Title :
A Stable Marching On-In-Time Scheme for Solving the Time-Domain Electric Field Volume Integral Equation on High-Contrast Scatterers
Author :
Bin Sayed, Sadeed ; Ulku, Huseyin Arda ; Bagci, Hakan
Author_Institution :
Div. of Comput., Electr., & Math. Sci. & Eng. (CEMSE), King Abdullah Univ. of Sci. & Technol. (KAUST), Thuwal, Saudi Arabia
Abstract :
A time-domain electric field volume integral equation (TD-EFVIE) solver is proposed for characterizing transient electromagnetic wave interactions on high-contrast dielectric scatterers. The TD-EFVIE is discretized using the Schaubert-Wilton-Glisson (SWG) and approximate prolate spherical wave (APSW) functions in space and time, respectively. The resulting system of equations cannot be solved by a straightforward application of the marching on-in-time (MOT) scheme since the two-sided APSW interpolation functions require the knowledge of unknown “future” field samples during time marching. Causality of the MOT scheme is restored using an extrapolation technique that predicts the future samples from known “past” ones. Unlike the extrapolation techniques developed for MOT schemes that are used in solving time-domain surface integral equations, this scheme trains the extrapolation coefficients using samples of exponentials with exponents on the complex frequency plane. This increases the stability of the MOT-TD-EFVIE solver significantly, since the temporal behavior of decaying and oscillating electromagnetic modes induced inside the scatterers is very accurately taken into account by this new extrapolation scheme. Numerical results demonstrate that the proposed MOT solver maintains its stability even when applied to analyzing wave interactions on high-contrast scatterers.
Keywords :
approximation theory; electric field integral equations; electromagnetic wave scattering; extrapolation; interpolation; stability; time-domain analysis; MOT-TD-EFVIE solver; SWG scheme; Schaubert-Wilton-Glisson scheme; approximate prolate spherical wave function; extrapolation technique; high-contrast dielectric scatterer; stability; stable marching on-in-time scheme; time-domain electric field volume integral equation; time-domain surface integral equation; transient electromagnetic wave interaction; two-sided APSW interpolation function; Accuracy; Convolution; Dielectrics; Extrapolation; Integral equations; Numerical stability; Time-domain analysis; Band-limited interpolation; Marching on-in-time method; band-limited interpolation; electric field volume integral equation; electric field volume integral equation (EFVIE); extrapolation; marching on-in-time (MOT) method; time domain analysis; time-domain analysis; transient analysis;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2429736