Computing the Electric and Magnetic Matrix Green's Functions in a Rectangular Parallelepiped With a Perfect Conducting Boundary
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Abstract
A method for the approximate computation of frequency-dependent magnetic and electric matrix Green's functions in a rectangular parallelepiped with a perfect conducting boundary is suggested in the paper. This method is based on approximation (regularization) of the Dirac delta function and its derivatives, which appear in the differential equations for magnetic and electric Green's functions, and the Fourier series expansion meta-approach for solving the elliptic boundary value problems. The elements of approximate Green's functions are found explicitly in the form of the Fourier series with a finite number of terms. The convergence analysis for finding the number of the terms is given. The computational experiments have confirmed the robustness of the method.
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Keywords
Green's functions, Fourier series, Magnetic and electric matrix, Maxwell equations, Maxwell equations, QA1-939, Green's functions, Magnetic and electric matrix, Fourier series, Mathematics
Fields of Science
0103 physical sciences, 0101 mathematics, 01 natural sciences
Citation
Yakhno, V.G., and Ersoy, Ş. (2014). Computing the electric and magnetic matrix green's functions in a rectangular parallelepiped with a perfect conducting boundary. Abstract and Applied Analysis, 2014. doi:10.1155/2014/586370
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1
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2014
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1
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13
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