Self-Consistency of Stark Broadening Predictions in a Multi-Element HED Plasma

ORAL

Abstract

The interpretation of spectral line shapes for plasma characterization is well established as a diagnostic technique for determining plasma density.Specifically,Stark broadening is often used to diagnose a plasma’s electron density via a tracer element.We are interested in improving Stark broadening models and their ability to predict the plasma density from multiple elements within the same plasma self-consistently.To do so,we diagnose transmission spectra through ~0.4-um-thick Mg-NaF foil on Sandia’s Z facility.This foil is tamped with varying amounts of CH, allowing for electron densities of 1x1021-1x1022 cm-3.The foil is heated such that He-like charge states were reached for all three elements,allowing for investigation of Multi-element Stark broadening.The amount of broadening found from different elements will be discussed further.

*This material is based upon work supported by the U.S. Department of Energy, Office of Science under contract number DE-SC0012515 and by the Center for Astrophysical Plasma Properties (CAPP).Sandia National Laboratories is a multi-mission laboratory managed and operated by National Technology and Engineering Solutions of Sandia, LLC., a wholly owned subsidiary of Honeywell International, Inc., for the U.S. DoE’s NNSA under contract DE-NA-0003525.

Presenters

  • Theodore Lane

    • West Virginia University
    • West Viginia University

Authors

  • Theodore Lane

    • West Virginia University
    • West Viginia University
  • Pawel M. Kozlowski

    • West Virginia Univ
    • Johns Hopkins University
  • Guillaume P Loisel

    • Sandia Natl Labs
  • Thomas E. Steinberger

    • West Virginia Univ
    • West Virginia University
  • Matthew Flaugh

    • West Virginia Univ
  • James Edward Bailey

    • Sandia Natl Labs
  • Gregory A. Rochau

    • Sandia Natl Labs
  • Mark E Koepke

    • West Virginia Univ
    • West Virginia University, University of Strathclyde
    • WVU