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Phys. Rev. E 80, 016407 (2009) [5 pages]

Pressure-driven, resistive magnetohydrodynamic interchange instabilities in laser-produced high-energy-density plasmas

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C. K. Li1,*, J. A. Frenje1, R. D. Petrasso1, F. H. Séguin1, P. A. Amendt2, O. L. Landen2, R. P. J. Town2, R. Betti3,†, J. P. Knauer3, D. D. Meyerhofer3,†, and J. M. Soures3
1Plasma Science and Fusion Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA
2Lawrence Livermore National Laboratory, Livermore, California 94550, USA
3Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA

Received 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+Dmk2γmax−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

*li@psfc.mit.edu

Also at Department of Mechanical Engineering, Physics and Astronomy, University of Rochester, Rochester, New York.