使用chebyshevf - based Nyström边界积分方程方法的h -矩阵加速直接矩阵求解麦克斯韦方程组

IF 3.6 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Jin Hu;Emrah Sever;Omid Babazadeh;Ian Jeffrey;Vladimir Okhmatovski;Constantine Sideris
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引用次数: 0

摘要

采用高阶切比舍夫边界积分方程(CBIE)方法的h矩阵加速直接求解器已经制定,测试和描述了高对比度介电材料和电大完美电导体物体的性能。由于CBIE通过全局变量变化方法处理奇异点,因此与局部校正Nyström (LCN)方法相比,CBIE的矩阵填充性能对于小型到中等规模的问题来说是快速的。然而,在电大散射问题的情况下,当使用直接求解方法时,矩阵填充和因式分解仍然支配着求解时间。为了解决这一问题,采用了h矩阵框架,有效地解决了这一挑战,并将CBIE建立为求解具有恶劣条件矩阵方程的散射问题的竞争性高阶方法。通过大量的数值结果证明了这种方法的有效性,展示了它对电学大、接近物理共振或具有大介电常数的问题的鲁棒性。通过考虑复杂CAD模型中的各种散射实例,证明了该求解器处理任意几何形状的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
H-Matrix Accelerated Direct Matrix Solver for Maxwell’s Equations Using the Chebyshev-Based Nyström Boundary Integral Equation Method
An H-matrix accelerated direct solver employing the high-order Chebyshev-based Boundary Integral Equation (CBIE) method has been formulated, tested, and profiled for performance on high contrast dielectric materials and electrically large perfect electric conductor objects. The matrix fill performance of the CBIE proves to be fast for small to moderately sized problems compared to its counterparts, e.g., the locally corrected Nyström (LCN) method, due to the way it handles the singularities by means of a global change of variable method. However, in the case of electrically large scattering problems, the matrix fill and factorization still dominate the solution time when using a direct solution approach. To address this issue, an H-Matrix framework is employed, effectively resolving the challenge and establishing the CBIE as a competitive high-order method for solving scattering problems with poorly conditioned matrix equations. The efficacy of this approach is demonstrated through extensive numerical results, showcasing its robustness to problems that are electrically large, near physical resonances, or that have large dielectric permittivities. The capability of the proposed solver for handling arbitrary geometries is also demonstrated by considering various scattering examples from complex CAD models.
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来源期刊
CiteScore
6.50
自引率
12.50%
发文量
90
审稿时长
8 weeks
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