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An informative frequency band identification framework for gearbox fault diagnosis under time-varying operating conditions

机译:齿轮箱故障诊断的信息频段识别框架在时变运行条件下

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摘要

The application of informative frequency band identification methods makes it possible to enhance weak damage components in the vibration signals acquired from rotating machines. Some rotating machines (e.g. wind turbines) operate inherently under time-varying operating conditions, however, very few frequency band identification methods have been developed with varying operating conditions in mind. Therefore, in this work, a systematic framework for obtaining consistent feature planes under time-varying operating conditions is proposed. This framework utilises the angle-frequency instantaneous power spectrum and the order-frequency cyclic modulation spectrum to construct feature planes. The kurtogram, the sparsogram, the infogram, the ICS2gram and the log-cycligram are obtained on numerical and experimental datasets acquired under time-varying operating conditions using this framework. In addition to this, we also implement the Informative Frequency Band Identification method using targeted cyclic orders, abbreviated to IFBI_αgram, in this framework and compare the performance of this method against the other frequency band identification methods. Ultimately, we found that the feature used in the construction of the IFBI_αgram is very well-suited for gear and bearing fault diagnosis under time-varying operating conditions.
机译:信息频带识别方法的应用使得可以增强从旋转机器获取的振动信号中的弱损坏部件。一些旋转机器(例如风力涡轮机)固有地在时变的操作条件下操作,然而,已经开发了非常少量的频段识别方法,其考虑到不同的操作条件。因此,在这项工作中,提出了一种用于在时变运行条件下获得一致特征平面的系统框架。该框架利用角度瞬时功率谱和阶频率循环调制谱构造特征平面。在使用该框架的时变运行条件下获取的数值和实验数据集上获得了Kurtogram,SparsoGram,Immog,ICS2Gram和Log-Cycligram。除此之外,我们还实现了使用目标循环顺序的信息频带识别方法,在本框架中缩写为IFBI_αGram,并比较该方法对其他频带识别方法的性能。最终,我们发现在IFBI_α建造中使用的特征非常适合在时变运行条件下适合齿轮和轴承故障诊断。

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