DocumentCode
1302981
Title
On the discretization of the integral equation describing scattering by rough conducting surfaces
Author
Toporkov, Jakov V. ; Marchand, Roger T. ; Brown, Gary S.
Author_Institution
Bradley Dept. of Electr. Eng., Virginia Polytech. Inst. & State Univ., Blacksburg, VA, USA
Volume
46
Issue
1
fYear
1998
fDate
1/1/1998 12:00:00 AM
Firstpage
150
Lastpage
161
Abstract
Numerical simulations of scattering from one-dimensional (1-D) randomly rough surfaces with Pierson-Moskowitz (P-M) spectra show that if the kernel (or propagator) matrix with zeros on its diagonal is used in the discretized magnetic field integral equation (MFIE), the results exhibit an excessive sensitivity to the current sampling interval, especially for backscattering at low-grazing angles (LGAs). Though the numerical results reported in this paper were obtained using the method of ordered multiple interactions (MOMI), a similar sampling interval sensitivity has been observed when a standard method of moments (MoM) technique is used to solve the MFIE. A subsequent analysis shows that the root of the problem lies in the correct discretization of the MFIE kernel. We found that the inclusion of terms proportional to the surface curvature (regarded by some authors as an additional correction) in the diagonal of the kernel matrix virtually eliminates this sampling sensitivity effect. By reviewing the discretization procedure for MFIE we show that these curvature terms indeed must be included in the diagonal in order for the propagator matrix to be represented properly. The recommended current sampling interval for scattering calculations with P-M surfaces is also given
Keywords
backscatter; electromagnetic wave scattering; integral equations; magnetic fields; numerical analysis; 1D randomly rough surfaces; Pierson-Moskowitz spectra; backscattering; current sampling interval; electromagnetic scattering; integral equation discretization; kernel matrix; low-grazing angles; magnetic field integral equation; method of moments; method of ordered multiple interactions; numerical simulations; propagator matrix; rough conducting surface scattering; surface curvature; Backscatter; Integral equations; Kernel; Magnetic fields; Moment methods; Numerical simulation; Rough surfaces; Sampling methods; Scattering; Surface roughness;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/8.655462
Filename
655462
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