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Synthetic aperture radar-based techniques and reconfigurable antenna design for microwave imaging of layered structures.

机译:基于合成孔径雷达的技术和可重构天线设计,用于分层结构的微波成像。

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摘要

In the past several decades, a number of microwave imaging techniques have been developed for detecting embedded objects (targets) in a homogeneous media. New applications such as nondestructive testing of layered composite structures, through-wall and medical imaging require more advanced imaging systems and image reconstruction algorithms (post-processing) suitable for imaging inhomogeneous (i.e., layered) media.;Currently-available imaging algorithms are not always robust, easy to implement, and fast. Synthetic aperture radar (SAR) techniques are some of the more prominent approaches for image reconstruction when considering low loss and homogeneous media. To address limitations of SAR imaging, when interested in imaging an embedded object in an inhomogeneous media with loss, two different methods are introduced, namely; modified piecewise SAR (MPW-SAR) and Wiener filter-based layered SAR (WL-SAR).;From imaging system hardware point-of-view, microwave imaging systems require suitable antennas for signal transmission and data collection. A reconfigurable antenna which its characteristics can be dynamically changed provide significant flexibility in terms of beam-forming, reduction in unwanted noise and multiplicity of use including for imaging applications. However, despite these potentially advantageous characteristics, the field of reconfigurable antenna design is fairly new and there is not a methodical design procedure. This issue is addressed by introducing an organized design method for a reconfigurable antenna capable of operating in several distinct frequency bands. The design constraints (e.g., size and gain) can also be included. Based on this method, a novel reconfigurable coplanar waveguide-fed slot antenna is designed to cover several different frequency bands while keeping the antenna size as small as possible.
机译:在过去的几十年中,已经开发了许多微波成像技术来检测均匀介质中的嵌入物体(目标)。分层复合结构的无损检测,穿墙和医学成像等新应用需要适用于对不均匀(即分层)介质成像的更高级的成像系统和图像重建算法(后处理)。始终健壮,易于实施且快速。当考虑低损耗和均匀介质时,合成孔径雷达(SAR)技术是图像重建的一些更为突出的方法。为了解决SAR成像的局限性,当有兴趣对具有损耗的非均匀介质中的嵌入式对象进行成像时,引入了两种不同的方法,即:改进的分段SAR(MPW-SAR)和基于Wiener滤波器的分层SAR(WL-SAR)。从成像系统硬件的角度来看,微波成像系统需要合适的天线来进行信号传输和数据收集。可动态改变其特性的可重构天线在波束形成,减少不必要的噪声以及包括成像应用在内的多种用途方面提供了显着的灵活性。然而,尽管具有这些潜在的有利特征,但是可重构天线设计领域还是相当新的,并且没有系统的设计程序。通过为可在几个不同的频段工作的可重构天线引入一种有组织的设计方法,可以解决此问题。还可以包括设计约束(例如,尺寸和增益)。基于此方法,设计了一种新颖的可重构共面波导馈电缝隙天线,以覆盖几个不同的频段,同时保持天线尺寸尽可能小。

著录项

  • 作者

    Fallahpour, Mojtaba.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Engineering Electronics and Electrical.;Remote Sensing.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 218 p.
  • 总页数 218
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:53

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