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基于自适应STFT的货车滚动轴承故障诊断
引用本文:丁夏完,刘葆,刘金朝,王成国,胡晓依.基于自适应STFT的货车滚动轴承故障诊断[J].中国铁道科学,2005,26(6):24-27.
作者姓名:丁夏完  刘葆  刘金朝  王成国  胡晓依
作者单位:1. 中央民族大学,数学与计算机科学学院,北京,100081
2. 西弗吉尼亚大学,理学院,美国西弗吉尼亚摩根城,26506
3. 铁道科学研究院,研发中心,北京,100081
4. 铁道科学研究院,机车车辆研究所,北京,100081
基金项目:铁道科学研究院铁道科学技术研究发展中心资助项目(2004YF5)
摘    要:带故障的铁路货车滚动轴承振动信号表现为低频平稳信号与高频的周期性冲击信号的叠加。采用以三阶B样条函数作为窗函数的自适应短时傅立叶变换(STFT)对货车滚动轴承振动信号进行时频分析和故障信息提取。与传统的固定带宽的STFT相比,自适应STFT在不同频段自适应选取窗长,大大提高了振动信号的时频分辨率。应用该方法对197726型货车滚动轴承在内圈剥离、外圈剥离两种故障状态下的振动信号做了分析,求得故障频率分别为61.32 Hz和46.36 Hz,与内外圈的理论故障频率相符,可以有效地诊断出铁路货车滚动轴承内外圈故障。

关 键 词:货车滚动轴承  故障诊断  自适应STFT  时频分析  共振解调
文章编号:1001-4632(2005)06-0024-04
收稿时间:2005-05-13
修稿时间:2005年5月13日

Fault Diagnosis of Freight Car Rolling Element Bearings with Adaptive Short-Time Fourier Transform
DING Xia-wan,LIU Bao,LIU Jin-zhao,WANG Cheng-guo,Riemenscheider S D,HU Xiao-yi.Fault Diagnosis of Freight Car Rolling Element Bearings with Adaptive Short-Time Fourier Transform[J].China Railway Science,2005,26(6):24-27.
Authors:DING Xia-wan  LIU Bao  LIU Jin-zhao  WANG Cheng-guo  Riemenscheider S D  HU Xiao-yi
Institution:1. School of Mathematics and Computer Science, the Central University for Nationalities, Beijing 100081, China; 2. Eberly College of Arts and Sciences, West Virginia University, Morgantown, West Virginia 26506, USA; 3. Research and Development Center, China Academy of Railway Science, Beijing 100081, China; 4. Locomotive and Car Research Institute, China Academy of Railway Science, Beijing 100081, China
Abstract:Vibration signals collected from freight car rolling element bearings with localized faults often consist of stationary components and periodic impulses.In this paper,an adaptive short-time Fourier transform is applied to the time-frequency analysis and feature enhancement of the vibration signals collected from freight car rolling element bearings with localized faults.Differing from the standard short-time Fourier transform,the adaptive transform uses cubic B-splines as the window functions and optimizes the window bandwidth along the frequency axis and thus improves the time-frequency resolution greatly.The method is applied to the analysis of vibration signals of 197726 type rolling element bearings with outer-race and inner-race faults.The obtained characteristic frequencies of defects are 46.36 Hz and 61.32 Hz respectively which conform to the real values and show that the method performs effectively in fault diagnosis of freight car rolling element bearings.
Keywords:Freight car rolling element bearing  Fault diagnosis  Adaptive short-time Fourier transform  Time-frequency analysis  Demodulated resonance
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