期刊文献+

A Novel Crowbar Impulse Current Circuit for Testing the Switch-Type SPD 被引量:1

A Novel Crowbar Impulse Current Circuit for Testing the Switch-Type SPD
下载PDF
导出
摘要 A crowbar impulse current circuit for testing the switch-type surge protective device (SPD) is presented. The crowbar circuit consists of a computer control circuit, a trigger voltage pulse generator, a main discharging switch, and a crowbar pseudospark switch. The active trigger technology was studied in the crowbar impulse current circuit. The circuit monitors the main discharging current and generates a trigger signal at a proper time for the crowbar pseudospark switch operation. The trigger characteristics of the main discharge switch and the crowbar pseu- dospark switch were investigated. By monitoring the preset applied capacitor voltage, the gap distance of the main discharging switch could be adjusted to ensure a discharging delay time less than 2 μs. Equipped with a surface ttashover trigger device made of high relative perimittivity dielectric material BaTiO3 (εr = 3460), the discharge delay time of the crowbar pseudospark switch is less than 85 ns, and the minimum operating voltage is less than 1% of its self-breakdown voltage. With a storage capacitor of 9 μF , an inductor of 18 μH and a crowbar pseudospark switch, a load of 30 mΩ and an applied capacitor voltage of 40 kV, an impulse current waveform of maximum 25 kA was generated with a rise time and time to half peak value of 17.2 μs and 336μs respectively. A crowbar impulse current circuit for testing the switch-type surge protective device (SPD) is presented. The crowbar circuit consists of a computer control circuit, a trigger voltage pulse generator, a main discharging switch, and a crowbar pseudospark switch. The active trigger technology was studied in the crowbar impulse current circuit. The circuit monitors the main discharging current and generates a trigger signal at a proper time for the crowbar pseudospark switch operation. The trigger characteristics of the main discharge switch and the crowbar pseu- dospark switch were investigated. By monitoring the preset applied capacitor voltage, the gap distance of the main discharging switch could be adjusted to ensure a discharging delay time less than 2 μs. Equipped with a surface ttashover trigger device made of high relative perimittivity dielectric material BaTiO3 (εr = 3460), the discharge delay time of the crowbar pseudospark switch is less than 85 ns, and the minimum operating voltage is less than 1% of its self-breakdown voltage. With a storage capacitor of 9 μF , an inductor of 18 μH and a crowbar pseudospark switch, a load of 30 mΩ and an applied capacitor voltage of 40 kV, an impulse current waveform of maximum 25 kA was generated with a rise time and time to half peak value of 17.2 μs and 336μs respectively.
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2008年第2期221-226,共6页 等离子体科学和技术(英文版)
关键词 crowbar impulse current circuit triggered crowbar pseudospark switch activetrigger technology switch-type surge protective device crowbar impulse current circuit, triggered crowbar pseudospark switch, activetrigger technology, switch-type surge protective device
  • 相关文献

参考文献16

  • 1Dick W J, Goldman E B. 1995, IEEE Trans. on Magnetic, 31:32
  • 2Jin Y S, Lee H S, Rim G H, et al. 2001, IEEE Trans. on Magnetic, 37:165
  • 3Weise T H G G, Wisken H G. 1997, Setup and performance of a capacitive 300 kJ pulse power system for ETC-Gun investigations. Proc. of 11^th Pulsed Power Conference., Baltimore, USA. IEEE, Piscataway, N J, USA. p.250
  • 4Sung G Y, Kim J S, Chu J H. 2002, IEEE Trans. on Plasma Sci., 30:1789
  • 5Kim J S, Choi Y H, Chu J H. 2003, IEEE Trans. on Magnetic, 39:422
  • 6Clark G A, Thio Y C. 1984, IEEE Trans. on Magnetic, 30:364
  • 7Knight R P, Newton B P, Sheldrake R. 1994, A high reliability, fail safe, thyratron crowbar system for the protection of high power microwave tubes in television transmitters. Proc. 21^th Power Modulator Symp., Tokyo, Japan. IEEE, Piscataway, N J, USA. p.268
  • 8Spann E, Hatterer F. 1995, A pulse forming unit for rail guns, switched by newly developed high voltage semiconducting devices. Proc. 10^th Pulsed Power Conf., Albuquerque, NM, USA. IEEE, Piscataway, N J, USA. p.1296
  • 9Tuema F A, MacGregor S J, Turnbull S M. 1997, A passive crowbar switch for high voltage generation. Proc. 11^th Pulsed Power Conf., Baltimore,Maryland, USA. IEEE, Piscataway, N J, USA. p.905
  • 10Bettini P, De Lorenzi A. 1996, Misfiring protection and monitoring of the RFX toroidai circuit ignitron crowbar. Proc. 22^th Power Modulator Symp., Piscataway, NJ, USA. IEEE, p.137

同被引文献15

  • 1Thurmond L, Howard T, Pfenning T. Evaluation of a triggered vacuum switch for ETC applications[C]// 10th IEEE International Pulsed Power Conference. Albuquerque, USA: IEEE, 1995: 769-774.
  • 2Park S S, Han Y J, Sang Hee Kim. Development of a triggered vacuum switch for a ETC gun system [C]//Proceedings of 12th Pulsed Power Conference. Dallas, Texas, USA: IEEE Serrice Center, 2003: 15-18.
  • 3Singh H, Eccleshall D, McNab I, et al. Alternator power conditioning for launchers[C]// 23th International Power Modulator Symposium. Rancho Mirage, CA, USA: IEEE Serrice Center, 19982 38-41.
  • 4Hiroshi A, Kouji S, Yukio K. Switching characteristics of the triggered vacuum gap for a high repetition rate pulse power source[J]. IEEE Transactions on Plasma Science, 1992, 20 (2) : 76-79.
  • 5Dethlefsen R. Triggered vacuum switch testing for millisec pulses[C]// Proceedings of 8th Pulsed Power Conference. San Diego, USA: IEEE Serrice Center, 1991: 511-514.
  • 6Lafferty J M. Triggered vacuum gaps[J]. Proceedings of the IEEE, 1966, 54 (1): 23-32.
  • 7Kil-soo S, Tae-Ho L. A high power vacuum rotary arc gap closing switch for pulsed power application[C]//Proceedings Xth Int Syrup Discharges Elect Insul Vacuum, Tours, France: IEEE Serrice Center, 2002: 366-369.
  • 8Earley L M, Scott G L. Firing characteristics of a low jitter miniature laser triggered vacuum switch[J]. IEEE Transactions on Plasma Science, 1990, 18(2): 247-249.
  • 9Raju G R G, Hackam R, Benson F A. Firing characteristics of a triggered vacuum gap employing a dielectric coated wit h a semiconducting layer [J]. Journal of Applied Physics, 1977, 48(3) : 1101-1105.
  • 10Farrall G A. Low voltage firing characteristics of a triggered vacuum gap[J]. IEEE Transactions on Electron Devices, 1966, 13 (4) :432-438.

引证文献1

二级引证文献6

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