期刊文献+

The Voltage Distribution Characteristics of a Hybrid Circuit Breaker During High Current Interruption 被引量:7

The Voltage Distribution Characteristics of a Hybrid Circuit Breaker During High Current Interruption
下载PDF
导出
摘要 Hybrid circuit breaker (HCB) technology based on a vacuum interrupter and a SF6 interrupter in series has become a new research direction because of the low-carbon requirements for high voltage switches. The vacuum interrupter has an excellent ability to deal with the steep rising part of the transient recovery voltage (TRV), while the SF6 interrupter can withstand the peak part of the voltage easily. An HCB can take advantage of the interrupters in the current interruption process. In this study, an HCB model based on the vacuum ion diffusion equations, ion density equation, and modified Cassie-Mayr arc equation is explored. A simulation platform is constructed by using a set of software called the alternative transient program (ATP). An HCB prototype is also designed, and the short circuit current is interrupted by the HCB under different action sequences of contacts. The voltage distribution of the HCB is analyzed through simulations and tests. The results demonstrate that if the vacuum interrupter withstands the initial TRV and interrupts the post-arc current first, then the recovery speed of the dielectric strength of the SF6 interrupter will be fast. The voltage distribution between two interrupters is determined by their post-arc resistance, which happens after current-zero, and subsequently, it is determined by the capacitive impedance after the post-arc current decays to zero. Hybrid circuit breaker (HCB) technology based on a vacuum interrupter and a SF6 interrupter in series has become a new research direction because of the low-carbon requirements for high voltage switches. The vacuum interrupter has an excellent ability to deal with the steep rising part of the transient recovery voltage (TRV), while the SF6 interrupter can withstand the peak part of the voltage easily. An HCB can take advantage of the interrupters in the current interruption process. In this study, an HCB model based on the vacuum ion diffusion equations, ion density equation, and modified Cassie-Mayr arc equation is explored. A simulation platform is constructed by using a set of software called the alternative transient program (ATP). An HCB prototype is also designed, and the short circuit current is interrupted by the HCB under different action sequences of contacts. The voltage distribution of the HCB is analyzed through simulations and tests. The results demonstrate that if the vacuum interrupter withstands the initial TRV and interrupts the post-arc current first, then the recovery speed of the dielectric strength of the SF6 interrupter will be fast. The voltage distribution between two interrupters is determined by their post-arc resistance, which happens after current-zero, and subsequently, it is determined by the capacitive impedance after the post-arc current decays to zero.
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2013年第8期800-806,共7页 等离子体科学和技术(英文版)
基金 supported in part by National Natural Science Foundation of China(No.50977004) Key Projects in the National Science and Technology Pillar Program during the Eleventh Five-year Plan Period.Research of China(2009BAA19B03,2009BAA19B05) Fok Ying Tung Education Foundation(No.131057) New Century Excellent Talents in University of China(No.NCET-10-0282)
关键词 电压分布特性 混合式断路器 高电流 中断 真空灭弧室 瞬态恢复电压 电弧电流 SF6 hybrid circuit breaker vacuum arc SF6 arc transient recovery voltage di- electric recovery breaking capacity
  • 相关文献

参考文献17

  • 1Intergovernmental Panel on Climate Change (IPCC). 1995, Climate change 1995, economic and social di?mensions of climate change. Cambridge University Press, UK.
  • 2Cheng Xian, Liao Minfu, and Duan Xiongying, et a]. 201 0, Development and current status of low-carbon high-voltage large-capacity circuit breaker. 2010 Inter?national Conference on Eh~ctrical and Control Engi?neering, China, IEEE computer society, the USA.
  • 3Kameyama Sand Ohkura T. 1966, Circuit interrupter. The USA: Unite state Patent office. :3, 244, 842.
  • 4Flurscheirn C II. 1967. Series connected switches of different types. The USA: Unite state Patent office. 3,:30:1,309.
  • 5Dethlefsen R. 1980, Hybrid circuit breaker with varis?tor in parallel with vacuum interrupter. The USA: Unite state Patent office. 4, 204, 101.
  • 6Senda T, Tamagawa T, Higuchi K, et al. 1984, IEEE Trans. Power App. SysL, PAS-10:3: 545.
  • 7Natsui K, Kurosawa Y, Hakamata Y, et al. 1988, IEEE Trans. Power DeL, 3: 241.
  • 8Dufournet D, Lindner C. 2004. Hybrid chamber with vacuum and gas interrupters for high-voltage circuit breakers. 2004 CIGRE Conference, Paris, France.
  • 9Smects R P P, Kertesz V, Pen ache D, et al. 2007, IEEE Trans. Plasma Sci., 35: 933.
  • 10Liao Minfu, Cheng Xian, Duan Xiongying, et al, 2010, Study on dynamic arc model for high voltage hybrid circuit breaker using vacuum interrupter and SFr; in?terrupter in series. XXIVth International Symposium on Discharges and Electrical Insulation in Vacuum, Braunschweig, Germany.

同被引文献95

引证文献7

二级引证文献92

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部