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Magneto-inertial Approach to Direct-drive Laser Fusion

机译:磁惯性方法直接驱动激光融合

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摘要

A magneto-inerlial fusion (MIF) approach to inertial confinement fusion (ICF), based on laser-driven magnetic-flux compression (LDFC) is described. This approach benefits from both the high-energy-density characteristic to ICF and the thermal insulation of the fuel by magnetic fields, typical of MFE. The reduction in thermal-conduction losses in the hot spot of an imploding target that has trapped and amplified a pre-seeded magnetic flux leads to increased hot-spot temperatures at lower implosion velocities than required in conventional ICF. This can lead to ignition designs with larger energy gains. This work describes the main concept and the use of a compact magnetic-pulse system to seed a macroscopic magnetic field into cylindrical DD-filled targets, which are radially driven with the OMEGA laser. The compression of the internal magnetic flux is measured with proton deflectometry. Magnetohydrodynamic simulations predict compression of a 0.1-MG seed field to multi-megagauss values, at which levels the radial electron thermal conduction in the hot spot is significantly inhibited. Initial benchmark experiments are described.
机译:描述了基于激光驱动磁通量压缩(LDFC)的惯性约束融合(ICF)的磁-神经融合(MIF)方法。这种方法既受益于ICF的高能量密度特性,又受益于MFE典型的磁场对燃料的隔热作用。捕获并放大了预接种磁通量的内爆目标的热点中的热传导损失减少,导致内爆速度升高的热点温度低于常规ICF所需的热点温度。这可以导致具有更大能量增益的点火设计。这项工作描述了主要概念以及使用紧凑型磁脉冲系统将宏观磁场播种到填充DD的圆柱形圆柱靶中,并通过OMEGA激光对其进行径向驱动。内部磁通量的压缩通过质子偏折法测量。磁流体动力学模拟预测将0.1-MG种子场压缩到几兆高斯值,在该水平上,热点中的径向电子热传导会受到明显抑制。描述了最初的基准实验。

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