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A near-zone to far-zone transformation process utilizing a formulated eigenfunction expansion of spheroidal wave-harmonics.

机译:利用球形波谐波的本征函数展开式的近区到远区转换过程。

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摘要

In the field of antenna design and analysis, often the need arises to numerically extrapolate the far-zone performance of a radiating structure from its known (or assumed known) near-zone electromagnetic field. Mathematical processes developed to accomplish such a task are known in the literature as near-zone to far-zone transformations (NZ-FZTs) as well as near-field far-field (NF-FF) transformations. These processes make use of sampled near-zone field quantities along some virtual surface, viz., the transformation surface, that surrounds the radiating structure of interest. Depending upon the application, samples of the required near-zone field quantities are supplied via analytical, empirical, or computational means.; Over the years, a number of NZ-FZT processes have been developed to meet the demands of many applications. In short, their differences include, but are not limited to, the following: (1) the size and shape of the transformation surface, (2) the required near-zone field quantities and how they are sampled, (3) the computational methodology used, and (4) the imbedding of various application-driven features. Each process has its pros and cons depending upon its specific application as well as the type of radiation structure under consideration.; In this dissertation we put forth a new and original NZ-FZT process that allows the transformation surface along which the near-zone is sampled to be spheroidal in shape: namely a prolate or oblate spheroid. Naturally, there are benefits gained in doing so. Our approach uses a formulated eigenfunction expansion of spheroidal wave-harmonics to develop two distinct, yet closely related, NZ-FZT algorithms for each type of spheroidal transformation surface. The process only requires knowledge of the E-field along the transformation surface and does not need the corresponding H-field.; Given is a systematic exposition of the formulation, implementation, and verification of the newly developed NZ-FZT process. Accordingly, computer software is developed to implement both NZ-FZT algorithms. In the validation process, analytical and empirical radiation structures serve as computational benchmarks. Numerical models of both benchmark structures are created by integrating the software with a field solver, viz., a finite-difference time-domain (FDTD) code. Results of these computer models are compared with theoretical and empirical data to provide additional validation.
机译:在天线设计和分析领域,经常需要从其已知的(或假定的已知的)近区电磁场在数值上推断辐射结构的远区性能。为完成此任务而开发的数学过程在文献中称为近区到远区转换(NZ-FZT)以及近场远场(NF-FF)转换。这些过程利用了围绕某个虚拟表面(即转换表面)的采样近场场量,该虚拟表面围绕着感兴趣的辐射结构。根据应用,通过分析,经验或计算手段提供所需的近区场量的样品。多年来,已开发出许多NZ-FZT工艺来满足许多应用的需求。简而言之,它们的差异包括但不限于以下各项:(1)转换表面的大小和形状;(2)所需的近区场量及其采样方式;(3)计算方法(4)嵌入各种应用程序驱动的功能。每个过程都有其优缺点,取决于其特定的应用以及所考虑的辐射结构的类型。在本文中,我们提出了一种新的原始NZ-FZT工艺,该工艺允许沿其采样近区的转换表面呈椭球形,即长椭球形或扁球形。当然,这样做会带来好处。我们的方法使用球形波谐波的本征函数展开来为两种类型的球面转换曲面开发两种截然不同但密切相关的NZ-FZT算法。该过程仅需要沿变换表面的电场的知识,而不需要相应的磁场。本文对新开发的NZ-FZT流程的制定,实施和验证进行了系统的阐述。因此,开发了计算机软件以实现两种NZ-FZT算法。在验证过程中,分析和经验辐射结构充当计算基准。通过将软件与现场求解器(即有限差分时域(FDTD)代码)集成,可以创建两个基准结构的数值模型。将这些计算机模型的结果与理论和经验数据进行比较,以提供进一步的验证。

著录项

  • 作者

    Ricciardi, Gerald F.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 325 p.
  • 总页数 325
  • 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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