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Symmetry tuning with megajoule laser pulses at the National Ignition Facility

机译:对称调整在国家点火设施的Megajoule激光脉冲

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摘要

Experiments conducted at the National Ignition Facility using shaped laser pulses with more than 1 MJ of energy have demonstrated the ability to control the implosion symmetry under ignition conditions. To achieve thermonuclear ignition, the low mode asymmetries must be small to minimize the size of the hotspot. The symmetry tuning experiments use symmetry capsules, “symcaps”, which replace the DT fuel with an equivalent mass of CH to emulate the hydrodynamic behavior of an ignition capsule. The x-ray self-emission signature from gas inside the capsule during the peak compression correlates with the surrounding hotspot shape. By tuning the shape of the self-emission, the capsule implosion symmetry can be made to be “round.” In the experimental results presented here, we utilized crossbeam energy transfer [S. H. Glenzer, et al., Science 327, 1228 (2010)] to change the ratio of the inner to outer cone power inside the hohlraum targets on the NIF. Variations in the ratio of the inner cone to outer cone power affect the radiation pattern incident on the capsule modifying the implosion symmetry.
机译:使用具有超过1MJ能量的异形激光脉冲在国家点火设施进行的实验表明了控制点火条件下的内部对称性的能力。为了实现热核点火,低模式的不对称必须小,以最小化热点的大小。对称调谐实验使用对称胶囊“Symcaps”,其用等效质量的CH代替DT燃料以模拟点火胶囊的流体动力学行为。在峰值压缩期间,X射线自排放签名从胶囊内部的气体与周围的热点形状相关。通过调整自排放的形状,可以使胶囊内爆对称进行“圆形”。在这里呈现的实验结果中,我们利用了横梁能量转移[S. H.Glenzer等人,科学327,1228(2010)]为了改变NIF上HOHLRAUM靶标的内部到外锥功率的比率。内锥体与外锥功率的比率的变化影响入射在胶囊上的辐射图案改变内爆对称性。

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