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Gearbox Fault Diagnosis Based on Hierarchical Instantaneous Energy Density Dispersion Entropy and Dynamic Time Warping

机译:齿轮箱故障诊断基于分层瞬时能量密度分散熵和动态时间翘曲

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摘要

The accurate fault diagnosis of gearboxes is of great significance for ensuring safe and efficient operation of rotating machinery. This paper develops a novel fault diagnosis method based on hierarchical instantaneous energy density dispersion entropy (HIEDDE) and dynamic time warping (DTW). Specifically, the instantaneous energy density (IED) analysis based on singular spectrum decomposition (SSD) and Hilbert transform (HT) is first applied to the vibration signal of gearbox to acquire the IED signal, which is designed to reinforce the fault feature of the signal. Then, the hierarchical dispersion entropy (HDE) algorithm developed in this paper is used to quantify the complexity of the IED signal to obtain the HIEDDE as fault features. Finally, the DTW algorithm is employed to recognize the fault types automatically. The validity of the two parts that make up the HIEDDE algorithm, i.e., the IED analysis for fault features enhancement and the HDE algorithm for quantifying the information of signals, is numerically verified. The proposed method recognizes the fault patterns of the experimental data of gearbox accurately and exhibits advantages over the existing methods such as multi-scale dispersion entropy (MDE) and refined composite MDE (RCMDE).
机译:齿轮箱的准确故障诊断对于确保旋转机械的安全有效运行具有重要意义。本文开发了一种基于层级瞬时能量密度分散熵(Hiedde)和动态时间翘曲(DTW)的新型故障诊断方法。具体地,首先将基于奇异谱分解(SSD)和HILBERT变换(HT)的瞬时能量密度(IED)分析应用于齿轮箱的振动信号以获取IED信号,旨在加强信号的故障特征。然后,本文开发的分层分散熵(HDE)算法用于量化IED信号的复杂性,以获得Hiedde作为故障特征。最后,采用DTW算法自动识别故障类型。组成Hiedde算法的两部分的有效性,即故障特征增强的IED分析和用于量化信号信息的HDE算法,在数值上验证。该方法识别精确识别齿轮箱的实验数据的故障模式,并且优于现有方法,例如多尺度分散熵(MDE)和精制复合MDE(RCMDE)。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2019(21),6
  • 年度 2019
  • 页码 593
  • 总页数 21
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:分层瞬时能量密度分散熵;动态时间翘曲;等级分散熵;变速箱;故障诊断;

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