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Phenomenology and Technology in Support of Sub-Terahertz Radar Systems

机译:支持地下太赫兹雷达系统的现象学和技术

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摘要

Sub-terahertz (Sub-THz) systems operate at the border of electronics and photonics, and have profited from the development of both fields. One of the main driving forces to develop such systems originates from security applications and, in particular, stand-off imaging of persons and hidden objects. Other important applications include very high speed, short distance, line-of-sight communication links, as well as short-range navigation radars used in vehicles and aircrafts. These systems have the potential to approach the resolution of optical imaging systems while operating under adverse conditions of weather.;Based on these applications and the potential for improved performance, the main theme of this thesis is to investigate and characterize the unique advantages as well as performance limitations of such systems working around 240 GHz in typical outdoor environments. The research has three main directions. The first direction is the development of novel scattering models that can accurately describe the propagation of electromagnetic waves in realistic communication channels. Specifically, a semi-numerical propagation model is developed to predict the attenuation as well as the back scattered power from 2D, very long, discrete, sparse random media. Such sparse random media can be used, in general, to model environments like rain, snow, or dust. The model is named Statistical S-matrix Approach for Wave Propagation in Spectral Domain, or SSWaP-SD in short. The advantage of this model is that it is a coherent one, and it can capture the multiple interactions of the electromagnetic wave with the scattering particles to all orders. Being a coherent model, it is then extended to study the degradation in imaging resolution for a Synthetic Aperture Radar (SAR) working in such rainy environments. The second direction is related to the characterization of different synthetic and artificial targets found in typical radar environments. In this part, a free-space, transmission-only, dielectric characterization setup is custom built to measure the dielectric constant of different fabric materials (wool, polyester, jeans, etc). Such measurements are important in the context of concealed object detection algorithms. In addition, a fully polarimetric, network analyzer-based instrumentation radar system working at 222 GHz is built to characterize the back scattering coefficient of different natural and synthetic rough surfaces found in typical outdoor driving environments like asphalt, concrete, grass, etc. The third direction of the research is related to the development of a major component of an electronic beam-steering radar which is the phase shifter. Specifically, a rectangular waveguide-based phase shifter is designed to provide 360 degree variable phase shift at 240 GHz. The proposed structure relies on mechanically actuating a tunable perfect magnetic conductor (PMC) inside a modified TE 10 rectangular waveguide. A prototype is manufactured using silicon micro-fabrication techniques and the PMC is actuated electrically using an external piezoelectric actuator. The proposed phase shifter shows very small insertion loss which is important for realizing high efficiency electronic beam-steering antennas at sub-THz frequencies.
机译:太赫兹(Sub-THz)系统在电子和光子学的边界运行,并从这两个领域的发展中受益。开发此类系统的主要动力之一来自安全应用程序,尤其是人员和隐藏物体的远距离成像。其他重要的应用包括超高速,短距离,视线通信链路以及用于车辆和飞机的短程导航雷达。这些系统有可能在恶劣的天气条件下运行时达到光学成像系统的分辨率。基于这些应用和提高性能的潜力,本论文的主要主题是研究和表征独特的优势以及在典型的室外环境中,此类系统的工作频率限制在240 GHz左右。研究有三个主要方向。第一个方向是新型散射模型的发展,该模型可以准确地描述电磁波在现实通信通道中的传播。具体来说,开发了一个半数值传播模型来预测2D,非常长,离散,稀疏随机介质的衰减以及反向散射功率。通常,这种稀疏的随机介质可用于模拟雨,雪或灰尘等环境。该模型被称为用于频谱域波传播的统计S矩阵方法,简称SSWaP-SD。该模型的优点是它是一个相干模型,它可以捕获电磁波与散射粒子到所有阶的多重相互作用。作为一个相干模型,它随后被扩展为研究在这样的雨天环境中工作的合成孔径雷达(SAR)的成像分辨率下降。第二个方向与典型雷达环境中不同合成目标和人造目标的表征有关。在此部分中,定制地构建了自由空间,仅传输的介电特性设置,以测量不同织物材料(羊毛,聚酯,牛仔裤等)的介电常数。这种测量在隐蔽物体检测算法的背景下很重要。此外,还建立了工作在222 GHz频率的基于全偏振,基于网络分析仪的仪器雷达系统,以表征在典型的室外驾驶环境(如沥青,混凝土,草等)中发现的不同天然和合成粗糙表面的反向散射系数。研究的方向与电子束转向雷达的主要部件即移相器的开发有关。具体而言,基于矩形波导的移相器被设计为在240 GHz频率下提供360度可变移相。所提出的结构依赖于机械地驱动改良的TE 10矩形波导内部的可调完美磁导体(PMC)。使用硅微制造技术制造原型,并使用外部压电致动器以电方式驱动PMC。所提出的移相器显示出非常小的插入损耗,这对于实现亚太赫兹频率的高效电子波束控制天线很重要。

著录项

  • 作者

    Ibrahim, Amr.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 212 p.
  • 总页数 212
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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