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Fault Diagnosis of Rolling Bearing Based on a Novel Adaptive High-Order Local Projection Denoising Method

机译:基于新型自适应高阶局部投影降噪方法的滚动轴承故障诊断

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Rolling bearings are vital components in rotary machinery, and their operating condition affects the entire mechanical systems. As one of the most important denoising methods for nonlinear systems, local projection (LP) denoising method can be used to reduce noise effectively. Afterwards, high-order polynomials are utilized to estimate the centroid of the neighborhood to better preserve complete geometry of attractors; thus, high-order local projection (HLP) can improve noise reduction performance. This paper proposed an adaptive high-order local projection (AHLP) denoising method in the field of fault diagnosis of rolling bearings to deal with different kinds of vibration signals of faulty rolling bearings. Optimal orders can be selected corresponding to vibration signals of outer ring fault (ORF) and inner ring fault (IRF) rolling bearings, because they have different nonlinear geometric structures. The vibration signal model of faulty rolling bearing is adopted in numerical simulations, and the characteristic frequencies of simulated signals can be well extracted by the proposed method. Furthermore, two kinds of experimental data have been processed in application researches, and fault frequencies of ORF and IRF rolling bearings can be both clearly extracted by the proposed method. The theoretical derivation, numerical simulations, and application research can indicate that the proposed novel approach is promising in the field of fault diagnosis of rolling bearing.
机译:滚动轴承是旋转机械中的重要组件,其运行状况会影响整个机械系统。作为非线性系统最重要的降噪方法之一,局部投影(LP)去噪方法可以有效地降低噪声。然后,利用高阶多项式估算邻域的质心,以更好地保留吸引子的完整几何形状。因此,高阶局部投影(HLP)可以提高降噪性能。针对滚动轴承故障的各种振动信号,提出了一种在滚动轴承故障诊断领域中的自适应高阶局部投影降噪方法。可以根据外圈故障(ORF)和内圈故障(IRF)滚动轴承的振动信号选择最佳顺序,因为它们具有不同的非线性几何结构。数值模拟采用了故障滚动轴承的振动信号模型,该方法可以很好地提取模拟信号的特征频率。此外,在应用研究中已经处理了两种实验数据,该方法可以清晰地提取ORF和IRF滚动轴承的故障频率。理论推导,数值模拟和应用研究表明,该方法在滚动轴承故障诊断领域具有广阔的应用前景。

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