Bi-spectrum based-EMD applied to the non-stationary vibration signals for bearing faults diagnosis
Empirical mode decomposition (EMD) has been widely applied to analyze vibration signals behavior for bearing failures detection. Vibration signals are almost always non-stationary since bearings are inherently dynamic (e.g., speed and load condition change over time). By using EMD, the complicated n...
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Veröffentlicht in: | ISA transactions 2014-09, Vol.53 (5), p.1650-1660 |
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Sprache: | eng |
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Zusammenfassung: | Empirical mode decomposition (EMD) has been widely applied to analyze vibration signals behavior for bearing failures detection. Vibration signals are almost always non-stationary since bearings are inherently dynamic (e.g., speed and load condition change over time). By using EMD, the complicated non-stationary vibration signal is decomposed into a number of stationary intrinsic mode functions (IMFs) based on the local characteristic time scale of the signal. Bi-spectrum, a third-order statistic, helps to identify phase coupling effects, the bi-spectrum is theoretically zero for Gaussian noise and it is flat for non-Gaussian white noise, consequently the bi-spectrum analysis is insensitive to random noise, which are useful for detecting faults in induction machines. Utilizing the advantages of EMD and bi-spectrum, this article proposes a joint method for detecting such faults, called bi-spectrum based EMD (BSEMD). First, original vibration signals collected from accelerometers are decomposed by EMD and a set of IMFs is produced. Then, the IMF signals are analyzed via bi-spectrum to detect outer race bearing defects. The procedure is illustrated with the experimental bearing vibration data. The experimental results show that BSEMD techniques can effectively diagnosis bearing failures.
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•Vibration signals are almost always non-stationary since bearings are inherently dynamic.•Empirical mode decomposition (EMD) is used to decompose the vibration signal into a number of stationary.•Bi-spectrum and EMD are combined together to propose a new based approach to diagnose bearing failures. |
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ISSN: | 0019-0578 1879-2022 |
DOI: | 10.1016/j.isatra.2014.06.002 |