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Fault Diagnosis of Ball Bearing Elements: A Generic Procedure based on Time-Frequency Analysis

机译:球轴承元件的故障诊断:基于时频分析的通用过程

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Motor-driven machines, such as water pumps, air compressors, and fans, are prone to fatigue failures after long operating hours, resulting in catastrophic breakdown. The failures are preceded by faults under which the machines continue to function, but with low efficiency. Most failures that occur frequently in the motor-driven machines are caused by rolling bearing faults, which could be detected by the noise and vibrations during operation. The incipient faults, however, are difficult to identify because of their low signal-to-noise ratio, vulnerability to external disturbances, and non-stationarity. The conventional Fourier spectrum is insufficient for analyzing the transient and non-stationary signals generated by these faults, and hence a novel approach based on wavelet packet decomposition and support vector machine is proposed to distinguish between various types of bearing faults. By using wavelet and statistical methods to extract the features of bearing faults based on time-frequency analysis, the proposed fault diagnosis procedure could identify ball bearing faults successfully.
机译:长时间运转后,诸如水泵,空气压缩机和风扇之类的电动机驱动的机器容易出现疲劳故障,从而导致灾难性的故障。故障之前是机器继续运行但效率低下的故障。电动机械中经常发生的大多数故障是由于滚动轴承故障引起的,可以通过运行期间的噪音和振动来检测。但是,由于初期故障的信噪比低,易受外部干扰的影响以及不稳定,因此难以识别。传统的傅立叶频谱不足以分析这些故障产生的瞬态和非平稳信号,因此提出了一种基于小波包分解和支持向量机的新方法来区分各种类型的轴承故障。通过基于时频分析的小波和统计方法提取轴承故障特征,提出的故障诊断程序可以成功识别出滚珠轴承故障。

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