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Application of embedded Frequency Selective Surfaces for structural health monitoring.

机译:嵌入式频率选择表面在结构健康监测中的应用。

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摘要

This thesis proposes the use of Frequency Selective Surfaces (FSSs) as an embedded structural health monitoring (SHM) sensor. FSSs are periodic arrays of conductive elements that filter certain frequencies of incident electromagnetic radiation. The behavior of this filter is heavily dependent on the geometry of the FSS and local environment. Therefore, by monitoring how this filtering response changes when the geometric or environmental changes take place, information about those changes may be determined. In previous works, FSS-based sensing has shown promise for sensing normal strain (a stretching or compressing geometrical deformation). This concept is extended in this thesis by investigating the potential of FSSs for sensing shear strain (a twisting deformation) and detection of delamination/disbond (defined as an air gap that develops due a separation between layered dielectrics, and herein referred to as delamination) in layered structures. For normal strain and delamination sensing, monitoring of the FSS's resonant frequency is shown to be a reliable indicator for each phenomena, as verified by full-wave simulation and measurement. For shear strain, simulation results indicate that an FSS may cross-polarize incident radiation when under shear strain. Additionally, FSS was applied as a normal and shear strain sensor within a steel-tube reinforced concrete column, where it was found to provide reliable normal strain detection (as compared to traditional strain sensors), but was not able to detect shear strain. Lastly, in order to improve the design procedure by reducing computation time, an algorithm was developed that rapidly approximates the response of an FSS to delamination through use of conformal mapping and existing frequency response calculations.
机译:本文提出使用频率选择性表面(FSS)作为嵌入式结构健康监测(SHM)传感器。 FSS是导电元件的周期性阵列,可过滤入射电磁辐射的某些频率。该过滤器的行为在很大程度上取决于FSS的几何形状和本地环境。因此,通过监视当几何或环境变化发生时该滤波响应如何变化,可以确定关于那些变化的信息。在先前的工作中,基于FSS的传感已显示出传感法向应变(拉伸或压缩几何变形)的希望。通过研究FSS在检测剪切应变(扭曲变形)和检测分层/剥离(定义为由于分层电介质之间分离而形成的气隙,在本文中称为分层)的潜力,可以扩展该概念。在分层结构中。对于全向应变和分层感测,通过全波仿真和测量可以证明,对FSS谐振频率的监控是每种现象的可靠指示。对于剪切应变,仿真结果表明,FSS在剪切应变下可能会使入射辐射交叉极化。另外,FSS用作钢管混凝土柱中的法向和剪切应变传感器,发现它可以提供可靠的法向应变检测(与传统的应变传感器相比),但无法检测到剪切应变。最后,为了通过减少计算时间来改善设计程序,开发了一种算法,该算法通过使用保形映射和现有频率响应计算来快速近似FSS对分层的响应。

著录项

  • 作者

    Pieper, Dustin Franklin.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Electrical engineering.;Engineering.;Electromagnetics.
  • 学位 M.E.
  • 年度 2016
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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