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Electromagnetic metamaterials for antenna applications.

机译:天线应用的电磁超材料。

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摘要

This dissertation examines the use of artificial structured materials -- known as meta-materials -- in two antenna applications in which conventional dielectric materials are otherwise used. In the first application, the use of metamaterials to improve the impedance matching of planar phased array antennas over a broad range of scan angles is explored. A phased array antenna is composed of an array of antenna elements and enables long-distance signal propagation by directional radiation. The direction of signal propagation is defined as the scan angle. The power transmission ratio of a phased array is the ratio of the radiated power to the input power, and depends on the scan angle. The variation in the power transmission ratio is due to the different mutual coupling contributions between antenna elements at different scan angles. An optimized stack of dielectric layers, known as a wide-angle impedance matching layer (WAIM), is used to optimize the power transmission ratio profile over a broad range of scan angles. In this work, the use of metamaterials to design anisotropic WAIMs with access to a larger range of constitutive parameters -- including magnetic permeability -- to offer an improved power transmission ratio at a broad range of scan angles is investigated.;In the second antenna application, a strategy to create maximally transmissive and minimally reflective electromagnetic radome materials using embedded metamaterial inclusions is introduced. A radome is a covering used to protect an antenna from weather elements or provide structural function such as the prevention of aero-dynamic drag. A radome should be made from a fully transparent and non-refractive material so that radiated fields from and to the enclosed antenna are not disrupted. The aim of this research was to demonstrate that embedded metamaterial inclusions can be used to isotropically adjust the dielectric properties of a composite material to a desired value. This strategy may lead to the creation of a structural material with electromagnetic properties close to air, thus reducing the detrimental scattering effects often associated with conventional radome materials.;Chapter 1 introduces the concept of metamaterials and discusses the use of sub-wavelength metallic structures to artificially engineer constitutive parameters such as permeability of permittivity. In Chapter 2, the analytical formulations that enable the characterization of the transmission performance of a planar phased array covered with anisotropic impedance matching layers are developed. Chapter 3 discusses the design rules that must govern the design parameters of anisotropic WAIMs realizable using metamaterials, and also presents examples of anisotropic impedance matching layers that provide a maximum power transmission ratio for most scan angles. In addition, numerical and experimental results on a metamaterial placed over a phased array are presented. In Chapter 4, the feasibility of using metamaterials to realize a minimally transparent and fully transmissive radome material is numerically investigated. In Chapter 5, experimental results that corroborate earlier numerical simulation results are analyzed.
机译:本论文研究了人造结构材料(称为超常材料)在两种天线应用中的使用情况,在这些应用中,否则将使用常规的介电材料。在第一个应用中,探索了使用超材料来改善平面相控阵天线在较大扫描角度范围内的阻抗匹配。相控阵天线由天线元件阵列组成,并能够通过定向辐射进行长距离信号传播。信号传播的方向定义为扫描角。相控阵的功率传输比是辐射功率与输入功率之比,并取决于扫描角度。功率传输比的变化是由于天线元件之间在不同扫描角度下的互耦贡献不同所致。优化的介电层堆栈,即广角阻抗匹配层(WAIM),用于在宽范围的扫描角度上优化功率传输比分布。在这项工作中,研究了使用超材料来设计各向异性WAIM,并可以访问更大范围的本构参数-包括磁导率-以在较宽的扫描角度范围内提供改善的功率传输比。在应用中,介绍了一种使用嵌入的超材料夹杂物创建最大透射率和最小反射率的电磁天线罩材料的策略。天线罩是用于保护天线不受天气因素影响或提供结构功能(例如防止空气阻力)的覆盖物。天线罩应由完全透明且无折射的材料制成,以免干扰到封闭天线的辐射场。这项研究的目的是证明嵌入的超材料夹杂物可用于各向同性地将复合材料的介电性能调节至所需值。这种策略可能会导致创建一种电磁特性接近空气的结构材料,从而减少通常与常规天线罩材料相关的有害散射效应。;第1章介绍了超材料的概念,并讨论了亚波长金属结构的使用人工设计本构参数,例如介电常数。在第2章中,开发了能够表征覆盖有各向异性阻抗匹配层的平面相控阵的传输性能的分析公式。第3章讨论了必须控制可使用超材料实现的各向异性WAIM的设计参数的设计规则,并介绍了各向异性阻抗匹配层的示例,该层为大多数扫描角度提供最大功率传输比。另外,还给出了放置在相控阵上的超材料的数值和实验结果。在第4章中,对使用超材料实现最小透明和完全透射的天线罩材料的可行性进行了数值研究。在第5章中,分析了证实较早的数值模拟结果的实验​​结果。

著录项

  • 作者

    Sajuyigbe, Adesoji.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Engineering Electronics and Electrical.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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