内爆
物理
热核聚变
惯性约束聚变
点火系统
国家点火设施
壳体(结构)
新星(火箭)
激光器
球壳
等离子体
原子物理学
光学
核物理学
材料科学
航空航天工程
复合材料
工程类
热力学
作者
Ryan Sacks,Paul Keiter,Elizabeth Merritt,Eric Loomis,D. S. Montgomery,Joshua Sauppe,B. M. Haines,D. J. Stark,Irina Sagert,H. F. Robey,S. Palaniyappan,Tana Morrow,S. M. Finnegan,J. L. Kline,Steve Batha
摘要
Double shell targets are a promising potential avenue to obtain robust neutron yield at current laser facilities. Similar to single shell designs, double shells require the symmetric implosion of an ablator in order to uniformly compress and heat a fuel volume, with the goal of achieving thermonuclear burn. Significant differences between double and single shells include the usage of an aluminum ablator as well as a reverse ramp laser pulse. In addition, double shells require a different convergence than single shells for fuel ignition. Numerical implosion studies at various energies with comparisons to experimental outcomes are required to gain confidence that simulations can capture the ablator shape from subscale to full scale. The current work builds on previous implosion experiments conducted at 1-MJ laser energy to confirm achieved ablator symmetry at 1.25 and 1.5 MJ. Average ablator P2 and P4 shapes measured in these experiments are within 5% of the simulated shape, which merits the platforms for further experimental studies.
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