DocumentCode
1267002
Title
An FDTD/MoM hybrid technique for modeling complex antennas in the presence of heterogeneous grounds
Author
Huang, Zhubo ; Demarest, Kenneth R. ; Plumb, Richard G.
Author_Institution
Remote Sensing Lab., Kansas Univ., Lawrence, KS, USA
Volume
37
Issue
6
fYear
1999
fDate
11/1/1999 12:00:00 AM
Firstpage
2692
Lastpage
2698
Abstract
Calculating the current distribution and radiation patterns for ground-penetrating radar antennas is a challenging problem because of the complex interaction between the antenna, the ground, and any buried scatterer. Typically, numerical techniques that are well suited for modeling the antennas themselves are not well suited for modeling the heterogeneous grounds, and visa versa. For example the finite-difference time-domain (FDTD) technique is well suited for modeling fields in heterogeneous media, whereas the method of moments (MoM) is well suited for modeling complex antennas in free space. This paper describes a hybrid technique, based upon the equivalence principle, for calculating an antenna´s current distribution radiation pattern when the antenna is located near an air-ground interface. The original problem is decomposed into two coupled equivalent problems: one for the antenna geometry and the other for the ground geometry, with field information passing between them via a rapidly converging iterative procedure. The fields in each region may be modeled using numerical techniques best suited to them. Results for several test cases are presented, using FDTD to model the ground problem and MoM for the antenna problem, that demonstrate the accuracy of this hybrid technique
Keywords
antenna radiation patterns; buried object detection; finite difference time-domain analysis; geophysical techniques; iterative methods; method of moments; radar antennas; radar theory; remote sensing by radar; terrain mapping; terrestrial electricity; FDTD; MoM; antenna geometry; buried object detection; buried scatterer; complex antenna; electric current distribution; equivalence principle; finite-difference time-domain; geoelectric method; geology; geophysical measurement technique; ground geometry; ground penetrating radar; heterogeneous ground; hybrid method; iterative procedure; land surface; method of moments; modeling; radar antenna; radar remote sensing; radiation pattern; terrain mapping; terrestrial electricity; Antenna radiation patterns; Current distribution; Finite difference methods; Ground penetrating radar; Information geometry; Moment methods; Nonhomogeneous media; Radar antennas; Radar scattering; Time domain analysis;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.803416
Filename
803416
Link To Document