The Rayleigh–Taylor instability in ablatively accelerated targets with 1, 1/2 , and 1/4 μm laser light
- 1 May 1988
- journal article
- research article
- Published by AIP Publishing in Physics of Fluids
- Vol. 31 (5) , 1007-1016
- https://doi.org/10.1063/1.866782
Abstract
The results of a series of detailed numerical simulations of the Rayleigh–Taylor instability in laser ablatively accelerated targets are presented for a fairly wide range of initial conditions. It is shown that the Rayleigh–Taylor growth rate in an ablative environment is a strong function of the laser wavelength. For perturbation wavelengths about three times the in‐flight target thickness, the ratios of the numerical growth rates to the classical growth rates are of the order of 1/1.5, 1/2.5, and 1/3.5 for 1, 1/2 , and 1/4 μm laser light, respectively. The numerical results are in good agreement with the theoretical model presented here based on the ablative convection of vorticity away from the unstable ablation front. These results provide strong evidence for the viability of high‐aspect‐ratio shells in direct‐drive laser fusion.Keywords
This publication has 29 references indexed in Scilit:
- Rayleigh-Taylor instability growth rates in targets accelerated with a laser beam smoothed by induced spatial incoherencePhysical Review Letters, 1987
- Measurement of Rayleigh–Taylor instability in a laser-accelerated targetNature, 1982
- Rayleigh-Taylor and Kelvin-Helmholtz Instabilities in Targets Accelerated by Laser AblationPhysical Review Letters, 1982
- Influence of Nonuniform Laser Intensities on Ablatively Accelerated TargetsPhysical Review Letters, 1982
- Wavelength Scaling for Reactor-Size Laser-Fusion TargetsPhysical Review Letters, 1981
- Critical elements of high gain laser fusionJournal of Fusion Energy, 1981
- Nonlinear Evolution of Ablation-Driven Rayleigh-Taylor InstabilityPhysical Review Letters, 1981
- Ablative Acceleration of Laser-Irradiated Thin-Foil TargetsPhysical Review Letters, 1979
- Two-Dimensional Simulation of Fluid Instability in Laser-Fusion PelletsPhysical Review Letters, 1975
- Rayleigh-Taylor Instability and Laser-Pellet FusionPhysical Review Letters, 1974