LAPSE:2023.34460v1
Published Article

LAPSE:2023.34460v1
Pattern Recognition of Development Stage of Creepage Discharge of Oil−Paper Insulation under AC−DC Combined Voltage Based on OS-ELM
April 27, 2023
Abstract
The recognition of the creepage discharge development process of oil−paper insulation under AC−DC combined voltage is the basis for fault monitoring and diagnosis of converter transformers; however, only a few related studies are available. In this study, the AC−DC combined voltage with a ratio of 1:1 was used to develop a recognition method for the creepage discharge development process of an oil−paper insulation under a cylinder−plate electrode structure. First, the pulse current method was used to collect the discharge signals in the creepage discharge development process. Then, 24 characteristic parameters were extracted from four types of creepage discharge characteristic spectra after dimensionality reduction. Finally, based on the online sequential extreme learning machine (OS-ELM) algorithm, these characteristic parameters were used to recognize the development stage of the creepage discharge of the oil−paper insulation. The results showed that when the size of the sample training set used in the OS-ELM algorithm is close to the number of hidden layer neurons, a high recognition accuracy can be obtained, and the type of activation function has little influence on the recognition accuracy. Four stages of the creepage discharge development process were recognized using the OS-ELM algorithm; the trend was the same as that of the characteristic parameters of the entire creepage discharge development process. The recognition accuracy was 91.4%. The algorithm has a high computing speed and high accuracy and can train data in batches. Therefore, it can be widely used in the field of online monitoring and evaluation of electrical equipment status.
The recognition of the creepage discharge development process of oil−paper insulation under AC−DC combined voltage is the basis for fault monitoring and diagnosis of converter transformers; however, only a few related studies are available. In this study, the AC−DC combined voltage with a ratio of 1:1 was used to develop a recognition method for the creepage discharge development process of an oil−paper insulation under a cylinder−plate electrode structure. First, the pulse current method was used to collect the discharge signals in the creepage discharge development process. Then, 24 characteristic parameters were extracted from four types of creepage discharge characteristic spectra after dimensionality reduction. Finally, based on the online sequential extreme learning machine (OS-ELM) algorithm, these characteristic parameters were used to recognize the development stage of the creepage discharge of the oil−paper insulation. The results showed that when the size of the sample training set used in the OS-ELM algorithm is close to the number of hidden layer neurons, a high recognition accuracy can be obtained, and the type of activation function has little influence on the recognition accuracy. Four stages of the creepage discharge development process were recognized using the OS-ELM algorithm; the trend was the same as that of the characteristic parameters of the entire creepage discharge development process. The recognition accuracy was 91.4%. The algorithm has a high computing speed and high accuracy and can train data in batches. Therefore, it can be widely used in the field of online monitoring and evaluation of electrical equipment status.
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Keywords
AC–DC combined voltage, creepage discharge, oil–paper insulation, OS-ELM, pattern recognition
Suggested Citation
Jin F, Zhang S, Zhou Y. Pattern Recognition of Development Stage of Creepage Discharge of Oil−Paper Insulation under AC−DC Combined Voltage Based on OS-ELM. (2023). LAPSE:2023.34460v1
Author Affiliations
Jin F: School of Water Resources and Electric Power, Qinghai University, Xining 811600, Qinghai, China
Zhang S: Department of Information Science, Kanagawa University, Yokohama 222-0033, Japan
Zhou Y: State Key Laboratory of Control and Simulation of Power Systems and Generation Equipment, Department of Electrical Engineering, Tsinghua University, Beijing 10084, China
Zhang S: Department of Information Science, Kanagawa University, Yokohama 222-0033, Japan
Zhou Y: State Key Laboratory of Control and Simulation of Power Systems and Generation Equipment, Department of Electrical Engineering, Tsinghua University, Beijing 10084, China
Journal Name
Energies
Volume
14
Issue
3
First Page
552
Year
2021
Publication Date
2021-01-21
ISSN
1996-1073
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Original Submission
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PII: en14030552, Publication Type: Journal Article
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