Title :
The Mixed-Order BCGS-FFT Method for the Scattering of Three-Dimensional Inhomogeneous Anisotropic Magnetodielectric Objects
Author :
Zhiru Yu ; Wenji Zhang ; Qing Huo Liu
Author_Institution :
Dept. of Electr. & Comput. Eng., Duke Univ., Durham, NC, USA
Abstract :
This paper presents the first FFT-based fast volume integral equation solver for inhomogeneous anisotropic magnetodielectric objects. The volume integral equations are formulated by employing mixed-order basis functions that expand the flux densities and vector potentials in the coupled field integral equations in terms of different sets of basis functions with different orders. Volumetric roof-top basis functions are used for flux densities whereas second-order curl conforming basis functions are used for vector potentials. A fast volume integral equations solver namely the BCGS-FFT method is then applied to accelerate the solution of this mixed-order weak-form formulation. Examples show that the mixed-order BCGS-FFT method has high accuracy compared to both analytical and numerical solutions. Examples also show the mixed-order BCGS-FFT method has high computational efficiency compared to commercial software.
Keywords :
dielectric materials; fast Fourier transforms; inhomogeneous media; magnetic anisotropy; magnetic field integral equations; magnetic flux; magnetic materials; 3D inhomogeneous anisotropic magnetodielectric object; FFT-based fast volume integral equation solver; coupled field integral equations; flux density; mixed order BCGS-FFT method; mixed order basis function; second-order curl conforming basis function; vector potential; volumetric roof-top basis function; Antennas; Integral equations; Nonhomogeneous media; Permittivity; Perpendicular magnetic anisotropy; Scattering; Anisotropic media; Conjugate gradient methods; Dielectric materials; Integral equations; Magnetic materials; Scattering; conjugate gradient methods; dielectric materials; integral equations; magnetic materials; scattering;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2496104