CALCULATIONS OF BANDS AND BAND FIELD SOLUTIONS IN TOPOLOGICAL ACOUSTICS USING THE BROADBAND GREEN'S FUNCTION-KKR-MULTIPLE SCATTERING METHOD

L. Tsang, T. Liao, Shurun Tan
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引用次数: 9

Abstract

In this paper, we apply the BBGF-KKR-MST (Broadband Green’s function-KKR-Multiple Scattering Theory) to calculate Band Structures and Band Field Solutions in topological acoustics. A feature of BBGF is that the lattice Green’s functions are broadband, and the transformations to cylindrical waves are calculated rapidly for many frequencies for speedy calculation of the determinant of the KKR equation. For the two bands of interest, only 5 cylindrical waves are sufficient so that the dimension of the eigenvalue matrix equation is only 5. The CPU time requirement, including setup and using MATLAB on a standard laptop, is 5 milliseconds for a band eigenvalue. Using the eigenvalue and scattered field eigenvector, the field in the cell is calculated by higher order cylindrical waves. The exciting field of higher order cylindrical waves requires only 11 coefficients to represent the band field solutions in the cell. Comparisons are made with the results of the volume integral equation method and the commercial software COMSOL. The BBGF-KKR-MST method is significantly faster.
利用宽带格林函数- kkr -多重散射法计算拓扑声学中的频带和频带场解
本文应用BBGF-KKR-MST(宽带格林函数- kkr -多重散射理论)计算拓扑声学中的带结构和带场解。BBGF的一个特点是晶格格林函数是宽带的,并且在许多频率下快速计算圆柱波的变换,以便快速计算KKR方程的行列式。对于两个感兴趣的波段,只有5个柱面波是足够的,所以特征值矩阵方程的维数只有5。CPU时间要求,包括在标准笔记本电脑上设置和使用MATLAB,是5毫秒的波段特征值。利用本征值和散射场本征向量,利用高阶柱面波计算单元内的场。高阶圆柱波的激励场只需要11个系数就可以表示单元内的带场解。并与体积积分方程法和商用软件COMSOL的计算结果进行了比较。BBGF-KKR-MST方法明显更快。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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