Lawrence Livermore National Laboratory, Livermore, California 94550, USA.
Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA.
Phys Rev E. 2023 Jan;107(1-2):015202. doi: 10.1103/PhysRevE.107.015202.
In order to understand how close current layered implosions in indirect-drive inertial confinement fusion are to ignition, it is necessary to measure the level of alpha heating present. To this end, pairs of experiments were performed that consisted of a low-yield tritium-hydrogen-deuterium (THD) layered implosion and a high-yield deuterium-tritium (DT) layered implosion to validate experimentally current simulation-based methods of determining yield amplification. The THD capsules were designed to reduce simultaneously DT neutron yield (alpha heating) and maintain hydrodynamic similarity with the higher yield DT capsules. The ratio of the yields measured in these experiments then allowed the alpha heating level of the DT layered implosions to be determined. The level of alpha heating inferred is consistent with fits to simulations expressed in terms of experimentally measurable quantities and enables us to infer the level of alpha heating in recent high-performing implosions.
为了了解当前间接驱动惯性约束聚变中的层状内爆离点火还有多近,有必要测量存在的阿尔法加热水平。为此,进行了两组实验,由低产氚-氢-氘(THD)层状内爆和高产氘-氚(DT)层状内爆组成,以验证当前基于模拟的确定产额放大的实验方法。THD 胶囊的设计目的是同时降低 DT 中子产额(阿尔法加热)并保持与更高产额 DT 胶囊的流体动力学相似性。然后,通过测量这些实验中的产额比,可以确定 DT 层状内爆的阿尔法加热水平。推断出的阿尔法加热水平与用实验可测量量表示的模拟拟合一致,使我们能够推断最近高性能内爆中的阿尔法加热水平。