DocumentCode
1544910
Title
Time domain direct and inverse problems for a nonuniform LCRG line with internal sources
Author
Lunstedt, J. ; He, Sailing
Author_Institution
Dept. of Electromagn. Theory, R. Inst. of Technol., Stockholm, Sweden
Volume
39
Issue
2
fYear
1997
fDate
5/1/1997 12:00:00 AM
Firstpage
79
Lastpage
88
Abstract
In this paper, direct and inverse problems for a nonuniform LCRG line with internal transient voltage and current sources are considered. In the inverse source problem, the compact Green functions approach based on wave splitting is used to reconstruct the transient voltage and current sources from the transient signals that are received at the two endpoints of the nonuniform line. The location of the sources is assumed to be known or possible to estimate from the arrival times of the signals. The compact Green functions are convolution kernels in the map from the received signals (at the two endpoints) to the internal split voltages. The partial differential equations for the compact Green functions are given together with the initial and boundary conditions. The present approach to the inverse source problem is exact and noniterative. To obtain independent synthetic input data for the inverse problem, the direct problem is solved by a finite difference scheme. Numerical results for reconstructions using both clean and noisy data are presented
Keywords
Green´s function methods; convolution; finite difference time-domain analysis; inverse problems; partial differential equations; signal reconstruction; transient analysis; transmission line theory; arrival times; boundary conditions; clean data; compact Green functions approach; convolution kernels; current sources; finite difference scheme; initial conditions; internal sources; internal transient voltage sources; location; noisy data; nonuniform LCRG line; partial differential equations; received signals; reconstructions; time domain direct problems; time domain inverse problem; transient signals; wave splitting; Boundary conditions; Electromagnetic scattering; Finite difference methods; Green function; Helium; Inverse problems; Light scattering; Lightning; Partial differential equations; Voltage;
fLanguage
English
Journal_Title
Electromagnetic Compatibility, IEEE Transactions on
Publisher
ieee
ISSN
0018-9375
Type
jour
DOI
10.1109/15.584930
Filename
584930
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