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在冲击波驱动惯性约束聚变内爆中观察到的多次核反应历史和燃料离子种类动力学。

Observations of Multiple Nuclear Reaction Histories and Fuel-Ion Species Dynamics in Shock-Driven Inertial Confinement Fusion Implosions.

机构信息

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

Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Phys Rev Lett. 2019 Jan 25;122(3):035001. doi: 10.1103/PhysRevLett.122.035001.

Abstract

Fuel-ion species dynamics in hydrodynamiclike shock-driven DT^{3}He-filled inertial confinement fusion implosion is quantitatively assessed for the first time using simultaneously measured D^{3}He and DT reaction histories. These reaction histories are measured with the particle x-ray temporal diagnostic, which captures the relative timing between different nuclear burns with unprecedented precision (∼10  ps). The observed 50±10  ps earlier D^{3}He reaction history timing (relative to DT) cannot be explained by average-ion hydrodynamic simulations and is attributed to fuel-ion species separation between the D, T, and ^{3}He ions during shock convergence and rebound. At the onset of the shock burn, inferred ^{3}He/T fuel ratio in the burn region using the measured reaction histories is much higher as compared to the initial gas-filled ratio. As T and ^{3}He have the same mass but different charge, these results indicate that the charge-to-mass ratio plays an important role in driving fuel-ion species separation during strong shock propagation even for these hydrodynamiclike plasmas.

摘要

首次使用同时测量的 D^{3}He 和 DT 反应历史,定量评估了类流体动力学激波驱动 DT^{3}He 填充惯性约束聚变内爆中燃料离子种类的动力学。这些反应历史是使用粒子 X 射线时间诊断测量的,该诊断以前所未有的精度(约 10  ps)捕捉不同核燃烧之间的相对时间。观察到的 50±10  ps 更早的 D^{3}He 反应历史时间(相对于 DT)不能用平均离子流体动力学模拟来解释,这归因于在冲击波汇聚和反弹过程中 D、T 和 ^{3}He 离子之间的燃料离子种类分离。在冲击波燃烧开始时,使用测量的反应历史推断出燃烧区域中的 ^{3}He/T 燃料比与初始充气比相比要高得多。由于 T 和 ^{3}He 具有相同的质量但不同的电荷,这些结果表明,即使对于这些类流体等离子体,在强冲击波传播过程中,电荷与质量比在驱动燃料离子种类分离方面起着重要作用。

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