DocumentCode :
986951
Title :
Current and Charge Integral Equation Formulations and Picard´s Extended Maxwell System
Author :
Taskinen, Matti ; Vanska, S.
Author_Institution :
Helsinki Univ. of Technol., Helsinki
Volume :
55
Issue :
12
fYear :
2007
Firstpage :
3495
Lastpage :
3503
Abstract :
Important connection between computational and mathematical electromagnetics is presented. The newly developed well-conditioned electromagnetic frequency domain surface integral equation formulations, the current and charge integral equations, are shown to be related to Picard´s extended Maxwell system, an extended partial differential equation system that has the correct static behavior. Electromagnetic surface integral representations are derived in this paper for traditional surface integral equation formulations and for the Picard system using the fundamental solution approach, i.e., from the definition of Dirac´s delta function. The surface integral representations are constructed with proper solid angle coefficients starting from the scalar Helmholtz equation. The traditional surface integral equation formulations are shown to be derived from Maxwell´s curl equations and are thus lacking the contribution of the divergence equations at zero frequency. It is shown that the new current and charge formulations can be derived from the surface integral representation of the Picard system.
Keywords :
Dirac equation; Helmholtz equations; Maxwell equations; electric field integral equations; partial differential equations; Dirac delta function; Picard extended Maxwell system; charge integral equation; computational electromagnetics; current integral equation; electromagnetic frequency domain surface integral equation; extended partial differential equation system; mathematical electromagnetics; scalar Helmholtz equation; solid angle coefficients; static behavior; surface integral representation; Dielectrics; Electric breakdown; Electromagnetics; Frequency domain analysis; Helium; Integral equations; Maxwell equations; Partial differential equations; Radar antennas; Solids; Low frequency breakdown; Maxwell´s equations; surface integral equations;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2007.910363
Filename :
4388131
Link To Document :
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