DocumentCode :
760195
Title :
Analysis of Short-Circuit Performance of Split-Winding Transformer Using Coupled Field-Circuit Approach
Author :
Kumbhar, G.B. ; Kulkarni, S.V.
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Technol., Mumbai
Volume :
22
Issue :
2
fYear :
2007
fDate :
4/1/2007 12:00:00 AM
Firstpage :
936
Lastpage :
943
Abstract :
The split-winding arrangement requires special short-circuit design considerations. During short-circuit conditions, there is a considerable distortion of the leakage field, which in turn produces high axial short-circuit forces. This paper deals with the computation and analysis of electromagnetic forces in windings of split-winding transformers. A nonlinear-transient field-circuit coupled finite element model is used to simulate the split-winding transformer. A 70-MVA, three-phase, 220/6.9/6.9-kV split-winding transformer is modeled under preset and postset short-circuit test conditions. Under the preset condition, the transformer is analyzed with one as well as both the LV windings short circuited to compare the axial forces produced in the windings for these two cases. The results show that there is a considerable rise in the axial forces when one winding is short circuited as compared with the case when both windings are short circuited. The effect of initial magnetization of core on axial short-circuit forces is calculated and discussed. It is also shown that even though postset method eliminates inrush related problems there is not much respite in short-circuit forces
Keywords :
finite element analysis; leakage currents; magnetisation; power transformer testing; short-circuit currents; transformer cores; transformer windings; 220 kV; 6.9 kV; 70 MVA; LV windings; axial forces; coupled field-circuit approach; electromagnetic forces; initial magnetization; leakage field; nonlinear transient field-circuit coupled finite element model; short-circuit performance; short-circuit test conditions; split-winding transformer; Circuit simulation; Circuit testing; Computational modeling; Coupling circuits; Electromagnetic analysis; Electromagnetic forces; Finite element methods; Magnetic cores; Magnetization; Performance analysis; Field-circuit coupling; finite-element method (FEM); nonlinear transient; split-winding transformer;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2007.893442
Filename :
4141129
Link To Document :
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