Abstract:The vacuum interrupter of transmission grade is an urgent industry-level problem to be solved. In order to overcome the insulation bottleneck of single-break vacuum interrupter and the complex structure of multi-break series, this paper innovatively proposes an integrated high-voltage vacuum interrupter structure based on two-gap asynchronous linkage. The structure adopts the asynchronous linkage of the auxiliary gap and the main gap in series, and the auxiliary gap assists the main gap insulation and arc extinguishing, and controls the opening speed of the two gaps through the intermediate self-driving mechanism, so that the main and auxiliary gaps can be opened according to the preset requirements. This structure uses an operating mechanism structure more simple than the multi-break series technology. Its size is similar to that of single-break vacuum interrupter, and it can also improve the insulation degree of single-break vacuum interrupter while being smaller than the size of multi-break series connection. It is expected to realize the engineering application of vacuum interrupter with voltage level of 252 kV and above. In this paper, the electric field simulation model of the integrated high-voltage vacuum interrupter with two-gap asynchronous linkage is established. The electric field simulation of the model is carried out by COMSOL software. The influence of the opening distance of the main and auxiliary gaps and the structure of the shielding cover on the relationship between the electric field intensity and the voltage distribution is obtained. In addition, according to the equivalent capacitance obtained by simulation, the influence of the direction of the inlet and outlet lines on the voltage distribution is analyzed in principle. Aiming at the problem of different voltage division between main and auxiliary gaps caused by different directions of inlet and outlet lines, voltage division measures such as shielding cover structure and annular ceramic grading capacitor are proposed, and the effects of these two measures on electric field improvement are analyzed. The results show that when the static end cover is the outlet end and the moving end cover is the inlet end, the main gap spacing is 60 mm and the auxiliary gap spacing is 30 mm, which can meet the distribution of the partial pressure relationship according to the size of the gap spacing. Compared with the long gap spacing of 60 mm, the maximum electric field intensity is reduced by 27.3%. Although the shielding cover structure can meet the requirements of two-way breaking, it will increase the internal field strength of the vacuum interrupter and reduce the internal insulation. The external parallel ring ceramic grading capacitor can meet the requirements of bidirectional breaking. When the inlet end is in the static end cover, the maximum electric field strength of the external parallel ring ceramic grading capacitor vacuum interrupter is about 30% lower than that of the non-parallel capacitor vacuum interrupter. The feasibility and effectiveness of the integrated high-voltage vacuum interrupter structure based on two-gap asynchronous linkage are preliminarily explained. The research provides new ideas and methods for the development of high-voltage vacuum interrupter.
葛国伟, 王文博, 程显, 陈辉, 段晓辉. 基于两间隙异步联动的一体化高压真空灭弧室电场设计[J]. 电工技术学报, 2024, 39(17): 5555-5564.
Ge Guowei, Wang Wenbo, Cheng Xian, Chen Hui, Duan Xiaohui. Electric Field Design of Integrated High-Voltage Vacuum Interrupter Based on Two-Gap Asynchronous Linkage. Transactions of China Electrotechnical Society, 2024, 39(17): 5555-5564.
[1] 贾申利, 贾荣照, 朱璐. 真空开断型环保GIS发展现状及趋势[J]. 高压电器, 2022, 58(9): 1-12. Jia Shenli, Jia Rongzhao, Zhu Lu.Advances in the development of vacuum-based eco-friendly GIS[J]. High Voltage Apparatus, 2022, 58(9): 1-12. [2] Ge Guowei, Cheng Xian, Liao Minfu, et al.Mechanism of dynamic voltage distribution in series-connected vacuum interrupters[J]. IEEE Transactions on Plasma Science, 2018, 46(8): 3083-3089. [3] 王建华, 耿英三, 刘志远. 输电等级单断口真空断路器理论及其技术[M]. 北京: 机械工业出版社, 2017. [4] Matsui Y, Nagatake K, Takeshita M, et al.Development and technology of high voltage VCBs; breaf history and state of art[C]//2006 International Symposium on Discharges and Electrical Insulation in Vacuum, Matsue, Japan, 2006: 253-256. [5] Ohki Y.News from Japan[J]. IEEE Electrical Insulation Magazine, 2015, 31(1): 44-46. [6] 王季梅, 刘志远, 修士新, 等. 国内外开发研究高压真空断路器和向超高压发展的概况[J]. 电气技术, 2006, 7(12): 5-9. [7] 程显, 廖敏夫, 段雄英, 等. 基于光控真空断路器模块串联的126kV三断口真空断路器设计与试验[J]. 高电压技术, 2015, 41(9): 3110-3116. Cheng Xian, Liao Minfu, Duan Xiongying, et al.Design and experiment of 126 kV vacuum circuit breaker based on Fiber-controlled vacuum interrupter modules in series[J]. High Voltage Engineering, 2015, 41(9): 3110-3116. [8] 程显, 田小倩, 葛国伟, 等. 环保型罐式多断口真空断路器电场分析与优化[J]. 高电压技术, 2021, 47(9): 3200-3207. Cheng Xian, Tian Xiaoqian, Ge Guowei, et al.Electric field analysis and optimization of 126 kV environmental protection gas insulated tank circuit breakers[J]. High Voltage Engineering, 2021, 47(9): 3200-3207. [9] Yu Xiao, Yang Fan, Li Xing, et al.Static voltage sharing design of a sextuple-break 363 kV vacuum circuit breaker[J]. Energies, 2019, 12(13): 2512. [10] 黄永宁, 余晓, 樊益平, 等. 363 kV多断口快速真空断路器电场仿真分析[J]. 高压电器, 2019, 55(10): 19-24, 32. Huang Yongning, Yu Xiao, Fan Yiping, et al.Electric field simulation of the 363 kV multi-break fast vacuum circuit breaker[J]. High Voltage Apparatus, 2019, 55(10): 19-24, 32. [11] 韩翔宇, 纽春萍, 何海龙, 等. 电磁式断路器状态监测与智能评估技术综述[J]. 电工技术学报, 2023, 38(8): 2191-2210. Han Xiangyu, Niu Chunping, He Hailong, et al.Review of condition monitoring and intelligent assessment of electromagnetic circuit breaker[J]. Transactions of China Electrotechnical Society, 2023, 38(8): 2191-2210. [12] 钟建英, 陈刚, 谭盛武, 等. 高压开关设备关键技术及发展趋势[J]. 高电压技术, 2021, 47(8): 2769-2782. Zhong Jianying, Chen Gang, Tan Shengwu, et al.Key technology and development trend of high-voltage switchgear[J]. High Voltage Engineering, 2021, 47(8): 2769-2782. [13] 姚灿江, 孙龙勇, 刘英英. 新型72.5 kV真空断路器的研发设计[J]. 高压电器, 2023, 59(2): 23-30, 36. Yao Canjiang, Sun Longyong, Liu Yingying.Development and design of new 72.5 kV vacuum circuit breaker[J]. High Voltage Apparatus, 2023, 59(2): 23-30, 36. [14] 王文成, 张朋, 李秀峰, 等. 基于正交设计的真空灭弧室电场特性分析[J]. 高压电器, 2023, 59(10): 30-37. Wang Wencheng, Zhang Peng, Li Xiufeng, et al.Electric field characteristics analysis of vacuum interrupters based on orthogonal design[J]. High Voltage Apparatus, 2023, 59(10): 30-37. [15] 刘晓明, 张煦松, 姜文涛, 等. 基于混沌吸引子的真空断路器永磁斥力机构机械故障识别方法[J]. 电工技术学报, 2022, 37(20): 5334-5346. Liu Xiaoming, Zhang Xusong, Jiang Wentao, et al.A method of mechanical fault identification of permanent magnet repulsion mechanism of vacuum circuit breaker based on chaos attractor[J]. Transactions of China Electrotechnical Society, 2022, 37(20): 5334-5346. [16] 董华军, 温超阳, 孙鹏, 等. 基于正交实验新型真空灭弧室触头磁场仿真与参数优化设计[J]. 电工技术学报, 2022, 37(21): 5598-5606. Dong Huajun, Wen Chaoyang, Sun Peng, et al.Simulation and optimization of the contact magnetic field of a new type of vacuum interrupter based on orthogonal experiment[J]. Transactions of China Electrotechnical Society, 2022, 37(21): 5598-5606. [17] 邓吉勇, 张建凯, 严伟, 等. 550 kV快速真空断路器的设计与试验[J]. 高压电器, 2023, 59(2): 15-22. Deng Jiyong, Zhang Jiankai, Yan Wei, et al.Design and test of 550 kV fast vacuum circuit breaker[J]. High Voltage Apparatus, 2023, 59(2): 15-22. [18] 程显, 袁晓东, 葛国伟, 等. 真空开关高动作稳定性的永磁操动机构控制系统[J]. 电工技术学报, 2021, 36(21): 4617-4626. Cheng Xian, Yuan Xiaodong, Ge Guowei, et al.Permanent magnet mechanism control system with high operation stability of vacuum switch[J]. Transactions of China Electrotechnical Society, 2021, 36(21): 4617-4626. [19] 程显, 陈辉, 葛国伟, 等. 真空断路器弧后阶段鞘层发展过程的探针阵列诊断方法[J]. 中国电机工程学报, 2023, 43(8): 3227-3237. Cheng Xian, Chen Hui, Ge Guowei, et al.Probe array diagnosis of vacuum circuit breaker post-arc sheath development process[J]. Proceedings of the CSEE, 2023, 43(8): 3227-3237. [20] 赵杰, 游颖敏, 舒亮, 等. 磁流体仿真与正交试验融合设计的灭弧室性能优化方法[J]. 电工技术学报, 2022, 37(20): 5347-5358. Zhao Jie, You Yingmin, Shu Liang, et al.The performance optimization of arc extinguishing chamber based on the integration analysis magnetic fluid simulation and orthogonal test[J]. Transactions of China Electrotechnical Society, 2022, 37(20): 5347-5358. [21] 董华军, 李东恒, 钟建英, 等. 12kV真空灭弧室触头合闸冲击下疲劳寿命研究[J]. 电工技术学报, 2022, 37(15): 3981-3988. Dong Huajun, Li Dongheng, Zhong Jianying, et al.Research on fatigue life of contact in 12kV vacuum interrupter under shocking[J]. Transactions of China Electrotechnical Society, 2022, 37(15): 3981-3988. [22] 刘姗, 袁召, 刘黎明, 等. 真空拉弧起始收缩过程实验研究[J]. 高压电器, 2023, 59(6): 33-39. Liu Shan, Yuan Zhao, Liu Liming, et al.Experimental study on the initial contraction process of vacuum arc drawing[J]. High Voltage Apparatus, 2023, 59(6): 33-39. [23] 葛国伟. 多断口真空断路器串联电弧的协同及调控特性研究[D]. 大连: 大连理工大学, 2017. Ge Guowei.Investigation on synergy and arc control characteristics of series-connected vacuum arcs in multi-break VCBs[D]. Dalian: Dalian University of Technology, 2017. [24] 娄宝磊, 舒胜文, 刘畅. 真空断路器弧后仿真模型及参数优化方法研究[J]. 高压电器, 2017, 53(5): 103-108, 115. Lou Baolei, Shu Shengwen, Liu Chang.Research on post-arc simulation model and parameter optimizing method of vacuum circuit breaker[J]. High Voltage Apparatus, 2017, 53(5): 103-108, 115.