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Vibration Analysis of Coupled Faults Diagnosis in a Rotor System using Wavelet De-noising and KPCA Data Fusion

机译:使用小波脱光和KPCA数据融合,转子系统耦合故障诊断的振动分析

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In a rotor system, simultaneous existence of coupled faults, i.e. a crack couples with a misalignment, is very common. However, the single fault diagnosis has been investigated extensively in previous work while the issue of coupled faults diagnosis (i.e. considering two or more than two faults at a time) has been addressed insufficiently. In order to detect the existence of coupled faults and to prevent a fatigue crack in the rotor shaft, a new method is proposed to analyze the vibration signals using the Wavelet de-nosing and kernel principal component analysis (KPCA) in this work. The Wavelet was firstly used to de-noise the original vibration signals, and then the KPCA was adopted to extract useful fault features for the coupled faults detection. A case study on the coupled fault diagnosis of the rotor system has been implemented. The diagnosis results demonstrate that the proposed method is feasible for the coupled fault diagnosis of rotor systems. The fault detection rate is 91.0%.
机译:在转子系统中,同时存在耦合断层,即具有未对准的裂缝耦合,非常普遍。然而,在以前的工作中,在耦合故障诊断的问题中已经在以前的工作中进行了广泛研究了单一的故障诊断(即考虑到两个或两个以上的故障)已经解决了不够。为了检测耦合断层的存在并防止转子轴中的疲劳裂缝,提出了一种新方法,用于使用本工作中的小波脱墨和核心分析(KPCA)来分析振动信号。首先使用小波用于噪声噪声原始振动信号,然后采用KPCA来提取耦合故障检测的有用故障特征。已经实现了对转子系统的耦合故障诊断的案例研究。诊断结果表明,所提出的方法对于转子系统的耦合故障诊断是可行的。故障检测率为91.0%。

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