Growth of ablative Rayleigh-Taylor instability induced by time-varying heat-flux perturbation

IF 4.8 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Matter and Radiation at Extremes Pub Date : 2023-11-15 DOI:10.1063/5.0157344
Yang Liu, De-Hua Zhang, Jing-Fei Xin, Yudong Pu, Jun Li, Tao Tao, Dejun Sun, Rui Yan, Jian Zheng
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Abstract

The evolution of ablative Rayleigh–Taylor instability (ARTI) induced by single-mode stationary and time-varying perturbations in heat flux is studied numerically in two dimensions. Compared with the stationary case, time-varying heat-flux perturbation mitigates ARTI growth because of the enhanced thermal smoothing induced by the wave-like traveling heat flux. A resonance is found to form when the phase velocity of the heat-flux perturbation matches the average sound speed in the ablation region. In the resonant regime, the coherent density and temperature fluctuations enhance the electron thermal conduction in the ablation region and lead to larger ablation pressure and effective acceleration, which consequently yield higher linear growth rate and saturated bubble velocity. The enhanced effective acceleration offers increased implosion velocity but can also compromise the integrity of inertial confinement fusion shells by causing faster ARTI growth.
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时变热通量扰动诱导烧蚀瑞利-泰勒不稳定性的增长
用二维数值方法研究了热流中单模稳态和时变扰动引起的烧蚀瑞利-泰勒不稳定性(ARTI)的演化过程。与平稳情况相比,时变热通量扰动由于波状行热通量引起的热平滑增强而减缓了ARTI的增长。当热通量扰动的相速度与烧蚀区的平均声速相匹配时,会形成共振。在共振区,相干密度和温度波动增强了烧蚀区的电子热传导,导致更大的烧蚀压力和有效加速度,从而产生更高的线性增长率和饱和气泡速度。增强的有效加速度增加了内爆速度,但也会导致更快的ARTI增长,从而损害惯性约束聚变壳的完整性。
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来源期刊
Matter and Radiation at Extremes
Matter and Radiation at Extremes Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
8.60
自引率
9.80%
发文量
160
审稿时长
15 weeks
期刊介绍: Matter and Radiation at Extremes (MRE), is committed to the publication of original and impactful research and review papers that address extreme states of matter and radiation, and the associated science and technology that are employed to produce and diagnose these conditions in the laboratory. Drivers, targets and diagnostics are included along with related numerical simulation and computational methods. It aims to provide a peer-reviewed platform for the international physics community and promote worldwide dissemination of the latest and impactful research in related fields.
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