Casey D, MacGowan B, Hurricane O, Landen O, Nora R, Haan S, Kritcher A, Zylstra A, Ralph J, Dewald E, Hohenberger M, Pak A, Springer P, Weber C, Milovich J, Divol L, Hartouni E, Bionta R, Hahn K, Schlossberg D, Moore A, Gatu Johnson M
Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
Massachusetts Institute of Technology (MIT), Cambridge, 02139 Massachusetts, USA.
Phys Rev E. 2023 Nov;108(5):L053203. doi: 10.1103/PhysRevE.108.L053203.
Inertial confinement fusion ignition requires high inflight shell velocity, good energy coupling between the hotspot and shell, and high areal density at peak compression. Three-dimensional asymmetries caused by imperfections in the drive symmetry or target can grow and damage the coupling and confinement. Recent high-yield experiments have shown that low-mode asymmetries are a key degradation mechanism and contribute to variability. We show the experimental signatures and impacts of asymmetry change with increasing implosion yield given the same initial cause. This letter has implications for improving robustness to a key degradation in ignition experiments.
惯性约束聚变点火需要高的飞行中壳层速度、热点与壳层之间良好的能量耦合以及峰值压缩时的高面密度。由驱动对称性或靶的缺陷引起的三维不对称性会发展并损害耦合和约束。最近的高产量实验表明,低模不对称性是一种关键的降级机制,并导致了可变性。我们展示了在相同初始原因下,随着内爆产量增加,不对称性变化的实验特征和影响。这封信对于提高点火实验中对关键降级的鲁棒性具有启示意义。