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The Autogram: An effective approach for selecting the optimal demodulation band in rolling element bearings diagnosis

机译:Autogram:在滚动轴承诊断中选择最佳解调频带的有效方法

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HighlightsSpectral Kurtosis performance declines as the SNR decreases or in presence of impulsive noise.New method (Autogram) is proposed to cope with these drawbacks.Autocorrelation (AC) of the squared envelope of the demodulated signal is used for this purpose.Autogram takes advantage of periodicity of cyclostationarity of bearing defect signals.AbstractEnvelope analysis is one of the most advantageous methods for rolling element bearing diagnostics but finding a suitable frequency band for demodulation has been a substantial challenge for a long time. Introduction of the Spectral Kurtosis (SK) and Kurtogram mostly solved this problem but in situations where signal to noise ratio is very low or in presence of non-Gaussian noise these methods will fail. This major drawback may noticeably decrease their effectiveness and goal of this paper is to overcome this problem. Vibration signals from rolling element bearings exhibit high levels of second-order cyclostationarity, especially in the presence of localized faults. The autocovariance function of a 2nd order cyclostationary signal is periodic and the proposed method, named Autogram, takes advantage of this property to enhance the conventional Kurtogram. The method computes the kurtosis of the unbiased Autocorrelation (AC) of the squared envelope of the demodulated signal, rather than the kurtosis of the filtered time signal. Moreover, to take advantage of unique features of the lower and upper portions of the AC, two modified forms of kurtosis are introduced and the resulting colormaps are called Upper and Lower Autogram. In addition, a thresholding method is also proposed to enhance the quality of the frequency spectrum analysis. A new indicator, Combined Squared Envelope Spectrum, is employed to consider all the frequency bands with valuable diagnostic information and to improve the fault detectability of the Autogram. The proposed method is tested on experimental data and compared with literature results so to assess its performances in rolling element bearing diagnostics.
机译: 突出显示 峰峰值性能随着SNR降低或存在脉冲噪声而下降。 提出了一种新方法(Autogram)来应对具有这些缺点。 解调信号平方包络的自相关(AC)用于此目的。 Autogram充分利用了periodici轴承缺陷信号的循环平稳性。 摘要 包络分析是滚动轴承诊断的最有利方法之一,但是找到合适的解调频段对解决这一难题提出了巨大挑战。很长时间。频谱峰度(SK)和Kurtogram的引入大部分解决了此问题,但是在信噪比非常低或存在非高斯噪声的情况下,这些方法将失败。这个主要缺点可能会明显降低其有效性,因此本文的目的就是要克服这个问题。滚动轴承的振动信号表现出很高的二阶循环平稳性,尤其是在存在局部故障的情况下。二阶循环平稳信号的自协方差函数是周期性的,所提出的名为Autogram的方法利用此特性来增强传统的Kurtogram。该方法计算的是解调信号平方包络的无偏自相关(AC)的峰度,而不是滤波后的时间信号的峰度。此外,为了利用AC的下部和上部的独特功能,引入了两种修改的峰度形式,并且将所得的颜色图称为上部和下部Autogram。另外,还提出了一种阈值化方法以提高频谱分析的质量。一种新的指标,组合平方包络频谱,用于考虑所有带有价值的诊断信息的频带,并改善Autogram的故障检测能力。对该方法进行了实验数据测试,并与文献结果进行了比较,以评估其在滚动轴承诊断中的性能。

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