Fault diagnostics in power transformer model winding for different alpha values
Transient overvoltages appearing at line terminal of power transformer HV windings can cause failure of winding insulation. The failure can be from winding to ground or between turns or sections of winding. In most of the cases, failure from winding to ground can be detected by changes in the wave s...
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doaj-0c281089dbdf43d8a1177fea326ca78e2020-11-24T21:43:51ZengSpringerOpenJournal of Electrical Systems and Information Technology2314-71722015-09-012217217710.1016/j.jesit.2015.06.004Fault diagnostics in power transformer model winding for different alpha valuesG.H. Kusumadevi0G.R. Gurumurthy1Research scholar, JAIN University, Department of Electrical & Electronics Engineering, Acharya Institute of Technology, Bangalore 560107, Karnataka, IndiaDepartment of Electrical & Electronics Engineering, The Oxford College of Engineering, Bangalore 560068, Karnataka, IndiaTransient overvoltages appearing at line terminal of power transformer HV windings can cause failure of winding insulation. The failure can be from winding to ground or between turns or sections of winding. In most of the cases, failure from winding to ground can be detected by changes in the wave shape of surge voltage appearing at line terminal. However, detection of insulation failure between turns may be difficult due to intricacies involved in identifications of faults. In this paper, simulation investigations carried out on a power transformer model winding for identifying faults between turns of winding has been reported. The power transformer HV winding has been represented by 8 sections, 16 sections and 24 sections. Neutral current waveform has been analyzed for same model winding represented by different number of sections. The values of α (‘α’ value is the square root of total ground capacitance to total series capacitance of winding) considered for windings are 5, 10 and 20. Standard lightning impulse voltage (1.2/50 μs wave shape) have been considered for analysis. Computer simulations have been carried out using software PSPICE version 10.0. Neutral current and frequency response analysis methods have been used for identification of faults within sections of transformer model winding.http://www.sciencedirect.com/science/article/pii/S2314717215000367Lightning overvoltageTranformer model windingsInsulation failureNeutral currentFrequency response analysis |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
G.H. Kusumadevi G.R. Gurumurthy |
spellingShingle |
G.H. Kusumadevi G.R. Gurumurthy Fault diagnostics in power transformer model winding for different alpha values Journal of Electrical Systems and Information Technology Lightning overvoltage Tranformer model windings Insulation failure Neutral current Frequency response analysis |
author_facet |
G.H. Kusumadevi G.R. Gurumurthy |
author_sort |
G.H. Kusumadevi |
title |
Fault diagnostics in power transformer model winding for different alpha values |
title_short |
Fault diagnostics in power transformer model winding for different alpha values |
title_full |
Fault diagnostics in power transformer model winding for different alpha values |
title_fullStr |
Fault diagnostics in power transformer model winding for different alpha values |
title_full_unstemmed |
Fault diagnostics in power transformer model winding for different alpha values |
title_sort |
fault diagnostics in power transformer model winding for different alpha values |
publisher |
SpringerOpen |
series |
Journal of Electrical Systems and Information Technology |
issn |
2314-7172 |
publishDate |
2015-09-01 |
description |
Transient overvoltages appearing at line terminal of power transformer HV windings can cause failure of winding insulation. The failure can be from winding to ground or between turns or sections of winding. In most of the cases, failure from winding to ground can be detected by changes in the wave shape of surge voltage appearing at line terminal. However, detection of insulation failure between turns may be difficult due to intricacies involved in identifications of faults. In this paper, simulation investigations carried out on a power transformer model winding for identifying faults between turns of winding has been reported. The power transformer HV winding has been represented by 8 sections, 16 sections and 24 sections. Neutral current waveform has been analyzed for same model winding represented by different number of sections. The values of α (‘α’ value is the square root of total ground capacitance to total series capacitance of winding) considered for windings are 5, 10 and 20. Standard lightning impulse voltage (1.2/50 μs wave shape) have been considered for analysis. Computer simulations have been carried out using software PSPICE version 10.0. Neutral current and frequency response analysis methods have been used for identification of faults within sections of transformer model winding. |
topic |
Lightning overvoltage Tranformer model windings Insulation failure Neutral current Frequency response analysis |
url |
http://www.sciencedirect.com/science/article/pii/S2314717215000367 |
work_keys_str_mv |
AT ghkusumadevi faultdiagnosticsinpowertransformermodelwindingfordifferentalphavalues AT grgurumurthy faultdiagnosticsinpowertransformermodelwindingfordifferentalphavalues |
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1725911617278836736 |