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Time reversal microwave methods for solving inverse problems in non-destructive evaluation.

机译:时间逆向微波方法,用于解决无损评估中的反问题。

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摘要

Non-Destructive Evaluation (NDE) methods are use to inspect a material and components without damaging their usefulness. NDE is used in different industries to inspect the reliability of critical components, product quality, or detect material failure. The techniques used in NDE range from simple visual methods to microwaves, ultrasound, x-rays, and thermography. The key problem in NDE is the inverse problem which involves reconstructing defect profiles using the information in the output signal of the system. Inverse problem solutions in NDE can be classified as model-based and system-based approach. In model-based approach, an accurate forward model is used in an iterative framework to estimate the defect shape that minimizes the error between the measured and simulated signals. However, this approach results in repeated executions of a three dimensional forward model in each iteration, making it computationally demanding.;This thesis presents a direct approach to inversion using principles of time reversal. Time reversal focusing is based on the fact that when a wave solution is reversed in time and back propagated it comes to focus at the source. Research on time reversal techniques of ultrasound fields has demonstrated the reliability of the technique for detecting small defects in complex geometries. This thesis uses a computational model to study the feasibility of applying principles of time reversal to microwave NDE data for solving the inverse problem of defect detection in dielectric materials.;Microwave NDE methods are well suited for inspection of dielectric materials because electromagnetic waves can propagate through and interact with such materials. The interaction is influenced by the electrical and magnetic properties of the material and hence the response of this interaction contains information of discontinuities of permittivity in the material.;A two-dimensional finite difference time domain (FDTD) model, for simulating the propagation of forward and time reversed wave fields is developed. A dielectric slab used in the simulations is illuminated by a gaussian modulated pulse. The measured microwave NDE measurements are recorded, time reversed and propagated backwards once through the FDTD model to highlight the scatterer/defect. Maxima in the energy image indicates the location of the defect. Simulation results demonstrate the ability of the technique to accurately detect defects in dielectric and lossy dielectric materials. Experiments were performed in free space to validate the FDTD model. The signals recorded in the experiment were time reversed and input to the FDTD model. Errors in source position, using the model, were attributed to experimental measurements.
机译:无损评估(NDE)方法用于检查材料和组件而不会损害其用途。 NDE在不同行业中用于检查关键组件的可靠性,产品质量或检测材料故障。 NDE中使用的技术范围从简单的视觉方法到微波,超声,X射线和热成像。 NDE中的关键问题是反问题,它涉及使用系统输出信号中的信息重建缺陷轮廓。 NDE中的逆问题解决方案可以分为基于模型的方法和基于系统的方法。在基于模型的方法中,在迭代框架中使用了精确的正向模型来估计缺陷形状,从而最大程度地减小了测量信号与仿真信号之间的误差。但是,这种方法在每次迭代中都会重复执行三维正向模型,因此对计算的要求很高。本论文提出了一种使用时间反转原理的直接反演方法。时间反转聚焦是基于以下事实:当波动解在时间上反转并向后传播时,它将聚焦在源头上。超声场时间反转技术的研究证明了该技术在复杂几何形状中检测小缺陷的可靠性。本文利用计算模型研究了将时间反转原理应用于微波无损检测数据解决介电材料缺陷检测反问题的可行性。微波无损检测方法由于电磁波可以通过并与此类材料互动。相互作用受材料的电磁特性影响,因此该相互作用的响应包含材料中介电常数的不连续性信息。二维有限时域(FDTD)模型,用于模拟正向传播并开发了时间反转波场。模拟中使用的介电平板由高斯调制脉冲照亮。通过FDTD模型记录测量的微波NDE测量值,时间倒转并向后传播,以突出显示散射体/缺陷。能量图像中的最大值表示缺陷的位置。仿真结果证明了该技术能够准确检测电介质和有损耗电介质材料中的缺陷的能力。在自由空间中进行了实验以验证FDTD模型。实验中记录的信号经过时间反转后输入到FDTD模型中。使用该模型,源位置的误差归因于实验测量。

著录项

  • 作者

    Reyes Rodriguez, Solimar.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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