A novel protection scheme for synchronous generator stator windings based on SVM

被引:26
作者
Magdi El-Saadawi
Ahmed Hatata
机构
[1] Mansoura University Faculty of Engineering,
关键词
Support vector machine; Artificial neural networks; Synchronous generator; Differential protection; Fault detection; Fault classification;
D O I
10.1186/s41601-017-0057-x
中图分类号
学科分类号
摘要
This paper proposes a novel scheme for detecting and classifying faults in stator windings of a synchronous generator (SG). The proposed scheme employs a new method for fault detection and classification based on Support Vector Machine (SVM). Two SVM classifiers are proposed. SVM1 is used to identify the fault occurrence in the system and SVM2 is used to determine whether the fault, if any, is internal or external. In this method, the detection and classification of faults are not affected by the fault type and location, pre-fault power, fault resistance or fault inception time. The proposed method increases the ability of detecting the ground faults near the neutral terminal of the stator windings for generators with high impedance grounding neutral point. The proposed scheme is compared with ANN-based method and gives faster response and better reliability for fault classification.
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