DocumentCode :
788417
Title :
Current and charge Integral equation formulation
Author :
Taskinen, Matti ; Ylä-Oijala, Pasi
Author_Institution :
Electromagn. Lab., Helsinki Univ. of Technol., Espoo, Finland
Volume :
54
Issue :
1
fYear :
2006
Firstpage :
58
Lastpage :
67
Abstract :
A new stable frequency domain surface integral equation formulation is proposed for the three dimensional electromagnetic scattering of composite metallic and dielectric objects. The developed formulation does not suffer from the low frequency breakdown and leads to a well balanced and stable system on a wide frequency band. Surface charge densities are used as unknowns in addition to the traditional surface current densities. The balance of the system is achieved by using normalized field quantities and by enforcing the continuity of the fields across the boundaries with carefully chosen scaling factors. The linear dependence between the currents and charges is taken into account with an integral operator, and the linear dependence in charges is removed with the deflation method. A combined field integral equation form of the formulation is proposed to remove the internal resonance problem associated to the closed metallic objects. Due to the good balance in the new formulation, fast converging iterative solutions on a very wide frequency band can be obtained. The new formulation and its convergence is verified with numerical examples.
Keywords :
convergence of numerical methods; current density; dielectric bodies; electric field integral equations; electromagnetic wave scattering; frequency-domain analysis; iterative methods; magnetic field integral equations; surface charging; surface electromagnetic waves; composite metallic object; deflation method; dielectric object; fast converging iterative solution; field integral equation; frequency domain formulation; scaling factor; surface charge density; surface current; surface integral equation formulation; three dimensional electromagnetic scattering; Convergence of numerical methods; Current density; Dielectrics; Electric breakdown; Electromagnetic scattering; Frequency domain analysis; Integral equations; Iterative methods; Magnetic fields; Resonance; Deflation; electromagnetic scattering; iterative solution; low frequency breakdown; surface integral equation;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2005.861580
Filename :
1573740
Link To Document :
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