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An Efficient Stator Inter-Turn Fault Diagnosis Tool for Induction Motors
2018
Energies
Induction motors constitute the largest proportion of motors in industry. This type of motor experiences different types of failures, such as broken bars, eccentricity, and inter-turn failure. Stator winding faults account for approximately 36% of these failures. As such, condition monitoring is used to protect motors from sudden breakdowns. This paper proposes the use of neural networks as an efficient diagnostic tool for estimating the percentage of stator winding shorted turns in three-phase
doi:10.3390/en11030653
fatcat:qwnrnrozzbb67a6yywjx33texi