Conceptual design of a 960-tw accelerator powered by impedance-matched marx generators

W. Stygar, K. Austin,T. Awe,J. Bailey, E. Breden,G. Brent, J. Calhoun,M. Campbell,R. Clark, R. Cooper,M. Cuneo,J. Edwards, J. Ennis, R. Gilgenbach,M. Gomez,P. Gourdain, G. Greiser, F. Gruner,J. Hammer, M. Herrmann, M. Hess, B. Hutsel,C. Jennings, D. Jobe, O. Johns,B. Jones,M. Jones, P. Jones, K. Keilholtz,P. Knapp,G. Laity, D. Lamppa, K. LeChien,J. Leckbee,S. Lewis, D. Lucero,M. Martin, K. Matzen, M. Mazarakis,R. McBride, R. McKee,J. Moore, C. Mostrom, T. Mulville, D. Muron,K. Peterson, D. Pilkington, J. Porter,K. Raman, G. Rochau, D. Rose, M. Savage, M. Sceiford,P. Schmit, R. Schneider, D. Sinars, S. Slutz,R. Spielman, B. Stoltzfus, C. Verdon, R. Vesey, E. Waisman, E. Weinbrecht, D. Welch, M. Wisher

2017 IEEE 21st International Conference on Pulsed Power (PPC)(2017)

引用 4|浏览10
暂无评分
摘要
We have developed a conceptual design of a next-generation pulsed-power accelerator that is optimized for advanced high-energy-density-physics experiments. The prime power source of the machine consists of 210 impedance-matched Marx generators (IMGs). Each IMG drives a 150-ns-long coaxial-transmission-line impedance transformer. The coaxial lines provide a minimum of 300 ns of transit-time isolation between each pair of IMGs. The lines in turn drive six radial-transmission-line impedance transformers, which transport the power generated by the IMGs to a six-level vacuum-insulator stack. The stack is connected to six conical outer magnetically insulated vacuum transmission lines (MITLs); these are joined in parallel at a 12-cm radius by a triple-post-hole vacuum convolute. The convolute sums the electrical currents at the outputs of the six outer MITLs, and delivers the combined current to a single short inner MITL. The inner MITL transmits the combined current to the accelerator's physics load. Since the accelerator would be the largest and most-powerful pulsed-power machine developed to date, we refer to it as Jupiter. The conceptual design of Jupiter is 72 m in diameter, stores 140 MJ of electrical energy, and generates 960 TW of peak electrical power at the output of the IMG system. The design delivers 2700 TW, 67 MA, and 9.2 MJ in a 110-ns pulse to a 0D magnetized-liner inertial-fusion (MagLIF) target. The principal goal of the design is to achieve high-yield thermonuclear fusion; i.e., a fusion yield that exceeds the energy initially stored by the accelerator's capacitors.
更多
查看译文
关键词
next-generation pulsed-power accelerator,advanced high-energy-density-physics experiments,prime power source,Marx generators,transit-time isolation,radial-transmission-line impedance transformers,six-level vacuum-insulator stack,conical outer magnetically insulated vacuum transmission lines,triple-post-hole vacuum convolute,electrical currents,single short inner MITL,pulsed-power machine,conceptual design,electrical energy,peak electrical power,IMG system,960-TW accelerator,coaxial-transmission-line impedance transformer,outer MITL,0D magnetized-liner inertial-fusion target,MagLIF target,accelerator capacitors,current 67.0 MA,energy 9.2 MJ,time 300.0 ns,size 72.0 m,energy 140.0 MJ,power 960.0 TW,power 2700.0 TW
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要