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An efficient algorithm for the generalized Foldy-Lax formulation

delete2013-02-01
delete15
PRE
AI
H
Huang, Kai
P
Peijun Li *
H
Hongkai Zhao
DOI:10.1016/j.jcp.2012.09.027delete
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Abstract

Abstract

En 中文
Consider the scattering of a time-harmonic plane wave incident on a two-scale heterogeneous medium, which consists of scatterers that are much smaller than the wavelength and extended scatterers that are comparable to the wavelength. In this work we treat those small scatterers as isotropic point scatterers and use a generalized Foldy-Lax formulation to model wave propagation and capture multiple scattering among point scatterers and extended scatterers. Our formulation is given as a coupled system, which combines the original Foldy-Lax formulation for the point scatterers and the regular boundary integral equation for the extended obstacle scatterers. The existence and uniqueness of the solution for the formulation is established in terms of physical parameters such as the scattering coefficient and the separation distances. Computationally, an efficient physically motivated Gauss-Seidel iterative method is proposed to solve the coupled system, where only a linear system of algebraic equations for point scatterers or a boundary integral equation for a single extended obstacle scatterer is required to solve at each step of iteration. The convergence of the iterative method is also characterized in terms of physical parameters. Numerical tests for the far-field patterns of scattered fields arising from uniformly or randomly distributed point scatterers and single or multiple extended obstacle scatterers are presented. Published by Elsevier Inc.
Keywords:
Foldy-Lax formulation
Point scatterers
Obstacle scattering
Boundary integral equation
Helmholtz equation

Journal

Journal of Computational Physics cover
Journal of Computational Physics
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3.8
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1.5W
Citations:
7.4W

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State University System of Florida cover
State University System of Florida
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Purdue University System
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Purdue University
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