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LASER DRIVEN ABLATIVE SURFACE INSTABILITY IN INERTIAL FUSION ENERGY

机译:惰性熔合能量中激光驱动的表面不稳定性

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In recent years there has been a considerable theoretical and experimental interest in a laser driven ablative surface in inertial fusion energy (IFE). The existing studies of nonuniformities will not prevent the surface instabilities which originate at the ablation surface due to acceleration of high density plasma by low density plasma, known as the Rayleigh-Taylor instability (RTI). The present work is aimed at controlling the growth rate of RTI in a laser irradiated porous target (that is a hollow target filled with a porous material) at moderate intensities. This RTI has been studied using the moment method. The dispersion relation is obtained in terms of Bond number B connected with the surface tension and the modified Reynolds number R. This dispersion relation is computed for different values of B, R and several particular cases for long and short wave length perturbation and the results are depicted graphically. It is shown that the permeability of the porous region scaled with the Reynolds number decreases considerably the growth rate of RTI compared to that of a hollow shell.
机译:近年来,在惯性聚变能(IFE)中,激光驱动烧蚀表面引起了相当大的理论和实验兴趣。现有的不均匀性研究不会阻止由于高密度等离子体被低密度等离子体加速而引起的在烧蚀表面产生的表面不稳定性,即瑞利-泰勒不稳定性(RTI)。本发明的目的是在中等强度下控制激光辐照的多孔靶(即填充有多孔材料的空心靶)中RTI的生长速率。已经使用矩量法研究了该RTI。根据与表面张力有关的键数B和修正的雷诺数R得出色散关系。该色散关系是针对B,R的不同值以及长短波长扰动的几种特殊情况而计算的,结果是以图形方式描绘。结果表明,与雷诺数成比例的多孔区域的渗透率与中空壳的渗透率相比大大降低了。

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