Electron Temperature and Plasma Flow Measurements of NIF Hohlraum Plasmas

ORAL

Abstract

Characterizing the plasma conditions inside NIF hohlraums, in particular mapping the plasma T$_{\mathrm{e}}$, is critical to gaining insight into mechanisms that affect energy coupling and transport in the hohlraum. The dot spectroscopy platform provides a temporal history of the localized T$_{\mathrm{e\thinspace }}$and plasma flow inside a NIF hohlraum, by introducing a Mn-Co tracer dot, at strategic locations inside the hohlraum, that comes to equilibrium with the local plasma. K-shell X-ray spectroscopy of the tracer dot is recorded onto an absolutely calibrated X-ray streak spectrometer. Isoelectronic and interstage line ratios are used to infer localized T$_{\mathrm{e}}$ through comparison with atomic physics calculations using SCRAM [S.B. Hansen, \textit{et al.} High Energy Density Phys. \textbf{3}, 109 (2007)]. Time resolved X-ray images are simultaneously taken of the expanding dot, providing plasma (ion) flow information. We present recent results provided by this platform and compare with simulations using HYDRA [Marinak, \textit{et al., }Phys. Plasmas \textbf{3}, 2070 (1996)]. This work was performed under the auspices of the U.S. Department of Energy by LLNL under Contract DE-AC52-07NA27344.

Authors

  • M. A. Barrios

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
    • LLNL
  • D. A. Liedahl

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
    • LLNL
  • M. B. Schneider

    • LLNL
    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
  • Oggie Jones

    • LLNL
    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
  • G. V. Brow

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
    • LLNL
  • S. P. Regan

    • Laboratory for Laser Energetics, U. of Rochester
    • University of Rochester
    • Laboratory for Laser Energetics, University of Rochester
    • Laboratory for Laser Energetics
    • LLE
  • K. B. Fournier

    • Lawrence Livermore National Laboratory
    • LLNL
  • Alastair Moore

    • Lawrence Livermore National Laboratory
    • LLNL
    • Lawrence Livermore Natl Lab
  • Steven Ross

    • LLNL
    • Lawrence Livermore National Laboratory
    • llnl
  • D. Eder

    • Lawrence Livermore Natl Lab
    • LLNL
  • Nino Landen

    • LLNL
    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
  • R. L. Kauffman

    • LLNL
  • A. Nikroo

    • LLNL
  • J. Kroll

    • Lawrence Livermore Natl Lab
    • LLNL
  • J. Jaquez

    • GA
  • Haibo Huang

    • GA
    • General Atomics
  • Stephanie Hansen

    • Sandia Natl Labs
    • Sandia National Laboratory
    • Sandia National Laboratories
    • SNL
  • D. A. Callahan

    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
    • LLNL
  • D. E. Hinkel

    • LLNL
    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
    • Lawrence Livermore National Lab
  • D. Bradley

    • LLNL
  • John Moody

    • LLNL
    • Lawrence Livermore National Laboratory
    • Lawrence Livermore National Lab
    • llnl
    • Lawrence Livermore Natl Lab