Identification of Magnetizing Inrush and Internal Short-Circuit Fault Current in V/x-Type Traction Transformer
Author(s) -
Yimin Li,
Xinlei Tian,
X. Q. Li
Publication year - 2013
Publication title -
advances in mechanical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.318
H-Index - 40
eISSN - 1687-8140
pISSN - 1687-8132
DOI - 10.1155/2013/905202
Subject(s) - inrush current , hilbert–huang transform , transformer , entropy (arrow of time) , traction (geology) , computer science , current transformer , linear variable differential transformer , engineering , control theory (sociology) , voltage , electronic engineering , electrical engineering , mechanical engineering , distribution transformer , artificial intelligence , physics , control (management) , filter (signal processing) , quantum mechanics
This paper deals with the fault diagnosis methodology for the V/x-type traction transformer in railway passenger-dedicated lines. A kind of the protection methodology to combine empirical mode decomposition (EMD), energy weight, and information entropy is proposed. This method can sensitively reflect the dynamic information changes of traction transformer differential current, so it can not only effectively identify internal short-circuit fault current from magnetizing inrush but also better identify fault current accompanied with magnetizing inrush. In this method, the differential current is decomposed by EMD and the energy weight of each intrinsic mode function (IMF) is calculated, and the feature vector of the fault pattern recognition is obtained by constructing IMF energy entropy. The field-measured data illustrate that the new method not only has the advantages of high sensitivity, faster identification speed, and clear concept but also is available for the diagnosis of the complicated dynamic system
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