Title :
Overcoming Low-Frequency Breakdown of the Magnetic Field Integral Equation
Author :
Vico, Felipe ; Gimbutas, Z. ; Greengard, L. ; Ferrando-Bataller, Miguel
Author_Institution :
Inst. de Telecomun. y Aplic. Multimedia (ITEAM), Univ. Politec. de Valencia, València, Spain
fDate :
3/1/2013 12:00:00 AM
Abstract :
In the electromagnetics literature, significant attention has been paid to the problem of low-frequency breakdown in the electric field integral equation. By contrast, the magnetic field integral equation is well-conditioned (in simply connected domains) and can be used in the low frequency limit without modification or preconditioning. Reconstruction of the electric field, however, is subject to catastrophic cancellation unless appropriate measure are taken. In this paper, we show that solving an auxiliary (scalar) integral equation for the charge overcomes this form of low frequency breakdown, both in the near and far fields. Moreover, both the current and charge can be discretized using simple piecewise polynomial basis functions on triangulated surfaces. We also analyze an alternative formulation involving magnetic current and charge and illustrate the performance of the methods with several numerical examples.
Keywords :
electric field integral equations; electromagnetic wave scattering; magnetic field integral equations; catastrophic cancellation; electric field integral equation; electromagnetic wave scattering; low-frequency breakdown; magnetic current; magnetic field integral equation; piecewise polynomial basis functions; triangulated surfaces; Accuracy; Antennas; Electric breakdown; Integral equations; Magnetic resonance; Maxwell equations; Charge-current formulations; Maxwell equations; electromagnetic (EM) scattering; electromagnetic theory; low-frequency breakdown; magnetic field integral equation (MFIE);
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2012.2230232