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A Comparison of Machine Health Indicators Based on the Impulsiveness of Vibration Signals

机译:基于振动信号脉冲性的机器健康指标比较

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Abstract Vibration signals collected from machines can contain rich machine degradation information, such as impulsiveness and cyclo-stationarity. In the field of machine condition monitoring (MCM), quantification of impulsiveness has attracted many researchers’ interests because impulsiveness often indicates an occurrence of incipient faults. Impulsiveness-based health indicators (HIs) (e.g., Gini index, kurtosis, entropy, smoothness index, etc.) are some kinds of statistical parameters that can quantify the impulsiveness of vibration signals. Hence, they have been widely studied during recent years for MCM. However, a thorough comparitive study of those HIs is seldom reported. This paper aims to compare seven impulsiveness-based HIs including kurtosis, skewness, smoothness index, negative entropy, Gini index, Hoyer measure, and the ratio of L2 to L1 norm for MCM according to three properties including the robustness to the length of a signal, the gradient for sparsity or impulsiveness, and quantification of impulsiveness and cyclo-stationarity. Among the seven HIs, it was experimentally found that the Gini index is better than the other indicators to satisfy the three suggested properties for MCM.
机译:摘要 从机器采集的振动信号可以包含丰富的机器退化信息,如脉冲性、循环平稳性等。在机器状态监测(MCM)领域,冲动的量化引起了许多研究人员的兴趣,因为冲动通常预示着早期故障的发生。基于冲动的健康指标(HIs)(例如,基尼指数、峰度、熵、平滑指数等)是一些可以量化振动信号冲动性的统计参数。因此,近年来,它们已被广泛用于 MCM。然而,对这些 HI 的全面比较研究很少报道。本文旨在根据对信号长度的鲁棒性、稀疏性或冲动性的梯度以及脉冲性和循环平稳性的量化等 3 个特性,比较 MCM 的峰度、偏度、平滑指数、负熵、基尼指数、Hoyer 测度和 L2 与 L1 范数的比值等 7 种基于脉冲的 HI。在7种HI中,实验发现基尼指数优于其他指标,满足MCM的3个建议属性。

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