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NON-CONTACT ULTRASONIC GUIDED WAVE INSPECTIONS OF RAILS

机译:轨道的非接触式超声引导波检查

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The University of California at San Diego (UCSD), under a Federal Railroad Administration (FRA) Office of Research and Development (R&D) grant, is developing a system for high-speed and non-contact rail integrity evaluation. A prototype using an ultrasonic air-coupled guided wave signal generation and air-coupled signal detection, in pair with a realtime statistical analysis algorithm, is being developed. This solution presents an improvement over the previously considered laser/air-coupled hybrid system because it replaces the costly and hard-to-maintain laser with a much cheaper, faster, and easier-to-maintain air-coupled transmitter. This system requires a specialized filtering approach due to the inherently poor signal-to-noise ratio of the air-coupled ultrasonic measurements in rail steel. Various aspects of the prototype have been designed with the aid of numerical analyses. In particular, simulations of ultrasonic guided wave propagation in rails have been performed using a Local Interaction Simulation Approach (LISA) algorithm. Many of the system operating parameters were selected based on Receiver Operating Characteristic (ROC) curves, which provide a quantitative manner to evaluate different detection performances based on the trade-off between detection rate and false positive rate. Experimental tests have been carried out at the UCSD Rail Defect Farm. The laboratory results indicate that the prototype is able to detect internal rail defects with a high reliability. A field test will be planned later in the year to further validate these results. Extensions of the system are planned to add rail surface characterization to the internal rail defect detection.
机译:加利福尼亚大学圣地亚哥分校(UCSD)在联邦铁路管理局(FRA)研究与开发办公室(R&D)资助下,正在开发一种用于高速和非接触式铁路完整性评估的系统。正在开发使用超声空气耦合导波信号生成和空气耦合信号检测以及实时统计分析算法的原型。与以前考虑的激光/空气耦合混合系统相比,该解决方案提出了改进,因为它用便宜得多,速度更快且易于维护的空气耦合发射器代替了昂贵且难以维护的激光器。由于轨道钢中空气耦合超声测量的固有信噪比差,因此该系统需要专门的滤波方法。在数值分析的帮助下,设计了原型的各个方面。特别地,已经使用局部相互作用仿真方法(LISA)算法来进行超声导波在轨道中的传播的仿真。基于接收器工作特性(ROC)曲线选择了许多系统工作参数,这些曲线提供了一种定量方法,可以根据检测率与误报率之间的权衡来评估不同的检测性能。在UCSD铁路缺陷农场进行了实验测试。实验室结果表明,该原型能够以高可靠性检测内部轨道缺陷。计划在今年晚些时候进行现场测试,以进一步验证这些结果。计划对该系统进行扩展,以将轨道表面特性添加到内部轨道缺陷检测中。

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