Title :
Spatially Large-Domain and Temporally Entire-Domain Electric-Field Integral Equation Method of Moments for 3-D Scattering Analysis in Time Domain
Author :
Sekeljic, Nada J. ; Ilic, Milan M. ; Notaros, Branislav M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Colorado State Univ., Fort Collins, CO, USA
Abstract :
A novel spatially large-domain and temporally entire-domain method of moments (MoM) is proposed for surface integral equation (SIE) modeling of 3-D conducting scatterers in the time domain (TD). The method uses higher order curved Lagrange interpolation-generalized quadrilateral geometrical elements, higher order spatial current expansions based on hierarchical divergence-conforming polynomial vector basis functions, and temporal current modeling by means of orthogonal weighted associated Laguerre basis functions. It implements full temporal and spatial Galerkin testing and marching-on-in-degree (MOD) scheme for an iterative solution of the final system of spatially and temporally discretized MoM-TD equations. Numerical examples demonstrate excellent accuracy, efficiency, convergence, and versatility of the new MoM-MOD method. The results also demonstrate very effective large-domain MoM-TD SIE models of scatterers using flat and curved patches of electrical sizes of up to about 1.7 wavelengths at the maximum frequency in the frequency spectrum of the pulse excitation, higher order current expansions of spatial orders from 2 to 8 in conjunction with entire-domain Laguerre temporal bases, and minimal numbers of unknowns.
Keywords :
Galerkin method; electric field integral equations; electromagnetic field theory; interpolation; method of moments; 3-D conducting scatterers; Lagrange interpolation-generalized quadrilateral geometrical elements; Laguerre temporal bases; hierarchical divergence-conforming polynomial vector basis functions; higher order spatial current expansions; marching-on-in-degree scheme; method of moments; orthogonal weighted associated Laguerre basis functions; spatial Galerkin testing; spatially large-domain electric-field integral equation; surface integral equation; temporal current modeling; temporally entire-domain electric-field integral equation; time domain; Analytical models; Integral equations; Mathematical model; Method of moments; Polynomials; Testing; Vectors; Curved parametric elements; Electromagnetic analysis; curved parametric elements; electromagnetic analysis; higher order modeling; method of moments; method of moments (MoMs); numerical techniques; polynomial basis functions; scattering; surface integral equations; surface integral equations (SIEs); time domain analysis; transient response;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2418343