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Rolling element bearing defect diagnosis under variable speed operation through angle synchronous averaging of wavelet de-noised estimate

机译:小波去噪估计的角度同步平均在变速操作下滚动轴承的故障诊断

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Rolling element bearings are widely used in rotating machines and their faults can lead to excessive vibration levels and/or complete seizure of the machine. Under special operating conditions such as non-uniform or low speed shaft rotation, the available fault diagnosis methods cannot be applied for bearing fault diagnosis with full confidence. Fault symptoms in such operating conditions cannot be easily extracted through usual measurement and signal processing techniques. A typical example is a bearing in heavy rolling mill with variable load and disturbance from other sources. In extremely slow speed operation, variation in speed due to speed controller transients or external disturbances (e.g., varying load) can be relatively high. To account for speed variation, instantaneous angular position instead of time is used as the base variable of signals for signal processing purposes. Even with time synchronous averaging (TSA) and well-established methods like envelope order analysis, rolling element faults in rolling element bearings cannot be easily identified during such operating conditions. In this article we propose to use order tracking on the envelope of the wavelet de-noised estimate of the short-duration angle synchronous averaged signal to diagnose faults in rolling element bearing operating under the stated special conditions. The proposed four-stage sequential signal processing method eliminates uncorrelated content, avoids signal smearing and exposes only the fault frequencies and its harmonics in the spectrum. We use experimental data1 from a laboratory setup to validate the diagnosis tool for bearing raceway and rolling element faults.
机译:滚动轴承广泛用于旋转机械中,其故障会导致过度的振动水平和/或完全咬死机械。在特殊的工作条件下,例如轴的不均匀或低速旋转,不能完全依靠现有的故障诊断方法来进行轴承故障诊断。通过常规的测量和信号处理技术不能轻易地提取出这种工作条件下的故障症状。一个典型的例子是重型轧机中的轴承,其负载可变且受到其他来源的干扰。在极慢的速度操作中,由于速度控制器瞬变或外部干扰(例如,变化的负载)而导致的速度变化可能相对较高。为了考虑速度变化,出于信号处理目的,将瞬时角位置而不是时间用作信号的基本变量。即使使用时间同步平均(TSA)和完善的方法(例如包络阶分析),在这种运行条件下也无法轻易识别滚动轴承中的滚动元件故障。在本文中,我们建议对短时角同步平均信号的小波消噪估计的包络使用阶跃跟踪,以诊断在所述特殊条件下运行的滚动轴承的故障。所提出的四阶段顺序信号处理方法消除了不相关的内容,避免了信号拖尾,并且只暴露了频谱中的故障频率及其谐波。我们使用来自实验室设置的实验数据1来验证轴承滚道和滚动元件故障的诊断工具。

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