Numerical simulations and backscattering enhancement of electromagnetic waves from two-dimensional dielectric random rough surfaces with the sparse-matrix canonical grid method
- 1 July 1997
- journal article
- Published by Optica Publishing Group in Journal of the Optical Society of America A
- Vol. 14 (7) , 1515-1529
- https://doi.org/10.1364/josaa.14.001515
Abstract
Numerical simulations exhibiting backscattering enhancement of electromagnetic waves from two-dimensional dielectric random rough surfaces (three-dimensional scattering problem) are presented. The Stratton–Chu surface integral equation formulation is used with the method of moments to solve for the tangential and normal components of surface fields. The solution of the matrix equation is calculated efficiently by using the sparse-matrix canonical grid (SMCG) method. The accuracy of the solution is assessed by comparing the bistatic scattering coefficients obtained from the SMCG and the matrix inversion method. Also, a sufficient sampling rate is established with respect to the dielectric constant below the rough-surface boundary. Numerical simulations are illustrated for moderate rms heights of 0.2 and 0.5 electromagnetic wavelengths with rms slopes of 0.5 and 0.7. The magnitude of the relative permittivity ranges from 3 to 7. With use of the SMCG method, scattered fields from a surface area of 256 square wavelengths (98,304 surface unknowns) are found. For a rms height of 0.5 wavelength and a correlation length of 1.0 wavelength, backscattering enhancement is observed in both co-polarization and cross polarization. However, in the case in which the rms height is 0.2 wavelength and the correlation length is 0.6 wavelength, backscattering enhancement is observed in cross polarization only.Keywords
This publication has 20 references indexed in Scilit:
- The scattering of electromagnetic waves from a randomly rough 2D metallic surfaceOptics Communications, 1994
- Electromagnetic scattering from a two-dimensional, randomly rough, perfectly conducting surface: iterative methodsJournal of the Optical Society of America A, 1994
- Theoretical model of the shift of the Brewster angle on a rough surfaceOptics Letters, 1992
- Application of the finite element method to Monte Carlo simulations of scattering of waves by random rough surfaces: penetrable caseWaves in Random Media, 1991
- Electromagnetic scattering of waves by random rough surface: A finite‐difference time‐domain approachMicrowave and Optical Technology Letters, 1991
- Studies of scattering theory using numerical methodsWaves in Random Media, 1991
- Scattering by one- or two-dimensional randomly rough surfacesWaves in Random Media, 1991
- Monte Carlo calculations of speckle contrast from perfectly conductive rough surfacesOptics Communications, 1990
- The validity of the Kirchhoff approximation for rough surface scattering using a Gaussian roughness spectrumThe Journal of the Acoustical Society of America, 1988
- Numerical computation of scattering from a perfectly conducting random surfaceIEEE Transactions on Antennas and Propagation, 1978