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Methods for Characterizing Electromagnetic Coupling Statistics in Complex Enclosures

机译:复杂外壳中电磁耦合统计特性的表征方法

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摘要

The random coupling model (RCM) can be used to characterize the electromagnetic coupling between multiple ports inside large complex enclosures. This statistical model combines nonrandom parameters of the enclosure and ports with a universally distributed random variable. A strong appeal of the RCM is the ability to characterize a wide variety of enclosure congurations with a limited number of parameters. However, in practical enclosures, these parameters can be difficult to obtain. In the first part of the dissertation, nonintrusive measurement methods are developed that use the time gating technique to acquire the nonrandom system parameters. Additionally, a problematic case of high loss antenna in enclosures is addressed. For the high loss antenna case, the radiation impedance is very difficult to obtain and difficult to use if obtained. For this reason, a modied random coupling model is formulated to make use of the radiation efficiency of the antennas. These methods have been successfully tested in multiple enclosures and ports. In the second part of the dissertation, the limitation of applicability of the RCM at lower frequencies is explored. The RCM assumes an overmoded cavity and that the random plane wave hypothesis applies. The breakdown of these assumptions is measured at lower frequencies and metrics are developed to determine the lowest usable frequency of the RCM. Lastly, the concepts of the RCM and the tools of microwave systems are used to experimentally validate the theory of regularization of quantum tunneling rates in chaotic cavities. The theory is based on the random plane wave hypothesis and can be studied in microwave cavities. The theory and the validating experiments are presented.
机译:随机耦合模型(RCM)可用于表征大型复杂机壳内多个端口之间的电磁耦合。该统计模型将机柜和端口的非随机参数与通用分布的随机变量结合在一起。 RCM的一个强大吸引力是能够使用有限数量的参数来表征各种外壳配置。但是,在实际的外壳中,可能很难获得这些参数。在本文的第一部分中,开发了使用时间门控技术获取非随机系统参数的非侵入式测量方法。另外,解决了外壳中高损耗天线的问题情况。对于高损耗天线情况,辐射阻抗非常难以获得,如果获得,则很难使用。因此,制定了一种改进的随机耦合模型,以利用天线的辐射效率。这些方法已在多个机箱和端口中成功测试。在论文的第二部分,探讨了RCM在较低频率下的适用性局限性。 RCM假设空腔过大,并且适用随机平面波假设。这些假设的分解是在较低的频率下测量的,并且制定了度量标准来确定RCM的最低可用频率。最后,RCM的概念和微波系统的工具被用于实验验证混沌腔中量子隧穿速率的正则化理论。该理论基于随机平面波假设,可以在微波腔中进行研究。提出了理论和验证实验。

著录项

  • 作者

    Addissie, Bisrat Demeke.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Electrical engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 103 p.
  • 总页数 103
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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