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Diagnosis of structural cracks using wavelet transform and neural networks

机译:基于小波变换和神经网络的结构裂纹诊断

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摘要

This paper proposes an approach to detecting and characterizing structural cracks emanating from rows of rivet holes in thin metallic plates using lamb wave, wavelet transform and neural networks. When lamb waves propagate through rows of holes, there exist strong wave interferences among different transmitted waves which make health diagnosis complicated. An active sensing network is mounted on the plate and wavelet transform is used to extract a robust and effective feature called energy ratio change from time domain signals. The relationship between energy ratio change and the crack characteristics is analyzed and the effective detection paths are found out. Neural networks are then developed using the feature to diagnose health condition in stages. One neural network is first used to diagnose plate integrity. If cracks are detected, then the second neural network is called to determine their locations. The method is first examined in simulation data, then the NNs trained by simulation data are used to diagnose real plates. The results shows that the method can effectively detect cracks and identify their locations in both simulation and experimental data, hence demonstrating the feasibility of using the method to develop built-in real time intelligent diagnosis systems.
机译:本文提出了一种使用兰姆波,小波变换和神经网络来检测和表征薄金属板中的铆钉孔排产生的结构裂纹的方法。当兰姆波通过一排排孔传播时,不同的传输波之间会存在强烈的波干扰,这会使健康诊断变得复杂。有源传感网络安装在板上,小波变换用于从时域信号中提取一种健壮而有效的特征,即能量比变化。分析了能量比变化与裂纹特征之间的关系,找出了有效的检测路径。然后使用该功能开发神经网络以分阶段诊断健康状况。首先使用一个神经网络来诊断印版完整性。如果检测到裂缝,则调用第二个神经网络来确定其位置。首先在仿真数据中检查该方法,然后将通过仿真数据训练的NN用于诊断实际板块。结果表明,该方法可以有效地检测裂纹并在模拟和实验数据中识别裂纹的位置,从而证明了使用该方法开发内置实时智能诊断系统的可行性。

著录项

  • 来源
    《NDT & E international》 |2013年第3期|9-18|共10页
  • 作者单位

    A*STAR Data Storage Institute, DSI Building, 5 Engineering Drive 1, Singapore 117608, Singapore;

    A*STAR Data Storage Institute, DSI Building, 5 Engineering Drive 1, Singapore 117608, Singapore;

    A*STAR Data Storage Institute, DSI Building, 5 Engineering Drive 1, Singapore 117608, Singapore;

    A*STAR Data Storage Institute, DSI Building, 5 Engineering Drive 1, Singapore 117608, Singapore;

    A*STAR Data Storage Institute, DSI Building, 5 Engineering Drive 1, Singapore 117608, Singapore;

    Automation and Robotics Research Institute, University of Texas, Arlington, TX 76019, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lamb waves; Wavelet transform; Neural networks; Crack detection;

    机译:羊肉波小波变换神经网络;探伤;
  • 入库时间 2022-08-17 13:25:17

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