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在惯性约束聚变研究中,激光脉冲与烧蚀体相互作用动力学在烧蚀等离子体阶段之前的重要性。

The importance of the laser pulse-ablator interaction dynamics prior to the ablation plasma phase in inertial confinement fusion studies.

作者信息

Kaselouris E, Fitilis I, Skoulakis A, Orphanos Y, Koundourakis G, Clark E L, Chatzakis J, Bakarezos Μ, Papadogiannis N A, Dimitriou V, Tatarakis M

机构信息

Institute of Plasma Physics & Lasers - IPPL, Hellenic Mediterranean University Research Centre, Rethymno, GR-74100, Greece.

Department of Electronic Engineering, Hellenic Mediterranean University, Chania GR-73133, Greece.

出版信息

Philos Trans A Math Phys Eng Sci. 2020 Nov 13;378(2184):20200030. doi: 10.1098/rsta.2020.0030. Epub 2020 Oct 12.

Abstract

This work presents studies which demonstrate the importance of the very early heating dynamics of the ablator long before the ablation plasma phase begins in laser driven inertial confinement fusion (ICF) studies. For the direct-drive fusion concept using lasers, the development of perturbations during the thermo-elasto-plastic (TEP) and melting phases of the interaction of the laser pulse with the ablator's surface may act as seeding to the subsequent growth of hydro-dynamic instabilities apparent during the acceleration phase of the interaction such as for instance the Rayleigh-Taylor and the Richtmyer-Meshkov, which strongly affect the implosion dynamics of the compression phase. The multiphysics-multiphase finite-element method (FEM) simulation results are experimentally validated by advanced three-dimensional whole-field dynamic imaging of the surface of the ablator allowing for a transverse to the surface spatial resolution of only approximately 1 nm. The study shows that the TEP and melting phases of the interaction are of crucial importance since transverse perturbations of the ablator's surface can reach tens of nanometres in amplitude within the TEP and melting phases. Such perturbations are of Rayleigh type and are transferred from the ablator to the substrate from the very first moments of the interaction. This article is part of a discussion meeting issue 'Prospects for high gain inertial fusion energy (part 1)'.

摘要

这项工作展示了一些研究,这些研究表明在激光驱动惯性约束聚变(ICF)研究中,早在烧蚀等离子体阶段开始之前,烧蚀层的极早期加热动力学就非常重要。对于使用激光的直接驱动聚变概念,在激光脉冲与烧蚀层表面相互作用的热弹塑性(TEP)和熔化阶段,扰动的发展可能会引发后续相互作用加速阶段明显的流体动力学不稳定性的增长,例如瑞利 - 泰勒不稳定性和里奇特迈尔 - 梅什科夫不稳定性,这会强烈影响压缩阶段的内爆动力学。多物理多相有限元方法(FEM)模拟结果通过对烧蚀层表面进行先进的三维全场动态成像在实验上得到了验证,这种成像实现了仅约1纳米的垂直于表面的空间分辨率。研究表明,相互作用的TEP和熔化阶段至关重要,因为烧蚀层表面的横向扰动在TEP和熔化阶段振幅可达数十纳米。这种扰动属于瑞利类型,并且从相互作用的最初时刻起就从烧蚀层传递到了基底。本文是“高增益惯性聚变能源的前景(第1部分)”讨论会议特刊的一部分。

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