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Ultrasonic Guided Waves-Based Monitoring of Rail Head: Laboratory and Field Tests

机译:基于超声波导波的轨头监测:实验室和现场测试

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Recent train accidents have reaffirmed the need for developing a rail defect detection system more effective than that currently used. One of the most promising techniques in rail inspection is the use of ultrasonic guided waves and noncontact probes. A rail inspection prototype based on these concepts and devoted to the automatic damage detection of defects in rail head is the focus of this paper. The prototype includes an algorithm based on wavelet transform and outlier analysis. The discrete wavelet transform is utilized to denoise ultrasonic signals and to generate a set of relevant damage sensitive data. These data are combined into a damage index vector fed to an unsupervised learning algorithm based on outlier analysis that determines the anomalous conditions of the rail. The first part of the paper shows the prototype in action on a railroad track mock-up built at the University of California, San Diego. The mock-up contained surface and internal defects. The results from three experiments are presented. The importance of feature selection to maximize the sensitivity of the inspection system is demonstrated here. The second part of the paper shows the results of field testing conducted in south east Pennsylvania under the auspices of the U.S. Federal Railroad Administration.
机译:最近发生的火车事故再次表明,有必要开发一种比当前使用的系统更有效的铁路缺陷检测系统。铁路检查中最有前途的技术之一是使用超声波和非接触式探头。基于这些概念的铁路检测原型,致力于自动检测铁轨头部缺陷,是本文的重点。该原型包括基于小波变换和离群值分析的算法。离散小波变换用于对超声信号进行去噪并生成一组相关的损伤敏感数据。这些数据被组合到损坏指数向量中,该向量将基于异常分析来提供给非监督学习算法,该异常分析可确定钢轨的异常状况。本文的第一部分展示了在加利福尼亚大学圣地亚哥分校建造的铁轨模型中使用的原型。该模型包含表面和内部缺陷。给出了三个实验的结果。这里说明了选择特征以最大化检查系统灵敏度的重要性。本文的第二部分显示了在美国联邦铁路管理局的主持下在宾夕法尼亚州东南部进行的现场测试的结果。

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