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FAULT DETECTION AND DIAGNOSIS OF VEHICLE GEARBOXES USING VIBRATION ANALYSIS AND NEURAL NETWORKS

机译:基于振动分析和神经网络的车辆齿轮箱故障检测与诊断

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摘要

This paper investigates a fault detection and identification technique applied on a passenger car gearbox system using artificial neural network. The inspected gearboxes are the Nissan Junior 5-speed manual gearboxes collected from the Charkheshgar Company's production line. The novelty of this work is the implementation of a fault diagnosis technique on 14 gearboxes collected from an assembly line which contain completely dissimilar and uncontrolled fault types. The time domain approach is used for feature vector extraction. Eight parameters, which are used extensively in the literature for gearbox fault diagnosis, are calculated and four of them are found to be more informative than the others which are consequently used in feature vector construction. Finally, the multilayer perceptron neural network is used for monitoring the incurred changes in the patterns. The obtained results demonstrate the good performance of the suggested scheme for fault diagnosis of the gearboxes.
机译:本文研究了一种应用在人工变速箱系统上的神经网络故障检测与识别技术。检查的变速箱是从Charkheshgar公司生产线收集的Nissan Junior 5速手动变速箱。这项工作的新颖性在于对从装配线收集的14个变速箱实施故障诊断技术,该变速箱包含完全不同且不受控制的故障类型。时域方法用于特征向量提取。计算了八个参数,这些参数在文献中被广泛用于变速箱故障诊断,并且发现其中四个参数比在特征矢量构造中使用的其他参数更具信息性。最后,多层感知器神经网络用于监视模式中发生的变化。所获得的结果证明了所提出的方案用于齿轮箱故障诊断的良好性能。

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