DocumentCode :
2597664
Title :
A new method based on fuzzy TOPSIS for transformer dissolved gas analysis
Author :
Guo-wei, Cai ; Chao, Pan ; Yan-tao, Wang ; De-you, Yang
fYear :
2009
fDate :
6-7 April 2009
Firstpage :
1
Lastpage :
6
Abstract :
This paper presents a new classifier based on fuzzy technique of order preference by sunilarity to ideal solution (TOPSIS) for power transformer fault diagnosis in dealing with the dissolved gas analysis(DGA) problem, which is treated as the collision between lowering complex process of the analysis and increasing quantity of monitoring informations. Two methods are employed to ameliorate the diagnosis condition. Firstly, the essential concept of fuzzy set using semantic variables is introduced. And this classification approach is then combined with the TOPSIS considering the efficiency in managing imperfect and incorrect data, and the multiple attribute decision matrix is deduced by fuzzy mapping. Secondly, the vector interval is calculated, which fixes the relative similarity of the possible fault types on the evidence of various gas ratios. Finally, contrasted with IEC three-ratio method, the new method has been proved rapid and exact in judging the operation states, and therefore the safety, stability and economy of transformer are improved.
Keywords :
fault diagnosis; fuzzy set theory; power transformers; IEC three-ratio method; for power transformer fault diagnosis; fuzzy TOPSIS; fuzzy mapping; fuzzy set theory; multiple attribute decision matrix; transformer dissolved gas analysis; transformer stability; vector interval; Dissolved gas analysis; Fault detection; Fault diagnosis; Fuzzy sets; Gases; Oil insulation; Petroleum; Power transformer insulation; Power transformers; Testing; Fuzzy Set; Technique of Order Preference by Sunilarity to Ideal Solution (TOPSIS); dissolved gas analysis(DGA);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sustainable Power Generation and Supply, 2009. SUPERGEN '09. International Conference on
Conference_Location :
Nanjing
Print_ISBN :
978-1-4244-4934-7
Type :
conf
DOI :
10.1109/SUPERGEN.2009.5347935
Filename :
5347935
Link To Document :
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