Understanding High Inductance Power Flow for Pulse Shaped Targets on the Z Machine

international conference on plasma science(2021)

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摘要
Dynamic materials characterization experiments utilizing pulsed power drivers are key to our understanding of astrophysical phenomenon, high pressure materials science, and high energy density physics. Many of the experimental platforms utilized possess higher dynamic inductances than most present and future pulsed power generators are likely to be designed to accommodate. Developing a quantitative understanding of loss mechanisms for these high dynamic inductance targets is key to high pressure materials characterization experiments on present and future pulsed power drivers. Here we will discuss geometries on the Z Machine with dynamic inductances that start at 3+ nH and grow to 9+ nH over 500-1200 ns, mated to a double post-hole convolute via a single transmission line possessing static inductances between 4 and 9 nH. Experimental data will be presented from streaked visible spectroscopy, x-ray diodes, photon Doppler velocimetry, and Faraday cups placed at various locations inside the anode-cathode gap prior to the target for the purpose of characterizing the vacuum transmission line plasma conditions. Experimental data has informed computational methods including analytical loss models and first principles particle-in-cell simulations, which have proven capable of accurately predicting current loss for a variety of target inductance histories and driving current pulse shapes. This work has significantly improved our understanding of the robustness of pulsed power to high inductance geometries and has advanced our understanding of plasma physics in vacuum power flow.
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关键词
pulse shaped targets,Z machine,dynamic materials characterization experiments,astrophysical phenomenon,high pressure materials science,high energy density physics,present power generators,future pulsed power generators,loss mechanisms,high dynamic inductance targets,high pressure materials characterization experiments,future pulsed power drivers,double post-hole convolute,single transmission line,static inductances,vacuum transmission line plasma conditions,analytical loss models,target inductance histories,driving current pulse shapes,high inductance geometries,vacuum power flow,high inductance power flow,high dynamic inductances,computational method,visible spectroscopy,X-ray diodes,Faraday cups,photon Doppler velocimetry,first principles particle-in-cell simulations,time 500.0 ns to 1200.0 ns
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