DocumentCode :
2657370
Title :
On the regularization of single source combined integral equations for analyzing scattering from homogeneous penetrable objects
Author :
Valdes, Felipe ; Andriulli, Francesco P. ; Bagci, Hakan ; Michielssen, Eric
Author_Institution :
Radiat. Lab., Univ. of Michigan at Ann Arbor, Ann Arbor, MI, USA
fYear :
2009
fDate :
1-5 June 2009
Firstpage :
1
Lastpage :
4
Abstract :
The literature abounds with integral equation techniques for analyzing scattering from homogeneous penetrable objects. Dual source techniques, which are by far the most popular, solve a coupled pair of electric, magnetic, or mixed/combined field integral equations for electric and magnetic surface currents. Single source techniques on the other hand, solve one electric, magnetic, or combined field integral equation for an electric or magnetic surface current density. Equations of the first kind involve hypersingular operators which lead to ill-conditioned matrices when discretized, therefore are susceptible to dense mesh and low frequency breakdown. Moreover, they exhibit resonances; that is, their solution is not unique at a set of discrete frequencies that grows increasingly dense as the electrical size of the scatterer increases. Second kind equations on the other hand, do not suffer from dense mesh nor low frequency breakdown, but they are still susceptible to resonances and hence problematic when applied to the analysis of electrically large scatterers. A linear combination of first and second kind single source equations has been proposed, yielding a resonant free formulation. Unfortunately, this equation still contains a hypersingular electric field integral operator rendering the entire equation hypersingular and susceptible to dense mesh breakdown. In this paper, a second kind single source equation for analyzing scattering from homogeneous penetrable objects is discretized, while a first kind single source equation is regularized, which combined with the former yields a resonance free formulation that is not susceptible to dense mesh breakdown.
Keywords :
current density; electric field integral equations; electromagnetic wave scattering; current density; dual source techniques; electric surface current; electrically large scatterers; homogeneous penetrable object; hypersingular electric field integral; low frequency breakdown; magnetic surface current; scattering analysis; single source combined integral equation; Couplings; Current density; Electric breakdown; Frequency; Impedance; Integral equations; Laboratories; Magnetic analysis; Magnetic resonance; Scattering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Antennas and Propagation Society International Symposium, 2009. APSURSI '09. IEEE
Conference_Location :
Charleston, SC
ISSN :
1522-3965
Print_ISBN :
978-1-4244-3647-7
Type :
conf
DOI :
10.1109/APS.2009.5172280
Filename :
5172280
Link To Document :
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