3.8 Proceedings Paper

Discrimination of Internal Fault Current and Inrush Current in a Power Transformer using Empirical Wavelet Transform

Journal

SMART GRID TECHNOLOGIES (ICSGT- 2015)
Volume 21, Issue -, Pages 514-519

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.protcy.2015.10.038

Keywords

inrush current; internal fault current; EWT; SVM; kernel function; MATLAB/SIMULINK

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Transformers are crucial equipment in a power system, which require reliable solutions for their protection to ensure smooth operation. Identification between internal fault current and in rush current is a challenging problem in the design of transformer protection relay. Transformers are often tripped when inrush current flows in the system causing problems in operation and maintenance in addition to the customer disturbance. Conventional identification methods have limitations in providing accurate solution to this problem. This work investigates the scope of a classification method based on EWT and SVM in distinguishing internal fault current and inrush current in a power transformer. Validation of this method is done using generated synthetic data from MATLAB/SIMULINK. Feature extraction of the generated data is done using EWT algorithm. These features are used for training SVM. Later, accuracy of classification is checked using test vectors. Different kernel functions for SVM are also tested for improved accuracy. (C) 2015 The Authors. Published by Elsevier Ltd.

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