求助PDF
{"title":"Structural Optimization Design of Vacuum Interrupter Based on Transient Electric Field Distribution","authors":"Can Ding, Yudong Shi, Jiayu Liu, Zhenwei Jia","doi":"10.1002/tee.24247","DOIUrl":null,"url":null,"abstract":"<p>As the core device of vacuum circuit breaker, the insulation performance of the interrupter is closely related to the internal structure. In this paper, the electric field distribution of arc interrupter under simulated lightning impulse overvoltage is studied. It is found that the instantaneous electric field intensity is at a high level and the electric field uniformity is poor under lightning impulse. In order to further improve the electric field distribution of the interrupter, this paper proposes a method based on the combination of neural network and particle swarm optimization (PSO) to optimize the important structural parameters of the interrupter. A neural network model was established with suspension shield length (<i>L</i><sub>1</sub>), suspension shield radius (<i>R</i><sub>1</sub>), end shield radius (<i>R</i><sub>2</sub>), contact plate thickness (<i>H</i><sub>1</sub>) and end shield length (<i>H</i><sub>2</sub>) as inputs, and the maximum electric field strength and the uniformity of electric field on both sides of the static and dynamic contacts as outputs, respectively. The structure of the vacuum interrupter was optimized by PSO algorithm. The optimization results show that: When the structural parameters of the vacuum interrupter <i>H</i><sub>1</sub> are 4.6 mm, <i>H</i><sub>2</sub> is 20 mm, <i>R</i><sub>1</sub> is 3.6 mm, <i>R</i><sub>2</sub> is 3.4 mm and <i>L</i><sub>1</sub> is 110 mm, the electric field distribution of the interrupter is obviously improved, and the electric field distribution of the optimized structure can also be well improved under the power frequency operating voltage. Its electric field intensity between the electrode is significantly low. © 2024 Institute of Electrical Engineers of Japan and Wiley Periodicals LLC.</p>","PeriodicalId":13435,"journal":{"name":"IEEJ Transactions on Electrical and Electronic Engineering","volume":"20 6","pages":"841-852"},"PeriodicalIF":1.0000,"publicationDate":"2024-12-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"IEEJ Transactions on Electrical and Electronic Engineering","FirstCategoryId":"5","ListUrlMain":"https://onlinelibrary.wiley.com/doi/10.1002/tee.24247","RegionNum":4,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"ENGINEERING, ELECTRICAL & ELECTRONIC","Score":null,"Total":0}
引用次数: 0
引用
批量引用
Abstract
As the core device of vacuum circuit breaker, the insulation performance of the interrupter is closely related to the internal structure. In this paper, the electric field distribution of arc interrupter under simulated lightning impulse overvoltage is studied. It is found that the instantaneous electric field intensity is at a high level and the electric field uniformity is poor under lightning impulse. In order to further improve the electric field distribution of the interrupter, this paper proposes a method based on the combination of neural network and particle swarm optimization (PSO) to optimize the important structural parameters of the interrupter. A neural network model was established with suspension shield length (L 1 ), suspension shield radius (R 1 ), end shield radius (R 2 ), contact plate thickness (H 1 ) and end shield length (H 2 ) as inputs, and the maximum electric field strength and the uniformity of electric field on both sides of the static and dynamic contacts as outputs, respectively. The structure of the vacuum interrupter was optimized by PSO algorithm. The optimization results show that: When the structural parameters of the vacuum interrupter H 1 are 4.6 mm, H 2 is 20 mm, R 1 is 3.6 mm, R 2 is 3.4 mm and L 1 is 110 mm, the electric field distribution of the interrupter is obviously improved, and the electric field distribution of the optimized structure can also be well improved under the power frequency operating voltage. Its electric field intensity between the electrode is significantly low. © 2024 Institute of Electrical Engineers of Japan and Wiley Periodicals LLC.
基于瞬态电场分布的真空灭流器结构优化设计
断流器作为真空断路器的核心器件,其绝缘性能与内部结构密切相关。本文研究了模拟雷击过电压下电弧灭弧器的电场分布。研究发现,在雷击作用下,瞬时电场强度较高,电场均匀性较差。为了进一步改善断流器的电场分布,本文提出了一种基于神经网络和粒子群优化(PSO)相结合的方法来优化断流器的重要结构参数。以悬架屏蔽长度(L1)、悬架屏蔽半径(R1)、端屏蔽半径(R2)、接触板厚度(H1)和端屏蔽长度(H2)为输入,静态触点和动态触点两侧最大电场强度和电场均匀性分别作为输出,建立神经网络模型。采用粒子群算法对真空灭流器的结构进行了优化。优化结果表明:当真空灭流器的结构参数H1为4.6 mm, H2为20 mm, R1为3.6 mm, R2为3.4 mm, L1为110 mm时,灭流器的电场分布得到明显改善,并且在工频工作电压下,优化结构的电场分布也能得到很好的改善。其电极间电场强度明显较低。©2024日本电气工程师协会和Wiley期刊有限责任公司。
本文章由计算机程序翻译,如有差异,请以英文原文为准。