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Experimental investigation of time -reversal techniques using electromagnetic waves.

机译:使用电磁波的时间反转技术的实验研究。

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摘要

Time-reversal is a novel method to utilize the multipath components in a cluttered environment for super-resolution focusing. The work studied in this thesis is based on experimental investigation of time-reversal methods using electromagnetic waves. The ultimate aim is to demonstrate by experiments the gains achieved by electromagnetic time-reversal techniques over conventional radar methods to focus radar beams, to null the clutter environment and finally to detect targets in highly scattering environments. To that end, the main principles of time-reversal systems have been studied and the clutter channel has been analyzed to assess the feasibility of time-reversal methods in a laboratory environment. We have demonstrated physical time-reversal focusing in the frequency domain as well as in the time-domain. Time-domain experiments have been conducted in a cavity channel where we can show focusing and nulling by using a relatively small bandwidth compared to free space. In a complex lab environment, we have demonstrated computational time-reversal focusing and nulling using 6 antennas and a two dimensional grid that has 100 points on it. The results have shown that the time-reversal system performance depends on three parameters. These are bandwidth, multipath components in the medium, and the number of antennas on the time-reversal array. We have characterized a scattering environment where we have dielectric rods and copper pipes as scattering objects. The experiments have been conducted starting with a simple scenario and extended to increasingly complex propagation environments, with a progressively larger number of scatterers placed in the channel. The important parameters have been extracted and using simulations we have extended the results to larger scattering environments than permitted in the laboratory. We have worked on the detection performance of a time-reversal system and compared it with conventional detection methods. The matched filter deteriorates as we increase the complexity of the medium. On the contrary, time-reversal has better performance as the scattering environment gets more complicated. We have described experimental results using a multiple antenna detection scheme that is based on clutter nulling. The experimental results show that using time-reversal techniques, we can improve the signal-to-noise ratio of the return-echo due to the target compared to conventional change-detection radar.
机译:时间反转是一种在杂乱环境中利用多径分量进行超分辨率聚焦的新颖方法。本文研究的工作是基于利用电磁波进行时间反转的实验研究。最终目的是通过实验证明通过电磁时间反转技术在常规雷达方法上所获得的增益,从而聚焦雷达波束,使杂波环境置零并最终在高度散射的环境中检测目标。为此,研究了时间反转系统的主要原理,并分析了杂波通道,以评估实验室环境中时间反转方法的可行性。我们已经展示了物理时间反转集中在频域以及时域。在腔通道中进行了时域实验,与自由空间相比,我们可以通过使用相对较小的带宽来显示聚焦和置零。在复杂的实验室环境中,我们已经演示了使用6根天线和2个带有100个点的二维网格进行的时间逆向聚焦和归零。结果表明,时间反转系统的性能取决于三个参数。这些是带宽,介质中的多径分量以及时间反向阵列上的天线数量。我们已经描述了一个散射环境,在该环境中,有电介质棒和铜管作为散射对象。实验从一个简单的场景开始,并扩展到越来越复杂的传播环境,并在通道中放置了越来越多的散射体。提取了重要的参数,并使用模拟将结果扩展到比实验室允许的更大的散射环境。我们已经研究了时间反转系统的检测性能,并将其与常规检测方法进行了比较。随着我们增加介质的复杂度,匹配的滤波器会变差。相反,随着散射环境变得更加复杂,时间反转具有更好的性能。我们已经使用基于杂波归零的多天线检测方案描述了实验结果。实验结果表明,与传统的变化检测雷达相比,使用时间反转技术,可以提高目标反射回波的信噪比。

著录项

  • 作者

    Cepni, Ahmet Gurkan.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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