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Hydrodynamic instability growth of three-dimensional modulations in radiation-driven implosions with 'low-foot' and 'high-foot' drives at the National Ignition Facility

机译:在国家点火设施中具有“低脚”和“高脚”驱动的辐射驱动爆炸中三维调制的流体动力不稳定增长

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摘要

Hydrodynamic instability growth has been studied using three-dimensional (3-D) broadband modulations by comparing "high-foot" and "low-foot" spherical plastic (CH) capsule implosions at the National Ignition Facility (NIF) [E. M. Campbell et al., AIP Conf. Proc. 429, 3 (1998)]. The initial perturbations included capsule outer-surface roughness and capsule-mounting membranes ("tents") that were similar to those used in a majority of implosions on NIF. The tents with thicknesses of 31-nm, 46-nm, and 109-nm were used in the experiments. The outer-surface roughness in the "low-foot" experiment was similar to the standard specification, while it was increased by similar to 4 times in the "high-foot" experiment to compensate for the reduced growth. The ablation-front instability growth was measured using a Hydrodynamic Growth Radiography platform at a convergence ratio of similar to 3. The dominant capsule perturbations, generated by the tent mountings, had measured perturbation amplitudes comparable to the capsule thickness with the "low-foot" drive. These tent perturbations were reduced by similar to 3 to 10 times in implosions with the "high-foot" drive. Unexpectedly, the measured perturbations with initially thinner tents were either larger or similar to the measured perturbations with thicker tents for both "high-foot" and "low-foot" drives. While the measured instability growth of 3-D broadband perturbations was also significantly reduced by similar to 5 to 10 times with the "high-foot" drive, compared to the "low-foot" drive, the growth mitigation was stronger than expected based on previous "growth-factor" results measured with two-dimensional modulations [D. T. Casey et al., Phys. Rev. E 90, 011102 (2014)]. One of the hypotheses to explain the results is based on the 3-D modulations of the oxygen content in the bulk of the capsule having a stronger effect on the overall growth of capsule perturbations than the outer-surface capsule roughness. Published by AIP Publishing.
机译:通过比较“高脚”和“低脚”球形塑料(CH)在国家点火设施(NIF)中使用三维(3-D)宽带调制研究了流体动力不稳定增长。 M. Campbell等人。,AIP Conf。 Proc。 429,3(1998)]。初始扰动包括胶囊外表面粗糙度和胶囊安装膜即类似于那些在大部分上NIF内爆的使用(“帐篷”)。实验中使用厚度为31-nm,46nm和109nm的帐篷。 “低脚”实验中的外表面粗糙度与标准规范类似,同时在“高脚”实验中增加了4倍,以补偿增长率降低。使用流体动力学生长射线照相平台以类似于3的会聚比率测量消融 - 前稳定性生长。由帐篷安装件产生的主要胶囊扰动,具有与“低脚”的胶囊厚度相当的扰动幅度相当的扰动幅度。驾驶。这些帐篷扰动在与“高脚”驱动器中的内部内部相似的情况下减少了3至10倍。出乎意料地,具有最初较薄的帐篷的测量扰动要么较大或类似于具有较厚帐篷的测量的扰动,用于“高脚”和“低脚”驱动器。而3-d宽带扰动的测量不稳定生长也显著通过类似于降低到5至10倍与“高脚”驱动器,相对于“低脚”驱动器,生长减缓更强基于除了预期以前用二维调制测量的“生长因子”结果[D. T. casey等人。,phy。 Rev. E 90,011102(2014)]。解释结果的一个假设基于对胶囊大部分氧含量的三维调制,其对胶囊扰动的总体生长而不是外表面胶囊粗糙度。通过AIP发布发布。

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  • 来源
    《Physics of plasmas》 |2017年第4期|共11页
  • 作者单位

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Gen Atom San Diego CA 92186 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Gen Atom San Diego CA 92186 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Gen Atom San Diego CA 92186 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    NIF Directorate Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Gen Atom San Diego CA 92186 USA;

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  • 正文语种 eng
  • 中图分类 等离子体物理学;
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