Periodic impulses in vibration signals and its repeating frequency are the key indicators for diagnosing the local damage of rolling element bearings. A new method based on ensemble empirical mode decomposition (EEMD) and the Teager energy operator is proposed to extract the characteristic frequency of bearing fault. The signal is firstly decomposed into monocomponents by means of EEMD to satisfy the monocomponent requirement by the Teager energy operator. Then, the intrinsic mode function (IMF) of interest is selected according to its correlation with the original signal and its kurtosis. Next, the Teager energy operator is applied to the selected IMF to detect fault-induced impulses. Finally, Fourier transform is applied to the obtained Teager energy series to identify the repeating frequency of fault-induced periodic impulses and thereby to diagnose bearing faults. The principle of the method is illustrated by the analyses of simulated bearing vibration signals. Its effectiveness in extracting the characteristic frequency of bearing faults, and especially its performance in identifying the symptoms of weak and compound faults, are validated by the experimental signal analyses of both seeded fault experiments and a run-to-failure test. Comparison studies show its better performance than, or complements to, the traditional spectral analysis and the squared envelope spectral analysis methods.
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University of Alberta,
e-mail: ming.zuo@ualberta.ca
Shijiazhuang Railway Institute,
e-mail: haorj@sjzri.edu.cn
and Mechanology,
Tsinghua University,
e-mail: chufl@mail.tsinghua.edu.cn
University of Cincinnati,
e-mail: jay.lee@uc.edu
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June 2013
Research-Article
Ensemble Empirical Mode Decomposition-Based Teager Energy Spectrum for Bearing Fault Diagnosis
Zhipeng Feng,
Zhipeng Feng
1
School of Mechanical Engineering,
e-mail: zhipeng.feng@yahoo.com.cn
University of Science and Technology Beijing
,Beijing 100083
, China
e-mail: zhipeng.feng@yahoo.com.cn
1Corresponding author.
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Ming J. Zuo,
University of Alberta,
e-mail: ming.zuo@ualberta.ca
Ming J. Zuo
Department of Mechanical Engineering
,University of Alberta,
Edmonton, AB T6G 2G8
, Canada
e-mail: ming.zuo@ualberta.ca
Search for other works by this author on:
Rujiang Hao,
Shijiazhuang Railway Institute,
e-mail: haorj@sjzri.edu.cn
Rujiang Hao
Department of Mechanical Engineering
,Shijiazhuang Railway Institute,
Shijiazhuang 050043
, China
e-mail: haorj@sjzri.edu.cn
Search for other works by this author on:
Fulei Chu,
and Mechanology,
Tsinghua University,
e-mail: chufl@mail.tsinghua.edu.cn
Fulei Chu
Department of Precision Instruments
and Mechanology,
Tsinghua University,
Beijing 100084
, China
e-mail: chufl@mail.tsinghua.edu.cn
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Jay Lee
University of Cincinnati,
e-mail: jay.lee@uc.edu
Jay Lee
Department of Mechanical Engineering
,University of Cincinnati,
Cincinnati, OH 45221-0072
e-mail: jay.lee@uc.edu
Search for other works by this author on:
Zhipeng Feng
School of Mechanical Engineering,
e-mail: zhipeng.feng@yahoo.com.cn
University of Science and Technology Beijing
,Beijing 100083
, China
e-mail: zhipeng.feng@yahoo.com.cn
Ming J. Zuo
Department of Mechanical Engineering
,University of Alberta,
Edmonton, AB T6G 2G8
, Canada
e-mail: ming.zuo@ualberta.ca
Rujiang Hao
Department of Mechanical Engineering
,Shijiazhuang Railway Institute,
Shijiazhuang 050043
, China
e-mail: haorj@sjzri.edu.cn
Fulei Chu
Department of Precision Instruments
and Mechanology,
Tsinghua University,
Beijing 100084
, China
e-mail: chufl@mail.tsinghua.edu.cn
Jay Lee
Department of Mechanical Engineering
,University of Cincinnati,
Cincinnati, OH 45221-0072
e-mail: jay.lee@uc.edu
1Corresponding author.
Contributed by the Design Engineering Division of ASME for publication in the Journal of Vibration and Acoustics. Manuscript received October 25, 2011; final manuscript received January 16, 2013; published online April 24, 2013. Assoc. Editor: Alan Palazzolo.
J. Vib. Acoust. Jun 2013, 135(3): 031013 (21 pages)
Published Online: April 24, 2013
Article history
Received:
October 25, 2011
Revision Received:
January 16, 2013
Citation
Feng, Z., Zuo, M. J., Hao, R., Chu, F., and Lee, J. (April 24, 2013). "Ensemble Empirical Mode Decomposition-Based Teager Energy Spectrum for Bearing Fault Diagnosis." ASME. J. Vib. Acoust. June 2013; 135(3): 031013. https://doi.org/10.1115/1.4023814
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