DocumentCode
1940703
Title
Resistive treatment of edges in MLFMA LGA scattering from finite conductivity 2D surfaces
Author
Zhao, Zhiqin ; West, James C.
Author_Institution
Electr. & Comput. Eng., Oklahoma State Univ., Stillwater, OK, USA
Volume
4
fYear
2002
fDate
2002
Firstpage
264
Abstract
Several approaches have been used to reduce or eliminate the effects of artificial surface-truncation edges on the numerically calculated scattering from rough surfaces. Some approaches become quite expensive at low grazing angles (LGA). We consider the suppression of edge effects using resistive loading in the numerical scattering from two-dimensionally rough surfaces. The multi-level fast multipole approach (MLFMA) (see Song, J.M. and Chew, W.C., Microwave and Optical Technology Letters, vol.10, no.1, p.14-19, 1995) is applied to two-dimensional surfaces that approximate breaking water waves. Two different resistive-loading schemes are considered. In the first, the loading is applied only to the front and back edges (in range) of the wave, and the azimuthal edges are suppressed using a Gaussian illumination window. In the second, the resistive loading is applied to both the range and azimuthal edges. In both cases, where applicable, the results are verified through a comparison with the results of the 1D MM/GTD approach (see West, J.C., IEEE Trans. on GRS, vol.38, no.4, p.1609-16, 2000).
Keywords
electromagnetic wave scattering; radar cross-sections; rough surfaces; 2D surfaces; breaking water waves; edge effect suppression; finite conductivity; low grazing angle scattering; multi-level fast multipole approach; radar cross-section; resistive loading; rough surfaces; surface-truncation edges; Azimuth; Conductivity; Lighting; Radar scattering; Rough surfaces; Sea surface; Surface roughness; Surface treatment; Surface waves; Testing;
fLanguage
English
Publisher
ieee
Conference_Titel
Antennas and Propagation Society International Symposium, 2002. IEEE
Print_ISBN
0-7803-7330-8
Type
conf
DOI
10.1109/APS.2002.1016974
Filename
1016974
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