Title :
A Space-Time Mixed Galerkin Marching-on-in-Time Scheme for the Time-Domain Combined Field Integral Equation
Author :
Beghein, Yves ; Cools, Kristof ; Bagci, Hakan ; De Zutter, Daniel
Author_Institution :
Dept. of Inf. Technol. (INTEC), Ghent Univ., Ghent, Belgium
fDate :
3/1/2013 12:00:00 AM
Abstract :
The time domain combined field integral equation (TD-CFIE), which is constructed from a weighted sum of the time domain electric and magnetic field integral equations (TD-EFIE and TD-MFIE) for analyzing transient scattering from closed perfect electrically conducting bodies, is free from spurious resonances. The standard marching-on-in-time technique for discretizing the TD-CFIE uses Galerkin and collocation schemes in space and time, respectively. Unfortunately, the standard scheme is theoretically not well understood: stability and convergence have been proven for only one class of space-time Galerkin discretizations. Moreover, existing discretization schemes are nonconforming, i.e., the TD-MFIE contribution is tested with divergence conforming functions instead of curl conforming functions. We therefore introduce a novel space-time mixed Galerkin discretization for the TD-CFIE. A family of temporal basis and testing functions with arbitrary order is introduced. It is explained how the corresponding interactions can be computed efficiently by existing collocation-in-time codes. The spatial mixed discretization is made fully conforming and consistent by leveraging both Rao-Wilton-Glisson and Buffa-Christiansen basis functions and by applying the appropriate bi-orthogonalization procedures. The combination of both techniques is essential when high accuracy over a broad frequency band is required.
Keywords :
Galerkin method; conducting bodies; convergence; electric field integral equations; electromagnetic wave scattering; magnetic field integral equations; stability; time-domain analysis; transient analysis; Buffa-Christiansen basis functions; Rao-Wilton-Glisson basis functions; TD-EFIE; TD-MFIE; biorthogonalization procedures; closed perfect electrically conducting bodies; collocation-in-time code scheme; convergence; curl conforming functions; magnetic field integral equations; space-time Galerkin discretization scheme; space-time mixed Galerkin marching-on-in-time scheme; spatial mixed discretization; spurious resonances; stability; testing functions; time domain electric field integral equations; time-domain combined field integral equation; transient scattering analysis; Accuracy; Equations; Frequency domain analysis; Integral equations; Moment methods; Testing; Time domain analysis; Buffa–Christiansen (BC) functions; combined field integral equation; marching-on-in-time; mixed discretization; space-time Galerkin method;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2012.2226553