首页> 外文会议>IEEE International Conference on Plasma Sciences >Shiva Star: Pioneering megagauss science and technology
【24h】

Shiva Star: Pioneering megagauss science and technology

机译:湿婆之星(Shiva Star):开创性的高斯科技

获取原文

摘要

Summary form only given. The Shiva program at the Air Force Weapons Laboratory developed radiation sources for the purpose of assuring nuclear survivability for defense systems. The program pioneered the use of MJ-class pulsed power systems for simulation of the x-ray radiation environment from a nuclear detonation. The high energy pulsed power development arc culminated in the 9.4 MJ Shiva Star capacitor bank, commissioned in 1982. The reconfiguration drove advancements in capacitor energy density and high-current rail-gap switch design. Modestly updated capacitors and rail-gap switches were integrated into Atlas more than a decade later. Shiva Star enabled many firsts in megagauss high energy density science. With its microsecond rise-time, Shiva Star was designed to function as a laboratory stepping stone to facilitate load development for explosive pulsed power generators producing 50 MA or greater peak current. High-current and high pulse energy were seen as the key performance enablers for weapons simulation, while the machines currently employed in this task reflect recognition of the importance of the radiation pulse duration. High energy density plasma (HEDP) science on Shiva Star initiated with soft x-ray source development based on Z-pinches of gas puff loads and cylindrical foils. The output reached large fractions of the stored energy with pulse widths on the order of 1 μs. In an effort to compress the pulse supplied to the Z-pinch load and thereby reduce the x-ray pulse length, the wire-array plasma flow switch was developed. The plasma flow switch itself represents an unexploited approach to warm x-ray production. HEDP research continued on Shiva Star, exploring several varieties of magnetized target fusion. Initial efforts centered on the MARAUDER concept to produce a compact toroid for eventual compression. About the same time, the research team pioneered the implosion of solid spherical and cylindrical metal shells; material strength stabilized the liners against the onset of the magneto-Rayleigh-Taylor instability, enabling large compression ratios with negligible material blow-off from the inner surface. This work led to a partnership between AFRL and researchers engaged in field reversed configuration (FRC) plasma development at LANL. The venture concentrated on formation, translation, capture, and compression of the high-density, closed field line FRC. The FRC work culminated in the first-ever compressional heating of a high-density, closed field-line plasma target. Shiva Star occupies a unique place in high energy density capability and the components theoretically have significant shot life remaining.
机译:仅提供摘要表格。空军武器实验室的希瓦计划开发了辐射源,目的是确保国防系统的核生存能力。该计划率先使用MJ级脉冲功率系统来模拟核爆炸产生的X射线辐射环境。高能量脉冲功率开发在1982年投入使用的9.4 MJ Shiva Star电容器组中达到了高潮。重新配置驱动了电容器能量密度和大电流轨隙开关设计的进步。十多年后,将适度更新的电容器和轨距开关集成到了Atlas中。希瓦之星(Shiva Star)在兆高斯高能量密度科学领域开创了许多先河。 Shiva Star具有微秒级的上升时间,旨在用作实验室的垫脚石,以促进产生50 MA或更高峰值电流的爆炸性脉冲发电机的负荷发展。高电流和高脉冲能量被视为武器仿真的关键性能推动力,而当前用于此任务的机器反映了对辐射脉冲持续时间重要性的认识。 Shiva Star的高能量密度等离子体(HEDP)科学基于软X射线源的开发而开始,该软X射线源的开发是基于Z捏的粉扑载荷和圆柱箔。输出达到了所存储能量的很大一部分,脉冲宽度约为1μs。为了压缩提供给Z捏负载的脉冲并由此减小X射线脉冲长度,开发了线阵列等离子体流量开关。等离子体流量开关本身代表了未利用的方法来产生温暖的X射线。 HEDP继续对“湿婆之星”进行研究,探索了多种磁化目标聚变的方法。最初的工作集中在MARAUDER概念上,以制造出紧凑的环形线圈以进行最终压缩。大约在同一时间,研究团队率先提出了固体球形和圆柱形金属壳的内爆技术。材料强度稳定了衬套,使其免受磁瑞利泰勒不稳定性的影响,从而实现了较大的压缩比,而材料从内表面的吹散几乎可以忽略不计。这项工作促成了AFRL与LANL从事场反向配置(FRC)等离子体开发的研究人员之间的合作关系。该合资企业专注于高密度封闭场线FRC的形成,平移,捕获和压缩。 FRC的工作最终达到了对高密度封闭场线等离子体靶的首次压缩加热。湿婆之星在高能量密度能力上占有独特的位置,并且从理论上讲,这些组件的弹丸寿命很长。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号