DocumentCode :
2791398
Title :
A new 3D FDTD multi-grid technique with dielectric-traverse capabilities
Author :
White, M.J. ; Iskander, M.F.
Author_Institution :
Utah Univ., Salt Lake City, UT, USA
Volume :
4
fYear :
1997
fDate :
13-18 July 1997
Firstpage :
2160
Abstract :
The finite-difference time-domain technique (FDTD) has become increasingly popular and is being used to model extremely complex and electrically large structures. These simulations are computationally demanding and often exceed available limits of computer resources. In this paper we present a FDTD sub-gridding technique that allows for increased resolution in regions of interest without increasing the overall computational requirements beyond the available resources. Furthermore, the formulation presented here is the first to allow for traversing dielectric boundaries using any integer refinement factor and the maximum Courant number. The technique presented here uses a weighted current value from the coarse region at the boundary between the fine- and coarse-grid regions to update the fine-region tangential fields on that boundary. The weighting function depends on the material properties and the relative position of the fine-region electric field within the current contour at the boundary. The complete formulation of this new technique is described and some results of simulation cases are presented to validate the accuracy and stability of the developed FDTD code. In some simulation examples, computer memory savings as high as 70 times what would have been necessary with a uniform-grid code were achieved. It is shown that errors less than 2 percent are achievable with coarse-to-fine-grid ratios exceeding 10. The new technique is expected to be used in simulating many electrically large and complex structures in the biomedical, microwave processing of materials, and cellular-communications areas.
Keywords :
computational complexity; dielectric waveguides; electromagnetic field theory; finite difference time-domain analysis; waveguide theory; 3D FDTD multi-grid technique; FDTD sub-gridding technique; air filled waveguide; biomedical area; cellular-communications; coarse region; coarse-grid regions; computational requirements; computer memory savings; dielectric-traverse capabilities; fine-grid regions; fine-region electric field; fine-region tangential fields; finite-difference time-domain technique; integer refinement factor; material properties; maximum Courant number; microwave material processing; simulations; traversing dielectric boundaries; weighted current value; weighting function; Biological materials; Computational modeling; Computer errors; Computer simulation; Dielectrics; Finite difference methods; Material properties; Microwave theory and techniques; Stability; Time domain analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Antennas and Propagation Society International Symposium, 1997. IEEE., 1997 Digest
Conference_Location :
Montreal, Quebec, Canada
Print_ISBN :
0-7803-4178-3
Type :
conf
DOI :
10.1109/APS.1997.625396
Filename :
625396
Link To Document :
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