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Acoustic Monitoring of Rail Faults in the German Railway Network

机译:德国铁路网络轨道断路的声学监测

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The early detection of rail surface defects such as squats, poor welds, or wheel burns is important to prevent further rail deterioration. In this paper, a methodology for acoustic monitoring of squats in the German railway network is proposed based on the measurement of axle box acceleration (ABA) on the DB noise measurement car (SMW) and the previously developed numerical model WERAN for wheel/rail interaction. Specific characteristics of squats in the ABA signals are determined with the model and verified by pass-by measurements combined with direct geometry measurements of the squats. Based on these results, a logistic regression classifier is devised for the detection of squats in the measured ABA signals of the SMW. Trained with simulated and measured data, the classifier identifies all of the known severe squats and 87% of the known light squats in the measured test data.
机译:轨道表面缺陷的早期检测如蹲下,焊缝差或车轮燃烧是重要的,以防止进一步的轨道劣化。 在本文中,提出了一种基于DB噪声测量轿厢(SMW)上的轴箱加速度(ABA)的测量和先前开发的车轮/轨道交互的数字模型Weran 。 通过模型确定ABA信号中的蹲下的具体特征,并通过通过测量来验证与蹲下的直接几何测量相结合。 基于这些结果,设计了一种逻辑回归分类器,用于检测SMW的测量ABA信号中的蹲下。 培训具有模拟和测量数据,分类器识别所知的所有已知的严重蹲下和测量的测试数据中已知光蹲的87%。

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