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Data Based Fault Diagnosis of Hot Axle for High-Speed Train

机译:基于数据的高速列车热桥故障诊断

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摘要

The axle temperature is an important performance index for high-speed train axle, and many types of high-precision detection device have been developed. However, because the existing hotbox detection system works by comparing the measured value with fixed and experiential temperature thresholds, without considering the dynamic influence of running environment, the rates of fault and failure alarm are still high. Regarding this problem, this paper is to realize high precision fault diagnosis. Firstly, the characteristics of the temperature rising rates of all axles, the axles on the same side of a carriage, the axles on the same side of a whole train are analyzed. Secondly, the support vector machine (SVM) is employed to establish a data-based fault diagnosis model, and the model is optimized using genetic algorithm. Finally, the proposed method is applied to an actual running data, the analysis results demonstrated the effectiveness and feasibility.
机译:车轴温度是高速列车车轴的重要性能指标,并且已经开发出多种类型的高精度检测装置。然而,由于现有的热箱检测系统是通过将测量值与固定和经验温度阈值进行比较而工作的,而没有考虑运行环境的动态影响,因此故障和故障警报的发生率仍然很高。针对这一问题,本文旨在实现高精度的故障诊断。首先,分析了所有车轴,车厢同一侧的车轴,整列火车同一侧的车轴的升温速率的特性。其次,利用支持向量机(SVM)建立基于数据的故障诊断模型,并利用遗传算法对该模型进行优化。最后,将该方法应用于实际运行数据,分析结果表明了该方法的有效性和可行性。

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