ip-map:20000267