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Angle Domain Average and Continuous Wavelet Transform for Gear Fault Detection

机译:用于齿轮故障检测的角域平均和连续小波变换

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摘要

Run-up and run-down are of particular interest in condition monitoring of machine tool as they highlight many unobservable system faults. However, varying speed machinery faults detection is fraught with difficulties due to non-stationary machine vibration. Fixed time sampling cannot cope with the varying rotational frequency of the machine, resulting in increasing leakage error and spectral smearing. In order to process the non-stationary vibration signals during run-up and run-down of gears drive effectively, the angle domain average technique is combined with the continuous wavelet transform, which is applied to vibration analysis of gear for the detection of failure. Firstly, the vibration signal is sampled at constant time increments and then is resampled at constant angle increments. Therefore, the time domain non-stationary signal is converted into angle domain stationary one. In the end, the resampled signals are analyzed using continuous wavelet transform. The experimental results show that the presented method can effectively diagnose the faults of the gear crack.
机译:在机床的状态监控时,突起和倒闭是特别感兴趣的,因为它们突出了许多不可接受的系统故障。然而,由于非平稳机械振动,不同的速度机械故障检测充满了困难。固定时间采样不能应对机器的不同旋转频率,导致泄漏误差和光谱涂抹增加。为了在有效地处理齿轮驱动器的加速和倒塌期间处理非静止振动信号,角度域平均技术与连续小波变换相结合,其施加到齿轮的振动分析以检测失败。首先,以恒定的时间增量采样振动信号,然后以恒定的角度增量重新采样。因此,时域非静止信号被转换成角度域固定。最后,使用连续小波变换分析重采样信号。实验结果表明,所提出的方法可以有效地诊断齿轮裂纹的故障。

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