DocumentCode
1087227
Title
Adaptive Neural Fuzzy Inference System for the Detection of Inter-Turn Insulation and Bearing Wear Faults in Induction Motor
Author
Ballal, Makarand S. ; Khan, Zafar J. ; Suryawanshi, Hiralal M. ; Sonolikar, Ram L.
Author_Institution
Nagpur Univ.
Volume
54
Issue
1
fYear
2007
Firstpage
250
Lastpage
258
Abstract
The positive features of neural networks and fuzzy logic are combined together for the detection of stator inter-turn insulation and bearing wear faults in single-phase induction motor. The adaptive neural fuzzy inference systems (ANFISs) are developed for the detection of these two faults. These faults are created experimentally on a single-phase induction motor in the laboratory. The experimental data is generated for the five measurable parameters, viz, motor intakes current, speed, winding temperature, bearing temperature, and the noise of the machine. Earlier, the ANFIS fault detectors are trained for the two input parameters, i.e., speed and current, and the performance is tested. Later, the three remaining parameters are added and the five input ANFIS fault detector is trained and tested. It observed from the simulation results that the five input parameter system predicts more accurate results
Keywords
adaptive systems; electric machine analysis computing; fault diagnosis; fuzzy neural nets; induction motors; inference mechanisms; insulation testing; learning (artificial intelligence); machine bearings; machine insulation; machine testing; stators; wear; ANFIS; adaptive neural fuzzy inference system; bearing temperature; bearing wear faults; fault detection; machine noise; neural nets training; single-phase induction motor; stator inter-turn insulation faults; winding temperature; Fault detection; Fuzzy logic; Fuzzy systems; Induction motors; Insulation; Laboratories; Neural networks; Stators; Temperature; Testing; Adaptive neural fuzzy inference systems (ANFISs); bearing wear; induction motor; winding insulation;
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2006.888789
Filename
4084640
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