DocumentCode :
157136
Title :
Stator current demodulation for induction machine rotor faults diagnosis
Author :
El Bouchikhi, El-Houssin ; Choqueuse, Vincent ; Benbouzid, Mohamed ; Antonino-Daviu, J.A.
Author_Institution :
LBMS, ISEN Brest, Brest, France
fYear :
2014
fDate :
25-27 March 2014
Firstpage :
176
Lastpage :
181
Abstract :
Several studies have demonstrated that induction machine faults introduce phase and/or amplitude modulation of the stator currents. Hence, demodulation of the stator currents is of high interest for induction machines faults detection and diagnosis. The demodulation techniques can be classified into mono-dimensional and multi-dimensional approaches. The mono-dimensional techniques include the synchronous demodulator, the Hilbert transform, the Teager energy operator and other approaches. The multi-dimensional approaches include the Concordia transform and the Principal Component Analysis. Once the demodulation has been performed, demodulated signals are further processed in order to measure failure severity. In this paper, we present a comprehensive comparison of these demodulation techniques for eccentricity and broken rotor bars faults detection.
Keywords :
Hilbert transforms; amplitude modulation; asynchronous machines; demodulation; fault diagnosis; phase modulation; principal component analysis; rotors; stators; Concordia transform; Hilbert transform; amplitude modulation; broken rotor bars fault detection; induction machine rotor fault diagnosis; phase modulation; principal component analysis; stator current demodulation; synchronous demodulator; Bars; Demodulation; Fault detection; Induction machines; Rotors; Stators; Transforms; Induction machine; broken rotor bars; diagnosis; eccentricity faults; signal demodulation; stator currents;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Green Energy, 2014 International Conference on
Conference_Location :
Sfax
Print_ISBN :
978-1-4799-3601-4
Type :
conf
DOI :
10.1109/ICGE.2014.6835418
Filename :
6835418
Link To Document :
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