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FDTD-based wave co-simulation model for hybrid electromagnetic systems.

机译:基于FDTD的混合电磁系统波协同仿真模型。

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摘要

In high-frequency ranges, the present electronic design automation software has limited capabilities to model electromagnetic (EM) systems where there are strong field effects influencing their characteristics. In this situation, a full-wave simulation tool is desired for the analysis and design of high-speed and non-linear EM systems. It is necessary to explore the interaction between the field and electronic components during a transient process when field effects are more significant. The finite-difference time-domain (FDTD) technique receives growing attention in the area of EM system analysis and simulation due to its simplicity, flexibility and robustness. It is a full-wave simulation method that solves the Maxwell's equations in time domain directly. Decades of research and development and rapid growth in computer capability have built up a firm foundation for FDTD techniques to be applied to many practical problems.;Based on FDTD, this dissertation develops a stable co-simulation method to perform a full-wave simulation of a hybrid EM system consisting of lumped elements and distributed structures. In this method, FDTD is used to solve the EM field problems associated with distributed structures, and a circuit simulator solves the response of lumped elements. A field-circuit model proposed in the dissertation serves as the interface between the two simulation tools. Compared with previous methods, the FDTD method based on this model is much more flexible and stable for linear and nonlinear lumped elements under both small and large signal conditions. Because of its flexibility and robustness, this model is a promising approach to integrate a field solver and a circuit simulator in the simulations of practical EM systems.;In order to improve the simulation accuracy, some problems related to FDTD simulation are studied. Based on the numerical dispersion in homogeneous media uniform grids, the FDTD numerical reflection and transmission on the boundary of media, which are discritized by a non-uniform grid, are investigated. This investigation provides for the first time an estimation of FDTD numerical error in inhomogeneous media and non-uniform grids. Perfectly matched layer (PML) was previously utilized the homogeneous media or uniform grids. This dissertation extends the PML boundary conditions to handle the inhomogeneous media and non-uniform grid. Techniques extracting S parameters from FDTD simulation are also discussed.;Two and three-dimensional co-simulation software, written in C++, has be derived, developed and verified in this dissertation. The simulation results agree well with results from other simulation methods, like SPICE, for many test circuits. Taking data sampling and interpolation into account, simulation results generally fit well to measurement and other simulation results for complicated three-dimensional structures.;With further improvements of the FDTD technique and circuit simulation, field-circuit co-simulation model will widen its application to general EM systems.
机译:在高频范围内,当前的电子设计自动化软件具有有限的能力来建模电磁(EM)系统,其中存在影响其特性的强场效应。在这种情况下,需要一种全波仿真工具来分析和设计高速和非线性EM系统。当场效应更为显着时,有必要在瞬态过程中探索场与电子元件之间的相互作用。时域有限差分(FDTD)技术因其简单,灵活和健壮性而在EM系统分析和仿真领域受到越来越多的关注。这是一种全波仿真方法,可以直接在时域中求解麦克斯韦方程。数十年来的研究和开发以及计算机能力的快速增长为FDTD技术应用于许多实际问题奠定了坚实的基础。基于FDTD,本论文开发了一种稳定的联合仿真方法,可以对FDTD进行全波仿真。由集总元素和分布式结构组成的混合EM系统。在这种方法中,FDTD用于解决与分布式结构相关的EM场问题,而电路模拟器则用于解决集总元件的响应。本文提出的现场电路模型是两个仿真工具之间的接口。与以前的方法相比,基于该模型的FDTD方法在大小信号条件下对于线性和非线性集总元件都更加灵活和稳定。由于其灵活性和鲁棒性,该模型是在实际的EM系统仿真中将场求解器和电路仿真器集成在一起的有前途的方法。为了提高仿真精度,研究了与FDTD仿真相关的一些问题。基于均匀介质均匀网格中的数值色散,研究了非均匀网格对介质边界上FDTD的数值反射和透射。这项研究首次提供了在非均匀介质和非均匀网格中FDTD数值误差的估计。完美匹配层(PML)以前是使用均质介质或均匀网格。本文扩展了PML边界条件,以处理非均匀介质和非均匀网格。本文还讨论了从FDTD仿真中提取S参数的技术。本文导出,开发和验证了用C ++编写的二维和三维协同仿真软件。对于许多测试电路,仿真结果与其他仿真方法(例如SPICE)的结果非常吻合。考虑到数据采样和内插,仿真结果通常非常适合复杂的三维结构的测量和其他仿真结果。;随着FDTD技术和电路仿真的进一步改进,现场-电路协同仿真模型将其应用范围扩大到通用EM系统。

著录项

  • 作者

    Li, Tong.;

  • 作者单位

    New Jersey Institute of Technology.;

  • 授予单位 New Jersey Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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