Measurement of Dark Ice-Ablator Mix in Inertial Confinement Fusion.

B Bachmann, S A MacLaren, S Bhandarkar, T Briggs, D Casey,L Divol,T Döppner, D Fittinghoff, M Freeman,S Haan,G N Hall,B Hammel,E Hartouni,N Izumi,V Geppert-Kleinrath,S Khan,B Kozioziemski,C Krauland, O Landen,D Mariscal, E Marley,L Masse,K Meaney, G Mellos,A Moore,A Pak,P Patel, M Ratledge, N Rice,M Rubery, J Salmonson, J Sater,D Schlossberg,M Schneider, V A Smalyuk,C Trosseille,P Volegov,C Weber,G J Williams, A Wray

Physical review letters(2022)

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摘要
We present measurements of ice-ablator mix at stagnation of inertially confined, cryogenically layered capsule implosions. An ice layer thickness scan with layers significantly thinner than used in ignition experiments enables us to investigate mix near the inner ablator interface. Our experiments reveal for the first time that the majority of atomically mixed ablator material is "dark" mix. It is seeded by the ice-ablator interface instability and located in the relatively cooler, denser region of the fuel assembly surrounding the fusion hot spot. The amount of dark mix is an important quantity as it is thought to affect both fusion fuel compression and burn propagation when it turns into hot mix as the burn wave propagates through the initially colder fuel region surrounding an igniting hot spot. We demonstrate a significant reduction in ice-ablator mix in the hot-spot boundary region when we increase the initial ice layer thickness.
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关键词
inertial confinement fusion,ice-ablator
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