• Matter and Radiation at Extremes
  • Vol. 6, Issue 2, 026904 (2021)
M. J.-E. Manuel1、a), B. Khiar2, G. Rigon3, B. Albertazzi3, S. R. Klein4, F. Kroll5, F. -E. Brack5、6, T. Michel3, P. Mabey3, S. Pikuz7, J. C. Williams1, M. Koenig3, A. Casner8, and C. C. Kuranz4
Author Affiliations
  • 1General Atomics, San Diego, California 92121, USA
  • 2University of Chicago, Chicago, Illinois 60637, USA
  • 3Laboratoire pour l’utilisation des lasers intenses, 91128 Palaiseau Cedex, France
  • 4University of Michigan, Ann Arbor, Michigan 48109, USA
  • 5Helmholtz-Zentrum Dresden-Rossendorf, 01328 Dresden, Germany
  • 6Technische Universität Dresden, 01062 Dresden, Germany
  • 7National Research Nuclear University, Moscow 115409, Russia
  • 8Centre lasers intenses et applications, 33405 Talence Cedex, France
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    DOI: 10.1063/5.0025374 Cite this Article
    M. J.-E. Manuel, B. Khiar, G. Rigon, B. Albertazzi, S. R. Klein, F. Kroll, F. -E. Brack, T. Michel, P. Mabey, S. Pikuz, J. C. Williams, M. Koenig, A. Casner, C. C. Kuranz. On the study of hydrodynamic instabilities in the presence of background magnetic fields in high-energy-density plasmas[J]. Matter and Radiation at Extremes, 2021, 6(2): 026904 Copy Citation Text show less

    Abstract

    Blast-wave-driven hydrodynamic instabilities are studied in the presence of a background B-field through experiments and simulations in the high-energy-density (HED) physics regime. In experiments conducted at the Laboratoire pour l’utilisation des lasers intenses (LULI), a laser-driven shock-tube platform was used to generate a hydrodynamically unstable interface with a prescribed sinusoidal surface perturbation, and short-pulse x-ray radiography was used to characterize the instability growth with and without a 10-T B-field. The LULI experiments were modeled in FLASH using resistive and ideal magnetohydrodynamics (MHD), and comparing the experiments and simulations suggests that the Spitzer model implemented in FLASH is necessary and sufficient for modeling these planar systems. These results suggest insufficient amplification of the seed B-field, due to resistive diffusion, to alter the hydrodynamic behavior. Although the ideal-MHD simulations did not represent the experiments accurately, they suggest that similar HED systems with dynamic plasma-β (=2μ0ρv2/B2) values of less than ~100 can reduce the growth of blast-wave-driven Rayleigh–Taylor instabilities. These findings validate the resistive-MHD FLASH modeling that is being used to design future experiments for studying B-field effects in HED plasmas.
    γB2=γcl22Bk2μ0ρh+ρl,(1)

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    λc=4πB2cos2θμ0gΔρ,(2)

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    Bt×v×B×ημ0×B,(3)

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    M. J.-E. Manuel, B. Khiar, G. Rigon, B. Albertazzi, S. R. Klein, F. Kroll, F. -E. Brack, T. Michel, P. Mabey, S. Pikuz, J. C. Williams, M. Koenig, A. Casner, C. C. Kuranz. On the study of hydrodynamic instabilities in the presence of background magnetic fields in high-energy-density plasmas[J]. Matter and Radiation at Extremes, 2021, 6(2): 026904
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