DocumentCode :
290916
Title :
Advances in finite-difference time-domain (FD-TD) numerical modeling techniques for Maxwell´s equations
Author :
Taflove, A.
Author_Institution :
Northwestern Univ., Evanston, IL, USA
fYear :
1995
fDate :
4-7 Apr 1995
Firstpage :
53
Abstract :
Prompted to a significant degree by perceived limitations of the method of moments, there has been an explosion of interest in the engineering electromagnetic wave community in direct solutions of the fundamental Maxwell´s curl equations on space grids in either the time or frequency domain. The finite-difference time domain (FD-TD) method introduced by Yee (1966), has received perhaps the most attention during this period because of its simplicity and robustness. Advances in FD-TD modeling techniques have further improved its modeling accuracy and expanded its range of applications. These advances are succinctly summarized under the sections: 1. Berenger perfectly matched layer absorbing boundary condition; 2. Dispersive, nonlinear, and gain material models; 3. Active circuit device models; 4. Planar unstructured meshes; and 5. Software development for massively parallel computers
Keywords :
Maxwell equations; boundary-value problems; electromagnetic wave absorption; finite difference time-domain analysis; mesh generation; Berenger perfectly matched layer absorbing boundary condition; Maxwell´s equations; active circuit device models; curl equations; dispersive models; finite-difference time-domain numerical modeling; gain material models; massively parallel computing; nonlinear models; planar unstructured meshes; software development; space grids;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Antennas and Propagation, 1995., Ninth International Conference on (Conf. Publ. No. 407)
Conference_Location :
Eindhoven
Print_ISBN :
0-85296-637-7
Type :
conf
DOI :
10.1049/cp:19950258
Filename :
396192
Link To Document :
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