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Application of an improved kurtogram method for fault diagnosis of rolling element bearings

机译:改进的峰度图法在滚动轴承故障诊断中的应用

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摘要

Kurtogram, due to the superiority of detecting and characterizing transients in a signal, has been proved to be a very powerful and practical tool in machinery fault diagnosis. Kurtogram, based on the short time Fourier transform (STFT) or FIR filters, however, limits the accuracy improvement of kurtogram in extracting transient characteristics from a noisy signal and identifying machinery fault. Therefore, more precise filters need to be developed and incorporated into the kurtogram method to overcome its shortcomings and to further enhance its accuracy in discovering characteristics and detecting faults. The filter based on wavelet packet transform (WPT) can filter out noise and precisely match the fault characteristics of noisy signals. By introducing WPT into kurtogram, this paper proposes an improved kurtogram method adopting WPT as the filter of kurtogram to overcome the shortcomings of the original kurtogram. The vibration signals collected from rolling element bearings are used to demonstrate the improved performance of the proposed method compared with the original kurtogram. The results verify the effectiveness of the method in extracting fault characteristics and diagnosing faults of rolling element bearings.
机译:由于Kurtogram具有检测和表征信号瞬变的优势,因此已被证明是机械故障诊断中非常强大且实用的工具。但是,基于短时傅立叶变换(STFT)或FIR滤波器的曲线图在从噪声信号中提取瞬态特性和识别机械故障时限制了曲线图的准确性。因此,需要开发更精确的滤波器并将其并入到峰图方法中,以克服其缺点,并进一步提高其发现特征和检测故障的准确性。基于小波包变换(WPT)的滤波器可以滤除噪声,并精确匹配噪声信号的故障特性。通过将WPT引入到峰形图中,提出了一种改进的峰形图方法,该方法采用WPT作为峰形图的过滤器,以克服原始峰形图的缺点。从滚动轴承中收集的振动信号用于证明与原始曲线图相比,所提出方法的改进性能。结果证明了该方法在提取滚动轴承故障特征和诊断故障中的有效性。

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