Electromagnetic Modeling of Human Body Using High Performance Computing

Cho-Kuen Ng , Mark Beall , Lixin Ge , Sanghoek Kim , Ottmar Klaas , Ada Poon
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引用次数: 1

Abstract

Realistic simulation of electromagnetic wave propagation in the actual human body can expedite the investigation of the phenomenon of harvesting implanted devices using wireless powering coupled from external sources. The parallel electromagnetics code suite ACE3P developed at SLAC National Accelerator Laboratory is based on the finite element method for high fidelity accelerator simulation, which can be enhanced to model electromagnetic wave propagation in the human body. Starting with a CAD model of a human phantom that is characterized by a number of tissues, a finite element mesh representing the complex geometries of the individual tissues is built for simulation. Employing an optimal power source with a specific pattern of field distribution, the propagation and focusing of electromagnetic waves in the phantom has been demonstrated. Substantial speedup of the simulation is achieved by using multiple compute cores on supercomputers.

基于高性能计算的人体电磁建模
对电磁波在人体中的传播进行逼真的模拟,可以加快利用外部源耦合的无线供电来收获植入设备的现象的研究。SLAC国家加速器实验室开发的并行电磁学代码套件ACE3P是基于高保真加速器仿真的有限元方法,可以增强对电磁波在人体内传播的模拟。从人体幻影的CAD模型开始,以许多组织为特征,建立了代表单个组织复杂几何形状的有限元网格进行仿真。采用具有特定场分布模式的最佳电源,演示了电磁波在模体中的传播和聚焦。通过在超级计算机上使用多个计算核,实现了仿真的大幅加速。
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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