Department of Mechanical Engineering, University of Rochester, Rochester, New York 14627, USA.
Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14627, USA.
Phys Rev Lett. 2018 Nov 2;121(18):185002. doi: 10.1103/PhysRevLett.121.185002.
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 α_{b}A_{T}(∫sqrt[g]dt)^{2} scaling law with α_{b} dependent on the initial conditions and ablation velocity. The value of α_{b} is determined by the bubble competition theory, indicating that mass ablation reduces α_{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 α_{b} than in the classical case. Because of the dependence of α_{b} on initial perturbation and vorticity generation, ablative stabilization of the nonlinear ARTI is not as effective as previously anticipated for large initial perturbations.
本文数值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,非线性多模气泡前缘穿透遵循α_{b}A_{T}(∫sqrt[g]dt)^{2}标度律,其中α_{b}取决于初始条件和烧蚀速度。α_{b}的值由气泡竞争理论确定,表明与相同初始扰动幅度的经典值相比,质量烧蚀会降低α_{b}。还表明,烧蚀驱动的涡度会加速气泡速度,并防止在大初始幅度下从气泡竞争向气泡合并转变,从而导致比经典情况更高的α_{b}。由于α_{b}取决于初始扰动和涡度生成,因此对于大的初始扰动,烧蚀对非线性 ARTI 的稳定效果并不像之前预期的那样有效。