Betti R, Sanz J
Fusion Science Center for Extreme States of Matter and Fast Ignition Physics, Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623, USA.
Phys Rev Lett. 2006 Nov 17;97(20):205002. doi: 10.1103/PhysRevLett.97.205002. Epub 2006 Nov 15.
The highly nonlinear evolution of the single-mode Rayleigh-Taylor instability (RTI) at the ablation front of an accelerated target is investigated in the parameter range typical of inertial confinement fusion implosions. A new phase of the nonlinear bubble evolution is discovered. After the linear growth phase and a short constant-velocity phase, it is found that the bubble is accelerated to velocities well above the classical value. This acceleration is driven by the vorticity accumulation inside the bubble resulting from the mass ablation and vorticity convection off the ablation front. While the ablative growth rates are slower than their classical values in the linear regime, the ablative RTI grows faster than the classical RTI in the nonlinear regime for deuterium and tritium ablators.
在惯性约束聚变内爆典型的参数范围内,研究了加速靶烧蚀前沿单模瑞利 - 泰勒不稳定性(RTI)的高度非线性演化。发现了非线性气泡演化的一个新阶段。在线性增长阶段和短暂的等速阶段之后,发现气泡被加速到远高于经典值的速度。这种加速是由气泡内部因质量烧蚀和烧蚀前沿的涡度对流导致的涡度积累驱动的。虽然在 线性区域烧蚀增长率比其经典值慢,但对于氘和氚烧蚀体,在非线性区域烧蚀RTI比经典RTI增长得更快。