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非对称性和热点形状对点火胶囊的影响。

Effects of asymmetry and hot-spot shape on ignition capsules.

机构信息

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

Lawrence Livermore National Laboratory, Livermore, California 94550, USA.

出版信息

Phys Rev E. 2018 Aug;98(2-1):023203. doi: 10.1103/PhysRevE.98.023203.

Abstract

Asymmetric implosion of inertial confinement fusion capsules is known, both experimentally and computationally, to reduce thermonuclear performance. This work shows that low-mode asymmetries degrade performance as a result of a decrease in the hydrodynamic disassembly time of the hot-spot core, which scales with the minimum dimension of the hot spot. The asymmetric shape of a hot spot results in decreased temperatures and areal densities and allows more alpha particles to escape, relative to an ideal spherical implosion, thus reducing alpha-energy deposition in the hot spot. Here, we extend previous ignition theory to include the hot-spot shape and quantify the effects of implosion asymmetry on both the ignition criterion and the capsule performance. The ignition criterion becomes more stringent with increasing deformation of the hot spot. The new theoretical results are validated by comparison with existing experimental data obtained at the National Ignition Facility. The shape effects on thermonuclear performance are relatively more noticeable for capsules having self-heating and high yields. The degradation of thermonuclear burn can be as high as 45% for shots with a yield lower than 2×10^{15} and less than 30% for shots with a higher yield.

摘要

惯性约束聚变胶囊的非对称内爆,无论是在实验上还是在计算上,都已知会降低热核性能。这项工作表明,低阶不对称性会降低性能,原因是热点核心的流体动力拆卸时间减少,而拆卸时间与热点的最小尺寸成正比。热点的不对称形状导致温度和面密度降低,并允许更多的阿尔法粒子逃逸,相对于理想的球形内爆,从而减少热点中的阿尔法能量沉积。在这里,我们将先前的点火理论扩展到包括热点形状,并量化了内爆不对称性对点火条件和胶囊性能的影响。随着热点变形的增加,点火条件变得更加严格。新的理论结果通过与在国家点火设施获得的现有实验数据进行比较得到验证。对于具有自加热和高产量的胶囊,形状对热核性能的影响相对更为明显。对于产量低于 2×10^{15}的点火,热核燃烧的退化高达 45%,而对于产量更高的点火,退化小于 30%。

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