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Growth rates of the ablative Rayleigh–Taylor instability in inertial confinement fusion

Physics of Plasmas · 1998 · Vol. 5(5) · pp. 1446–1454
R. BettiV. N. GoncharovR. L. McCroryC. P. Verdon

Abstract

A simple procedure is developed to determine the Froude number Fr, the effective power index for thermal conduction ν, the ablation-front thickness L0, the ablation velocity Va, and the acceleration g of laser-accelerated ablation fronts. These parameters are determined by fitting the density and pressure profiles obtained from one-dimensional numerical simulations with the analytic isobaric profiles of Kull and Anisimov [Phys. Fluids 29, 2067 (1986)]. These quantities are then used to calculate the growth rate of the ablative Rayleigh–Taylor instability using the theory developed by Goncharov et al. [Phys. Plasmas 3, 4665 (1996)]. The complicated expression of the growth rate (valid for arbitrary Froude numbers) derived by Goncharov et al. is simplified by using reasonably accurate fitting formulas.

Laser-Plasma Interactions and DiagnosticsLaser-induced spectroscopy and plasmaParticle Dynamics in Fluid FlowsPhysicsFroude numberRayleigh–Taylor instabilityInertial confinement fusionInstabilityMechanicsPlasmaIsobaric processThermal conductionClassical mechanics

Funding

  • U.S. Department of Energy
  • New York State Energy Research and Development Authority
Citations
361
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10.69
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References
23
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References
The instability of liquid surfaces when accelerated in a direction perpendicular to their planes. I
Proceedings of the Royal Society of London A Mathematical and Physical Sciences · 1950 · 3,091 citations
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Growth rates of the ablative Rayleigh–Taylor instability in inertial confinement fusion · Scinovex