高度多模态雷利-泰勒不稳定性的演变

IF 1.6 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS
B. Cheng , B. Jing , P.A. Bradley , J.P. Sauppe , R.R. Roycroft
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引用次数: 0

摘要

瑞利-泰勒(RT)不稳定性是惯性约束聚变(ICF)胶囊内爆和许多其他情况下出现的重要流体不稳定性。在实验中观察到了多模耦合,并在 RT 不稳定性的物质混合中发挥了重要作用。在这项工作中,我们研究了高度多模扰动(幂律分布)的演变,这种扰动近似于在人造材料界面上发现的扰动。我们在 LANL 代码 xRAGE 中模拟了 2000 多种不同的扰动,以确定气泡增长和气泡合并过程中的不同阶段,这些阶段可在二维相图中直观显示,并具有清晰的模式增长和衰减机制。我们的结果表明,不稳定性的动态演化在很大程度上取决于扰动的模式和模式之间的相互作用。合并过程加速了气泡的增长。相空间清楚地捕捉到了非马尔可夫区域和不稳定性从(1)初始指数增长到(2)线性增长再到(3)二次增长和渐近行为的过渡。我们建立了气泡增长的定量模型,该模型再现了扰动集合的动态行为。我们还讨论了针对不稳定性设计的 ICF 胶囊的意义。(LA-UR-23-24496)
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of highly multimodal Rayleigh–Taylor instabilities

Rayleigh–Taylor (RT) instabilities are important fluid instabilities that arise in inertial confinement fusion (ICF) capsule implosions, and many other contexts. Multi-mode coupling is observed in experiments and plays a substantial role in material mix from RT instabilities. In this work, we study the evolution of highly multimodal perturbations (power law distribution) that approximate those found at manufactured material interfaces. We use simulations of over 2000 different perturbations in the LANL code xRAGE to identify distinct phases in the processes of bubble growth and bubble merger which can be visualized in a 2D phase portrait with clear regimes of mode growth and decay. Our results show that the dynamic evolution of the instability strongly depends on the mode of the perturbations and mode interactions. The merger process accelerates bubble growth. A non-Markovian region and a transition of the instability from: (1) initial exponential growth to (2) linear growth and to (3) quadratic growth and asymptotic behavior, are clearly captured in the phase space. We have developed a quantitative model of bubble growth that reproduces the dynamic behavior of ensembles of perturbations. Implications for ICF capsules designed for robustness against instabilities are discussed. (LA-UR-23-24496)

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来源期刊
High Energy Density Physics
High Energy Density Physics PHYSICS, FLUIDS & PLASMAS-
CiteScore
4.20
自引率
6.20%
发文量
13
审稿时长
6-12 weeks
期刊介绍: High Energy Density Physics is an international journal covering original experimental and related theoretical work studying the physics of matter and radiation under extreme conditions. ''High energy density'' is understood to be an energy density exceeding about 1011 J/m3. The editors and the publisher are committed to provide this fast-growing community with a dedicated high quality channel to distribute their original findings. Papers suitable for publication in this journal cover topics in both the warm and hot dense matter regimes, such as laboratory studies relevant to non-LTE kinetics at extreme conditions, planetary interiors, astrophysical phenomena, inertial fusion and includes studies of, for example, material properties and both stable and unstable hydrodynamics. Developments in associated theoretical areas, for example the modelling of strongly coupled, partially degenerate and relativistic plasmas, are also covered.
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