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Adaptive maximum second-order cyclostationarity blind deconvolution and its application for locomotive bearing fault diagnosis

机译:自适应最大二阶循环循环性盲卷积及其对机车轴承故障诊断的应用

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Maximum second-order cyclostationarity blind deconvolution (CYCBD) outperforms other deconvolution methods in retrieving the weak periodic impulses related to bearing incipient faults. However, the main challenge in the practical application of CYCBD is how to set several key parameters appropriately, the uppermost of which is the targeted cyclic frequency or fault period. It may attribute to the fact that the advantage of CYCBD is greatly compromised by the provided period. To overcome the above limitations, an adaptive CYCBD (ACYCBD) is presented in this article. In the proposed method, a powerful tool, envelope harmonic product spectrum (EHPS), is tailored to estimate the true cyclic frequency or period precisely. Then, the estimated result instead of a coarsely provided value is regarded as the targeted cyclic frequency. Furthermore, in the presence of heavy energy harmonics or strong external noise, EHPS still has strong robustness in the fault period identification. Compared with the original CYCBD, ACYCBD can extract the weak impulses submerged in the raw vibration signal without any prior information about the period. Finally, the effectiveness and advantages of ACYCBD are revealed by employing it on the synthesized signals and experimental data collected from a locomotive bearing test rig.
机译:最大二阶循环循环性盲卷积(Cycbd)优于检测与轴承初期缺陷相关的弱周期性冲动方案中的其他成卷积方法。然而,Cycbd的实际应用中的主要挑战是如何适当地设置几个关键参数,其最高的是目标循环频率或故障周期。它可能归因于CYCBD的优势在规定的时间内大大损害。为了克服上述限制,本文提出了一种自适应Cycbd(ACYCBD)。在所提出的方法中,强大的工具,信封谐波产品谱(EHPS)被量身定制,以精确地估计真实的循环频率或周期。然后,将估计的结果代替粗略提供的值被视为目标循环频率。此外,在大量能量谐波或强大的外部噪声存在下,EHPS仍然在故障时期识别中具有很强的鲁棒性。与原始CYCBD相比,ACYCBD可以提取淹没在原始振动信号中的弱脉冲,而无需任何关于该时段的先前信息。最后,通过在从机车轴承试验台上收集的合成信号和实验数据上采用ACCBD的有效性和优点。

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