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Title: Modeling hydrodynamic instabilities in inertial confinement fusion targets

Journal Article · · Physics of Plasmas
DOI:https://doi.org/10.1063/1.1321016· OSTI ID:40205970

In inertial confinement fusion experiments, a cold target material is accelerated by a hot, low-density plasma. The interface between the heavy and light materials is Rayleigh--Taylor (RT) unstable. To estimate the perturbation growth in accelerated targets, a postprocessor to the results of one-dimensional codes is developed. The postprocessor is based on the sharp-boundary model that takes into account time variation in the unperturbed state, mode interaction of neighboring interfaces in the target, effects of spherical convergence, and the mass ablation. The model reveals a new stabilizing effect of ablation for modes with wavelengths longer than the shell thickness. For such modes with {gamma}{sub cl}>V{sub a}/d, the perturbation growth is reduced to {eta}{approx}m(t)/m(0)e{sup {integral}dt{prime}{gamma}{sub cl}{sup 2}-kV{sub bl}V{sub a}/(2d)}, where {gamma}{sub cl}=kg is the classical RT growth rate of interface perturbations in the semi-infinite slab subject to gravitational field g, k is the wave number, d and m(t) are the slab thickness and mass, and V{sub a} and V{sub bl} are the ablation and blowoff velocities, respectively. The perturbation evolution calculated by using the developed postprocessor is shown to be in good agreement with the results of two-dimensional hydrodynamic simulations.

Sponsoring Organization:
(US)
OSTI ID:
40205970
Journal Information:
Physics of Plasmas, Vol. 7, Issue 12; Other Information: DOI: 10.1063/1.1321016; Othernumber: PHPAEN000007000012005118000001; 035012PHP; PBD: Dec 2000; ISSN 1070-664X
Publisher:
The American Physical Society
Country of Publication:
United States
Language:
English