期刊文献+

Z-pinch装置轴向绝缘堆的设计和分析方法 被引量:4

Design and analysis methods of vacuum insulator stack of Z-pinch device
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摘要  通过分析比较国外Z pinch装置轴向绝缘堆的设计,对轴向绝缘堆设计中的关键问题进行了归纳与总结。在总体描述绝缘堆研制方法和思路的基础上,详细论述了静电场数值模拟、电感参数计算和电路模拟、闪络概率计算、结构稳定性力学分析以及材料选择等绝缘堆研制中的几个关键问题,并对闪络概率分析方法的完善和拓展应用进行了讨论。 Based on analysis and comparison of overseas designs of vacuum insulator stacks(VIS) of Z-pinch devices, the paper summarizes and discusses the key points of VIS designing and manufacturing. Firstly, it describes the way of VIS development in general, then details the following key points: electrostatic numerical simulation, inductance parameter calculation and circuit simulation, flashover probability analysis, VIS structure stability analysis and material selection. Finally, the paper discusses the optimization and further application of flashover probability analysis method.
出处 《强激光与粒子束》 EI CAS CSCD 北大核心 2004年第9期1199-1204,共6页 High Power Laser and Particle Beams
基金 国防科技基础研究基金资助课题
关键词 Z-pinch装置 轴向绝缘堆 研制方法 关键问题 闪络概率分析 Computer simulation Electrostatics Flashover Inductance Structural design Structural optimization Vacuum
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参考文献17

  • 1Burns M J. Status of the DARHT phase 2 long-pulse accelerator[A]. Proc of the 2001 Particle Accelerator Conference[C]. Chicago, IL, USA, 2001.
  • 2Paul A, Caporaso G J, Chen Y J, et al. The beamline for the second axis of the dual axis radiographic hydrodynamic test facility[A]. Proc of the 1999 Particle Accelerator Conference[C]. New York, NY, USA, 1999. 3254-3256.
  • 3Carlson R L, Kauppila T J, Ridlon R N. REX, a 5-MV pulsed-power source for driving high-brightness electron beam diodes[A]. 8th IEEE International Pulsed Power Conference[C]. San Diego, California, USA, 1991. 82-85.
  • 4Stygar W A, Spielman R B. Operation of a five-stage 40,000-cm2-area insulator stack at 158kV/cm[A]. Proc 12th IEEE International Pulsed Power Conference[C]. Monterey,California, USA, 1999.454-457.
  • 5Frazier G B, Ashby S R, Demeter L J, et al. Eagle and double-eagle[A]. Proc 4th IEEE International Pulsed Power Conference[C]. Albuquerque, New Mexico, USA, 1983. 583-589.
  • 6Smith I D, Corcoran P A. Design criteria for the Z vacuum insulator stack[A]. Proc 11th IEEE International Pulsed Power Conference[C]. Baltimore, Maryland, USA, 1997.168-176.
  • 7Struve K W, Corley J P, Johnson D L, et al. Design options for a pulsed-power upgrade of the Z accelerator[A]. Proc 13th IEEE International Pulsed Power Conference[C]. Las Vegas, USA, 2001.
  • 8DiCapua M S. A statistical interpretation of the J C Martin relationship for breakdown of insulators in vacuum[A]. Proc 5th IEEE International Pulsed Power Conference[C]. Arlington,Virginia, USA, 1985.306-310.
  • 9Sullivan T S, Ashby S R, Beckman K, et al. A cast-gradient-ring, racetrack-shaped, magnetic-flashover-inhibited insulator[A]. Proc 3rd IEEE International Pulsed Power Conference[C]. Albuquerque, New Mexico, USA, 1981. 252-255.
  • 10Moore W B, Stinnett R W, McDaniel D H. Supermite vacuum interface design[A]. Proc 5th IEEE International Pulsed Power Conference[C]. Arlington, Virginia, USA, 1985. 315-318.

二级参考文献6

  • 1[1]Smith I. Flashover of vacuum interfaces with many stages and large transit times[A]. Proc 5th IEEE International Pulsed Power Conference[C]. Arlington,Virginia, USA,1985.558-567.
  • 2[2]Smith I D, Corcoran P A. Design criteria for the Z vacuum insulator stack[A]. Proc 11th IEEE International Pulsed Power Conference[C]. Baltimore,Maryland, USA, 1997.168-176.
  • 3[3]Martin J C. Fast pulse vacuum flashover[R]. AWRE Note SSWA/JCM/713/157,1971.
  • 4[4]DiCapua M S. A statistical interpretation of the J. C. Martin relationship for breakdown of insulators in vacuum[A]. Proc 5th IEEE International Pulsed Power Conference[C]. Arlington,Virginia, USA, 1985.306-310.
  • 5[5]Stygar W A, Spielman R B. Operation of a five-stage 40,000-cm2-area insulator stack at 158kV/cm[A]. Proc 12th IEEE International Pulsed Power Conference[C]. Monterey,California, USA, 1999.454-457.
  • 6[6]Sullivan T S, Ashby S R. A cast-grandient-ring, racetrack-shaped, magnetic-flashover-inhibited insulator[A]. Proc 3th IEEE International Pulsed Power Conference[C]. Albuquerque,New Mexico, USA, 1981.252-255.

共引文献7

同被引文献41

  • 1王勐,丁伯南,谢卫平.多层长渡越时间轴向绝缘堆的闪络概率分析[J].强激光与粒子束,2004,16(7):934-938. 被引量:8
  • 2高巍,孙广生,严萍.高真空条件下绝缘闪络机理研究的评述[J].高电压技术,2005,31(1):1-4. 被引量:14
  • 3张冠军,赵文彬,郑楠,于开坤,马新沛,严璋.真空中固体绝缘沿面闪络现象的研究进展[J].高电压技术,2007,33(7):30-35. 被引量:57
  • 4Anderson R A, Brainard J P. Mechanism of pulsed surface flashover involving electron stimulated desorption[J]. J Appl Phys, 1980,51 (3) .- 1414-1421.
  • 5Savage M E, Stygar W A, Elizondo J M, et al. Effect of self magnetic field on large pulsed insulators operated at 4 megavolts and 5 megaamperes[C]//IEEE Power Modulator Symposium. 2004:54 59.
  • 6Shoup R W, Long F, Martin T H, et al. Design validation of the PBFA Z vacuum insulator stack[C]//1EEE Pulsed Power Conference. 1997:1608 1613.
  • 7Stygar W A, Spielman R B, Anderson R A, et al. Operation of a five-stage 40 000 cm2 area insulator stack at 158 kV/cm[C]//International Pulsed Power Conference. 1999= 454 457.
  • 8Smith I. Flashover of vacuum interfaces with many stages and large transit times[C]//International Pulsed Power Conference. 1985:558- 567.
  • 9VanDevender J P, McDaniel D H, Bergeron K D, et al. Magnetic inhibition of insulator flashover[J]. J Appl Phys, 1982,53(6) :4441-4447.
  • 10Bergeron K D, Mcdaniel D H. Magnetic inhibition of surface flashover of insulators in vacuum[J]. Appl Phys Lett ,1976,29(9):534-536.

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二级引证文献20

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