DGA Method Implementation for Incipient Fault Analysis using Gas Concentrations

SMART MOVES JOURNAL IJOSCIENCE

View Publication Info
 
 
Field Value
 
Title DGA Method Implementation for Incipient Fault Analysis using Gas Concentrations
 
Creator Singh, Jyoti
Nigam, Dr. Prateek
Malviya, Achie
 
Subject DGA, ANN, KDD, DST.
 
Description Power transformers are essential devices for the durable and reliable performance of an electrical system. the main objective of this study is to analyze three classical diagnosis techniques to identify incipient faults in Transformer oil using Rogers’s Ratio Method, Doernenburg Ratio Method, and ANN which is a type of artificial intelligence learning method. Implementation of the system in MATLAB software for each diagnosis method and compare their accuracy and efficiency and hence design three diagnosis methods of DGA for condition assessment of Power Transformer. And the analysis on the MATLAB software shall be carried so as to detect the best method for detection of a certain type of fault and the best suited method for overall fault analysis for a certain data sets out of the three methods. This technique utilizes the learning capacity of that artificial neural network has been shown to be more efficient in detecting different mistakes. The overall error detection accuracy of such gas neural network study was found to be 73.8 percent.
 
Publisher SMART MOVES
 
Date 2021-10-27
 
Type info:eu-repo/semantics/article
info:eu-repo/semantics/publishedVersion
Peer-reviewed Article
science
 
Format application/pdf
 
Identifier http://ijoscience.com/ojsscience/index.php/ojsscience/article/view/413
10.24113/ijoscience.v7i10.413
 
Source SMART MOVES JOURNAL IJOSCIENCE; Volume 7, Issue , October 2021; 1-9
2582-4600
 
Language eng
 
Relation http://ijoscience.com/ojsscience/index.php/ojsscience/article/view/413/934
 
Rights Copyright (c) 2021 Jyoti Singh, Dr. Prateek Nigam, Achie Malviya.
http://creativecommons.org/licenses/by/4.0
 

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