Title :
Electromagnetic scattering from homogeneous dielectric bodies using time-domain integral equations
Author :
Pisharody, Greeshma ; Weile, Daniel S.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Delaware, Newark, DE, USA
Abstract :
This paper presents a stable and accurate method to compute the electromagnetic scattering from homogeneous, isotropic, and nondispersive bodies using time-domain integral equations (TDIEs). Unlike previous TDIE-based scattering work, the formulation presented here is based on the equations of Poggio, Miller, Chang, Harrington, Wu, and Tsai formulation. The method employs the higher-order divergence-conforming basis functions described by Graglia et al. and bandlimited interpolation functions to effect the spatial and temporal discretization of the integral equations, respectively. As the temporal basis functions are noncausal, an extrapolation mechanism is used to modify the noncausal system of equations to a form solvable by standard marching-on-in-time procedure. This work also explains the reason for late-time low-frequency instabilities encountered in current TDIE implementations and details a stabilization technique employed to overcome them. Numerical results demonstrate the accuracy and stability of the proposed technique.
Keywords :
computational electromagnetics; dielectric bodies; electromagnetic wave scattering; extrapolation; integral equations; interpolation; numerical stability; spatiotemporal phenomena; time-domain analysis; transient analysis; TDIE; bandlimited interpolation function; electromagnetic scattering computing; extrapolation mechanism; higher-order divergence; homogeneous dielectric body; isotropic body; noncausal system; nondispersive body; spatial-temporal discretization; stability; time-domain integral equation; transient analysis; Dielectrics; Electromagnetic radiation; Electromagnetic scattering; Extrapolation; Frequency; Integral equations; Interpolation; Stability; Time domain analysis; Transient analysis; Augmented fields approach; integral equations; low frequency instability; transient analysis;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2005.863137