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惯性约束聚变冲击汇聚阶段氘和氚的热解耦

Thermal decoupling of deuterium and tritium during the inertial confinement fusion shock-convergence phase.

作者信息

Kabadi N V, Simpson R, Adrian P J, Bose A, Frenje J A, Gatu Johnson M, Lahmann B, Li C K, Parker C E, Séguin F H, Sutcliffe G D, Petrasso R D, Atzeni S, Eriksson J, Forrest C, Fess S, Glebov V Yu, Janezic R, Mannion O M, Rinderknecht H G, Rosenberg M J, Stoeckl C, Kagan G, Hoppe M, Luo R, Schoff M, Shuldberg C, Sio H W, Sanchez J, Hopkins L Berzak, Schlossberg D, Hahn K, Yeamans C

机构信息

Massachusetts Institute of Technology Plasma Science and Fusion Center, Cambridge, Massachusetts 02139, USA.

Dipartimento SBAI, Universit'a degli Studi di Roma "La Sapienza," Via Antonio Scarpa 14, 00161, Roma, Italy.

出版信息

Phys Rev E. 2021 Jul;104(1):L013201. doi: 10.1103/PhysRevE.104.L013201.

Abstract

A series of thin glass-shell shock-driven DT gas-filled capsule implosions was conducted at the OMEGA laser facility. These experiments generate conditions relevant to the central plasma during the shock-convergence phase of ablatively driven inertial confinement fusion (ICF) implosions. The spectral temperatures inferred from the DTn and DDn spectra are most consistent with a two-ion-temperature plasma, where the initial apparent temperature ratio, T_{T}/T_{D}, is 1.5. This is an experimental confirmation of the long-standing conjecture that plasma shocks couple energy directly proportional to the species mass in multi-ion plasmas. The apparent temperature ratio trend with equilibration time matches expected thermal equilibration described by hydrodynamic theory. This indicates that deuterium and tritium ions have different energy distributions for the time period surrounding shock convergence in ignition-relevant ICF implosions.

摘要

在欧米茄激光装置上进行了一系列由薄玻璃壳冲击驱动的充氘氚气体胶囊内爆实验。这些实验产生了与烧蚀驱动惯性约束聚变(ICF)内爆的冲击收敛阶段中心等离子体相关的条件。从氘氚中子和氘氘中子光谱推断出的光谱温度与双离子温度等离子体最为一致,其中初始表观温度比(T_T/T_D)为1.5。这是对长期以来的一个猜想的实验证实,即在多离子等离子体中,等离子体冲击耦合的能量与离子种类质量成正比。表观温度比随平衡时间的变化趋势与流体动力学理论描述的预期热平衡相匹配。这表明在与点火相关的ICF内爆中,在冲击收敛周围的时间段内,氘离子和氚离子具有不同的能量分布。

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