Title :
A DC Stable and Large-Time Step Well-Balanced TD-EFIE Based on Quasi-Helmholtz Projectors
Author :
Beghein, Yves ; Cools, Kristof ; Andriulli, Francesco P.
Author_Institution :
Dept. of Inf. Technol. (INTEC), Ghent Univ., Ghent, Belgium
Abstract :
The marching-on-in-time (MOT) solution of the time-domain electric field integral equation (TD-EFIE) has traditionally suffered from a number of issues, including the emergence of spurious static currents (dc instability) and ill-conditioning at large-time steps (low frequencies). In this contribution, a space-time Galerkin discretization of the TD-EFIE is proposed, which separates the loop and star components of both the equation and the unknown. Judiciously integrating or differentiating these components with respect to time leads to an equation which is free from dc instability. By choosing the correct temporal basis and testing functions for each of the components, a stable MOT system is obtained. Furthermore, the scaling of these basis and testing functions ensure that the system remains well conditioned for large-time steps. The loop-star decomposition is performed using quasi-Helmholtz projectors to avoid the explicit transformation to the unstable bases of loops and stars (or trees), and to avoid the search for global loops, which is a computationally expensive operation.
Keywords :
Galerkin method; Helmholtz equations; electric field integral equations; electromagnetic wave scattering; time-domain analysis; DC stable well-balanced TD-EFIE; dc instability; electromagnetic scattering; large-time step well-balanced TD-EFIE; loop components; loop-star decomposition; marching-on-in-time solution; quasiHelmholtz projectors; space-time Galerkin discretization; spurious static currents; stable MOT system; star components; testing functions; time-domain electric field integral equation; Integral equations; Manganese; Mathematical model; Method of moments; Standards; Testing; Time-frequency analysis; DC instability; electric field integral equation; electric field integral equation (EFIE); low frequency breakdown; low-frequency breakdown; time domain; time domain (TD);
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2426796