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基于 QPSO-SVR 算法的 SF6 断路器触头烧蚀状态评估

Translated title of the contribution: SF6 Circuit Breaker Contact State Assessment Based on QPSO-SVR Algorithm
  • Zhenxing Wang
  • , Muxin Diao
  • , Guangyu Xiao
  • , Jing Yan
  • , Daopin Chen
  • , Bangfa Chen
  • Xi'an Jiaotong University
  • China Southern Power Grid

Research output: Contribution to journalArticlepeer-review

14 Scopus citations

Abstract

The prediction of contact resistance and mass loss of contacts plays an important role in the condition assessment of high-voltage SF6 circuit breakers. In this paper, a method based on quantum particle swarms optimization and support vector regression (QPSO-SVR) is proposed to effectively predict the incremental contact resistance and mass loss of arc contacts under different arc ablation conditions. The optimum training parameters for the SVR algorithm are obtained by combining the experimental data. The QPSO-SVR method has shown good prediction capability for different arc ablation conditions when compared with other prediction methods. The relative error of prediction for the incremental contact resistance is 3.023%, while the relative error of prediction for the mass loss is 4.61%, both of which show good robustness. Finally, the mass loss and contact resistance increments obtained from QPSO-SVR prediction and the monitored accumulated arc energy are subjected to fuzzy logic inference to construct a contact ablation state assessment system based on QPSO-SVR algorithm, which classifies the contact ablation state into four classes: class O, class I, class II and class III. The method can provide reference for high-voltage SF6 circuit breaker maintenance.

Translated title of the contributionSF6 Circuit Breaker Contact State Assessment Based on QPSO-SVR Algorithm
Original languageChinese (Traditional)
Pages (from-to)3907-3917
Number of pages11
JournalGaodianya Jishu/High Voltage Engineering
Volume49
Issue number9
DOIs
StatePublished - 30 Sep 2023

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