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Original scientific paper

RVM-based adaboost scheme for stator interturn faults of the induction motor

Weiguo Zhao
Kui Li
Shaopu Yang
Liying Wang


Full text: english PDF 1.232 Kb

page 123-131

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Abstract

This paper presents an AdaBoost method based on RVM (Relevance Vector Machine) to detect and locate an interturn short circuit fault in the stator windings of IM (Induction Machine). This method is achieved through constructing an Adaboost combined with a weak RVM multiclassifier based on a binary tree, and the fault features are extracted from the three phase shifts between the line current and the phase voltage of IM by establishing a global stator faulty model. The simulation results show that, compared with other competitors, the proposed method has a higher precision and a stronger generalization capability, and it can accurately detect and locate an interturn short circuit fault, thus demonstrating the effectiveness of the proposed method.

Keywords

relevance vector machine; adaboost; stator interturn faults; induction motor

Hrčak ID:

155314

URI

https://hrcak.srce.hr/155314

Publication date:

8.4.2016.

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