Observation of the Rayleigh-Taylor Instability in Ablatively Accelerated Foils
J. Grün, M. H. Emery, S. Kacenjar, C. B. Opal, E. A. McLean, S. P. Obenschain, B. H. Ripin, A. J. Schmitt
Abstract
J. Grün, M. H. Emery, S. Kacenjar, C. B. Opal, E. A. McLean, S. P. Obenschain, B. H. Ripin, A. J. Schmitt
Abstract
We present the first absolute, two-dimensionally resolved measurements of areal mass density of laser-driven ablatively accelerated foils, which show the Rayleigh-Taylor instability developing from initial mass perturbations. Our data are near simulation results which predict that the Rayleigh-Taylor growth rate is less than classical. The measurements sometimes show development of significant areal mass inhomogeneity in a direction perpendicular to that of the initially imposed perturbations.
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We present the first absolute, two-dimensionally resolved measurements of areal mass density of laser-driven ablatively accelerated foils, which show the Rayleigh-Taylor instability developing from initial mass perturbations. Our data are near simulation results which predict that the Rayleigh-Taylor growth rate is less than classical. The measurements sometimes show development of significant areal mass inhomogeneity in a direction perpendicular to that of the initially imposed perturbations.
Key concepts: Rayleigh–Taylor instability, Instability, Rayleigh scattering, Physics, Perpendicular, Mechanics, Optics, Geometry