Phys. Rev. E 80, 016407 (2009) [5 pages]Pressure-driven, resistive magnetohydrodynamic interchange instabilities in laser-produced high-energy-density plasmasReceived 30 March 2009; published 15 July 2009 Recent experiments using proton backlighting of laser-foil interactions provide unique opportunities for studying magnetized plasma instabilities in laser-produced high-energy-density plasmas. Time-gated proton radiograph images indicate that the outer structure of a magnetic field entrained in a hemispherical plasma bubble becomes distinctly asymmetric after the laser turns off. It is shown that this asymmetry is a consequence of pressure-driven, resistive magnetohydrodynamic (MHD) interchange instabilities. In contrast to the predictions made by ideal MHD theory, the increasing plasma resistivity after laser turn-off allows for greater low-mode destabilization (m>1) from reduced stabilization by field-line bending. For laser-generated plasmas presented herein, a mode-number cutoff for stabilization of perturbations with m>∼[8πβ(1+Dmk⊥2γmax−1)]1/2 is found in the linear growth regime. The growth is measured and is found to be in reasonable agreement with model predictions. © 2009 The American Physical Society URL:
http://link.aps.org/doi/10.1103/PhysRevE.80.016407
DOI:
10.1103/PhysRevE.80.016407
PACS:
52.38.Fz, 52.50.Jm, 52.70.Nc
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