DocumentCode :
1182220
Title :
Well-conditioned Muller formulation for electromagnetic scattering by dielectric objects
Author :
Ylä-Oijala, Pasi ; Taskinen, Matti
Author_Institution :
Electromagn. Lab., Helsinki Univ. of Technol., Finland
Volume :
53
Issue :
10
fYear :
2005
Firstpage :
3316
Lastpage :
3323
Abstract :
Numerical solution of electromagnetic scattering by homogeneous dielectric objects with the method of moments (MoM) and Rao-Wilton-Glisson (RWG) basis functions is discussed. It is shown that the low-frequency breakdown associated to the MoM solution of scattering by dielectric objects can be avoided by the classical Muller formulation without the loop-tree or loop-star basis functions. Two variations of the Muller formulation, T-Müller and N-Muller, are considered. It is demonstrated that only the N-Muller formulation with the Galerkin method and RWG functions gives stable solution. Discretization of the N-Muller formulation leads to a well-conditioned matrix equation and rapidly converging iterative solutions on a wide frequency range from very low frequencies to microwave frequencies. At zero frequency, the N-Muller formulation decouples into the electrostatic and magnetostatic integral equations.
Keywords :
Galerkin method; dielectric bodies; electric breakdown; electric field integral equations; electromagnetic wave scattering; iterative methods; magnetic field integral equations; matrix algebra; method of moments; surface electromagnetic waves; Galerkin method; MoM; N-Muller; RWG basis function; Rao-Wilton-Glisson; electromagnetic scattering; electrostatic integral equation; homogeneous dielectric object; iterative solution; low-frequency breakdown; magnetostatic integral equation; method of moments; surface integral equation; well-conditioned Muller formulation; well-conditioned matrix equation; Dielectric breakdown; Electric breakdown; Electromagnetic scattering; Electrostatics; Helium; Integral equations; Iterative methods; Magnetostatic waves; Microwave frequencies; Moment methods; Dielectric object; MÜller formulation; electromagnetic scattering; low frequency; method of moments (MoM); surface integral equation;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2005.856313
Filename :
1514588
Link To Document :
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