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Developing highly accurate and stable open-region electromagnetic simulations.

机译:开发高度准确和稳定的开放区域电磁仿真。

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摘要

In open-region electromagnetic simulations, the computational domain has to be truncated by an absorbing boundary condition (ABC) to model the infinite space. The performance of ABC strongly affects the accuracy of overall numerical simulation. For a class of advanced problems demanding high accuracy, such as in the modeling of medical detection devices, indoor wireless communication systems and remote sensing equipments, the received signal can be several orders of magnitude less than the transmitted signal. Furthermore, wide-band simulations require long running times for transients-based simulations, which increase the potential for instability. Therefore, accuracy and stability of absorbing boundary conditions are identified as critical in the design of numerical algorithms compatible with advanced applications.; In this work, theory of Concurrent Complementary Operators Method (C-COM) in both transient and frequency-domain numerical simulations is investigated. The C-COM is based on the basic premise of primary reflection cancellation. The C-COM applications to numerically derived ABCs in finite difference time-domain (FDTD) method, and to frequency domain ABCs in both finite difference frequency domain (FDFD) method and finite element method (FEM) method are developed. Extensive numerical experiments are conducted showing dramatic increase in accuracy when the C-COM is applied in comparison to previous published techniques.; Previous works that addressed the boundary instability arising from the application of the absorbing boundary condition used either the von Neumann analysis or the Gustafsson-Kreiss-Sundström (GKS) analysis. These earlier works, however, did not explain the inconsistencies that have been observed between the theoretical predictions and numerical experiments. This thesis presents a new stability analysis applicable to boundary conditions. This new analysis, referred to as Coupled Stability Analysis (CSA), is based on the fundamental assumption that absorbing boundary conditions are not perfect, and therefore, generate waves that reflect back into the computational domain. It is found that this analysis yields results that are fully consistent with those obtained from numerical experiments. As an important consequence of this analysis, and contrary to earlier conjectures, we show that Higdon's absorbing boundary condition of order 3 (and possibly, higher orders) to be unconditionally unstable.
机译:在开放区域电磁仿真中,计算域必须被吸收边界条件(ABC)截断以对无限空间建模。 ABC的性能严重影响整体数值模拟的准确性。对于诸如医学检测设备,室内无线通信系统和遥感设备的建模等要求高精度的一类高级问题,接收信号可能比发送信号小几个数量级。此外,宽带仿真对于基于瞬态的仿真需要较长的运行时间,这增加了不稳定的可能性。因此,在与高级应用程序兼容的数值算法设计中,吸收边界条件的准确性和稳定性被认为是至关重要的。在这项工作中,研究了瞬时和频域数值模拟中的并行互补算子方法(C-COM)的理论。 C-COM基于主反射消除的基本前提。开发了C-COM在有限差分时域(FDTD)方法中数值导出ABC以及在有限差分频域(FDFD)方法和有限元方法(FEM)方法中应用于频域ABC的应用。进行了广泛的数值实验,结果表明,与以前发布的技术相比,使用C-COM时,准确性大大提高。解决吸收边界条件引起的边界不稳定性的先前工作是使用冯·诺依曼分析或古斯塔夫松-克赖斯-松斯特罗姆(GKS)分析。但是,这些较早的著作并未解释理论预测和数值实验之间已经发现的不一致之处。本文提出了一种适用于边界条件的新的稳定性分析方法。这种称为耦合稳定性分析(CSA)的新分析基于以下基本假设:吸收边界条件并不完美,因此会产生反射回计算域的波。发现该分析产生的结果与从数值实验获得的结果完全一致。作为该分析的重要结果,与先前的猜想相反,我们证明了3级(甚至更高阶)的Higdon吸收边界条件是无条件不稳定的。

著录项

  • 作者

    Wu, Xin.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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