A Dynamic Integrated Fault Diagnosis Method for Power Transformers

In order to diagnose transformer fault efficiently and accurately, a dynamic integrated fault diagnosis method based on Bayesian network is proposed in this paper. First, an integrated fault diagnosis model is established based on the causal relationship among abnormal working conditions, failure mo...

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Main Authors: Wensheng Gao, Cuifen Bai, Tong Liu
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:The Scientific World Journal
Online Access:http://dx.doi.org/10.1155/2015/459268
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spelling doaj-d537a8da29024191a0a581f1b64878342020-11-25T02:08:45ZengHindawi LimitedThe Scientific World Journal2356-61401537-744X2015-01-01201510.1155/2015/459268459268A Dynamic Integrated Fault Diagnosis Method for Power TransformersWensheng Gao0Cuifen Bai1Tong Liu2Department of Electrical Engineering, Tsinghua University, Beijing 100084, ChinaState Grid Energy Research Institute, Beijing 102209, ChinaElectric Power Research Institute, CSG, Guangzhou 510080, ChinaIn order to diagnose transformer fault efficiently and accurately, a dynamic integrated fault diagnosis method based on Bayesian network is proposed in this paper. First, an integrated fault diagnosis model is established based on the causal relationship among abnormal working conditions, failure modes, and failure symptoms of transformers, aimed at obtaining the most possible failure mode. And then considering the evidence input into the diagnosis model is gradually acquired and the fault diagnosis process in reality is multistep, a dynamic fault diagnosis mechanism is proposed based on the integrated fault diagnosis model. Different from the existing one-step diagnosis mechanism, it includes a multistep evidence-selection process, which gives the most effective diagnostic test to be performed in next step. Therefore, it can reduce unnecessary diagnostic tests and improve the accuracy and efficiency of diagnosis. Finally, the dynamic integrated fault diagnosis method is applied to actual cases, and the validity of this method is verified.http://dx.doi.org/10.1155/2015/459268
collection DOAJ
language English
format Article
sources DOAJ
author Wensheng Gao
Cuifen Bai
Tong Liu
spellingShingle Wensheng Gao
Cuifen Bai
Tong Liu
A Dynamic Integrated Fault Diagnosis Method for Power Transformers
The Scientific World Journal
author_facet Wensheng Gao
Cuifen Bai
Tong Liu
author_sort Wensheng Gao
title A Dynamic Integrated Fault Diagnosis Method for Power Transformers
title_short A Dynamic Integrated Fault Diagnosis Method for Power Transformers
title_full A Dynamic Integrated Fault Diagnosis Method for Power Transformers
title_fullStr A Dynamic Integrated Fault Diagnosis Method for Power Transformers
title_full_unstemmed A Dynamic Integrated Fault Diagnosis Method for Power Transformers
title_sort dynamic integrated fault diagnosis method for power transformers
publisher Hindawi Limited
series The Scientific World Journal
issn 2356-6140
1537-744X
publishDate 2015-01-01
description In order to diagnose transformer fault efficiently and accurately, a dynamic integrated fault diagnosis method based on Bayesian network is proposed in this paper. First, an integrated fault diagnosis model is established based on the causal relationship among abnormal working conditions, failure modes, and failure symptoms of transformers, aimed at obtaining the most possible failure mode. And then considering the evidence input into the diagnosis model is gradually acquired and the fault diagnosis process in reality is multistep, a dynamic fault diagnosis mechanism is proposed based on the integrated fault diagnosis model. Different from the existing one-step diagnosis mechanism, it includes a multistep evidence-selection process, which gives the most effective diagnostic test to be performed in next step. Therefore, it can reduce unnecessary diagnostic tests and improve the accuracy and efficiency of diagnosis. Finally, the dynamic integrated fault diagnosis method is applied to actual cases, and the validity of this method is verified.
url http://dx.doi.org/10.1155/2015/459268
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