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首页> 外文期刊>Physical review letters >Self-Similar Multimode Bubble-Front Evolution of the Ablative Rayleigh-Taylor Instability in Two and Three Dimensions
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Self-Similar Multimode Bubble-Front Evolution of the Ablative Rayleigh-Taylor Instability in Two and Three Dimensions

机译:二维和三维烧蚀瑞利-泰勒不稳定性的自相似多模气泡前演化

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The self-similar nonlinear evolution of the multimode ablative Rayleigh-Taylor instability (ARTI) is studied numerically in both two and three dimensions. It is shown that the nonlinear multimode bubble-front penetration follows the a(b)A(T)(integral root gdt)(2) scaling law with ab dependent on the initial conditions and ablation velocity. The value of ab is determined by the bubble competition theory, indicating that mass ablation reduces a(b) with respect to the classical value for the same initial perturbation amplitude. It is also shown that ablation-driven vorticity accelerates the bubble velocity and prevents the transition from the bubble competition to the bubble merger regime at large initial amplitudes leading to higher a(b) than in the classical case. Because of the dependence of a(b) on initial perturbation and vorticity generation, ablative stabilization of the nonlinear ARTI is not as effective as previously anticipated for large initial perturbations.
机译:从二维和三维两个方面研究了多模烧蚀瑞利-泰勒不稳定性(ARTI)的自相似非线性演化。结果表明,非线性多模气泡前部穿透遵循a(b)A(T)(积分根gdt)(2)缩放定律,ab取决于初始条件和消融速度。 ab的值由气泡竞争理论确定,表明对于相同的初始摄动幅度,质量消融相对于经典值降低a(b)。还显示出,烧蚀驱动的涡流在较大的初始振幅下加速了气泡速度并阻止了从气泡竞争向气泡合并状态的过渡,从而导致比经典情况下更高的a(b)。由于a(b)对初始扰动和涡度的依赖性,非线性ARTI的烧蚀稳定效果不如先前对大的初始扰动预期的有效。

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  • 来源
    《Physical review letters 》 |2018年第18期| 185002.1-185002.5| 共5页
  • 作者单位

    Univ Rochester, Dept Mech Engn, Rochester, NY 14627 USA|Univ Rochester, Laser Energet Lab, 250 E River Rd, Rochester, NY 14627 USA;

    Univ Rochester, Dept Mech Engn, Rochester, NY 14627 USA|Univ Rochester, Laser Energet Lab, 250 E River Rd, Rochester, NY 14627 USA;

    Univ Sci & Technol China, Dept Modern Mech, Hefei 230026, Anhui, Peoples R China;

    Univ Rochester, Dept Mech Engn, Rochester, NY 14627 USA|Univ Rochester, Laser Energet Lab, 250 E River Rd, Rochester, NY 14627 USA;

    NRCN, Dept Phys, Beer Sheva, Israel;

    Univ Rochester, Dept Mech Engn, Rochester, NY 14627 USA|Univ Rochester, Laser Energet Lab, 250 E River Rd, Rochester, NY 14627 USA;

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