希尔伯特振动分解在滚动轴承故障诊断中应用

朱可恒;宋希庚;薛冬新

振动与冲击 ›› 2014, Vol. 33 ›› Issue (14) : 160-164.

PDF(1562 KB)
PDF(1562 KB)
振动与冲击 ›› 2014, Vol. 33 ›› Issue (14) : 160-164.
论文

希尔伯特振动分解在滚动轴承故障诊断中应用

  • 朱可恒,宋希庚,薛冬新

作者信息 +

Roller bearing fault diagnosis using Hilbert vibration decomposition

  • ZHU Ke-heng, SONG Xi-geng, XUE Dong-xin
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摘要

将希尔伯特振动分解(HVD)应用于滚动轴承故障诊断。在介绍HVD方法原理基础上,与经验模式分解(EMD)进行对比表明,通过仿真信号可分析HVD更高频率分辨率,HVD能有效分解引起EMD模态混叠的含异常事件信号;将HVD用于滚动轴承故障信号分解,选含丰富故障信息分量进行包络分析,利用相应包络谱图识别轴承故障特征频率,进而识别故障模式,并实验验证该方法的有效性。

Abstract

A new non-stationary signal processing technique called Hilbert vibration decomposition (HVD) is introduced to fault diagnosis of roller bearings. The HVD and empirical mode decomposition (EMD) are both based on Hilbert transform, and both methods can decompose multi-component signals adaptively. However, compared with EMD, the HVD method does not involve spline fitting and empirical algorithms and has a better frequency resolution. Moreover, the HVD method can decompose more effectively the multi-component signals which can cause mode mixing while decomposed by the EMD method. Based on this consideration, the HVD method is applied to the experimental data of roller bearing with induced faults. The envelope analysis is performed to the component including dominant fault information, and then the characteristic defect frequency of roller bearing can be identified by means of the envelope spectrum. The experimental results validate the effectiveness of the proposed method for roller bearing fault diagnosis.

关键词

滚动轴承 / 希尔伯特分解 / 故障诊断 / 包络分析

Key words

roller bearing / HVD / fault diagnosis / envelope analysis

引用本文

导出引用
朱可恒;宋希庚;薛冬新. 希尔伯特振动分解在滚动轴承故障诊断中应用[J]. 振动与冲击, 2014, 33(14): 160-164
ZHU Ke-heng;SONG Xi-geng;XUE Dong-xin. Roller bearing fault diagnosis using Hilbert vibration decomposition[J]. Journal of Vibration and Shock, 2014, 33(14): 160-164

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