DocumentCode
890168
Title
Numerical simulation of electromagnetic fields radiated by lightning return stroke channels: a wavelet-based approach
Author
Geranmayeh, Amir ; Moini, Rouzbeh ; Sadeghi, S. H Hesam
Author_Institution
Electr. Eng. Dept., Amirkabir Univ. of Technol., Tehran
Volume
48
Issue
1
fYear
2006
Firstpage
225
Lastpage
233
Abstract
The antenna theory model is widely employed to numerically simulate the propagation of current wave along lightning return stroke channels and compute the radiated electromagnetic fields. In this model, the channel is approximated as a vertically straight or a horizontally bent thin-wire antenna above perfectly conducting ground for which the numerical solution of the governing electric field integral equation in frequency domain by the conventional method of moment is prohibitively slow. This paper proposes an efficient algorithm to substantially reduce the computation time of the numerical process for the entire frequency components of the excitation current. In this algorithm, a class of predefined wavelet packet transform is first used to effectively sparsify the resulting moment matrix equations. A proper iterative solver is then utilized to take the full advantages of manipulatory sparse matrices. To accelerate the construction of the original moment matrix, the reciprocal closed-form mutual impedance of sinusoidal electric dipoles and the symmetry of the model are fully exploited. A good agreement is observed with computed data found in technical literature while the overall computational time is reduced remarkably
Keywords
antenna theory; conducting bodies; electromagnetic fields; iterative methods; lightning; method of moments; sparse matrices; wavelet transforms; wire antennas; antenna theory model; bent thin-wire antenna; electric dipoles; electromagnetic fields; iterative solver; lightning return stroke channels; moment matrix equations; perfectly conducting ground; reciprocal closed-form mutual impedance; sparse matrices; wavelet packet transform; wavelet-based approach; Antenna theory; Antennas and propagation; Computational modeling; Electromagnetic fields; Electromagnetic modeling; Electromagnetic propagation; Iterative algorithms; Lightning; Numerical simulation; Sparse matrices; Antenna theory (AT) model; lightning return stroke; method of moment (MoM); sinusoidal dipoles; thin-wire electric field integral equation (EFIE); wavelet packet transform;
fLanguage
English
Journal_Title
Electromagnetic Compatibility, IEEE Transactions on
Publisher
ieee
ISSN
0018-9375
Type
jour
DOI
10.1109/TEMC.2006.870806
Filename
1614056
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