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Fast and accurate analysis of large-scale composite structures with the parallel multilevel fast multipole algorithm

机译:并行多级快速多极算法快速准确地分析大型复合结构

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摘要

Accurate electromagnetic modeling of complicated optical structures poses several challenges. Optical metamaterial and plasmonic structures are composed of multiple coexisting dielectric and/or conducting parts. Such composite structures may possess diverse values of conductivities and dielectric constants, including negative permittivity and permeability. Further challenges are the large sizes of the structures with respect to wavelength and the complexities of the geometries. In order to overcome these challenges and to achieve rigorous and efficient electromagnetic modeling of three-dimensional optical composite structures, we have developed a parallel implementation of the multilevel fast multipole algorithm (MLFMA). Precise formulation of composite structures is achieved with the so-called "electric and magnetic current combined-field integral equation." Surface integral equations are carefully discretized with piecewise linear basis functions, and the ensuing dense matrix equations are solved iteratively with parallel MLFMA. The hierarchical strategy is used for the efficient parallelization of MLFMA on distributed-memory architectures. In this paper, fast and accurate solutions of large-scale canonical and complicated real-life problems, such as optical metamaterials, discretized with tens of millions of unknowns are presented in order to demonstrate the capabilities of the proposed electromagnetic solver. © 2013 Optical Society of America.
机译:对复杂的光学结构进行准确的电磁建模会带来一些挑战。光学超材料和等离子体结构由多个共存的介电和/或导电部分组成。这种复合结构可具有不同的电导率和介电常数值,包括负介电常数和磁导率。进一步的挑战是结构相对于波长的大尺寸和几何形状的复杂性。为了克服这些挑战并实现三维光学复合结构的严格有效的电磁建模,我们开发了多级快速多极子算法(MLFMA)的并行实现。通过所谓的“电磁电流组合场积分方程”可以精确地形成复合结构。使用分段线性基函数仔细离散表面积分方程,并使用并行MLFMA迭代求解随后的密集矩阵方程。分层策略用于在分布式内存体系结构上有效地并行化MLFMA。为了证明所提出的电磁解算器的功能,本文提出了快速,准确的解决大规模经典和复杂的实际问题(例如光学超材料)的方法,这些问题离散化了数千万个未知数。 ©2013美国眼镜学会。

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    Ergül Ö.; Gürel, L.;

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  • 年度 2013
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