• DocumentCode
    1438067
  • Title

    Radiative characteristics of pulsed power driven Z-pinch aluminum plasmas

  • Author

    Davis, Jack ; Clark, R.W. ; Giuliani, J.L., Jr. ; Thornhill, J.W. ; Deeney, Christopher

  • Author_Institution
    Div. of Plasma Phys., Naval Res. Lab., Washington, DC, USA
  • Volume
    26
  • Issue
    4
  • fYear
    1998
  • fDate
    8/1/1998 12:00:00 AM
  • Firstpage
    1192
  • Lastpage
    1201
  • Abstract
    In this paper, we study the dynamics of a massive aluminum Z-pinch plasma load and evaluate its performance as a soft X-ray radiator. A radiation hydrodynamic model self-consistently driven by a circuit describes the dynamics. Comparisons are made for the K- and L-shell soft X-ray emission as a function of the ionization dynamic model. The ionization dynamic models are represented by: 1) a time-dependent nonequilibrium (NEQ) model, 2) a collisional radiative equilibrium (CRE) model, and 3) a local thermodynamic equilibrium (LTE) model. For all three scenarios the radiation is treated 1) in the free streaming optically thin approximation where the plasma is treated as a volume emitter and 2) in the optically thick regime where the opacity for the lines and continuum is self-consistently calculated online and the radiation is transported through the plasma. Each simulation is carried out independently to determine the sensitivity of the implosion dynamics to the ionization and radiation model, i.e., how the ionization dynamic model affects the radiative yield and emission spectra. Results are presented for the L- and K-shell radiation yields and emission spectra as a function of photon energy from 10 eV to 10 keV. Also, departure coefficients from LTE are presented for selected levels and ionization stages
  • Keywords
    Z pinch; aluminium; opacity; plasma diagnostics; plasma magnetohydrodynamics; pulsed power technology; Al; K-shell radiation yields; K-shell soft X-ray emission; L-shell radiation yields; L-shell soft X-ray emission; collisional radiative equilibrium model; departure coefficients; emission spectra; free streaming optically thin approximation; implosion dynamics; ionization dynamic model; ionization model; ionization stages; local thermodynamic equilibrium model; opacity; optically thick regime; plasma load; pulsed power driven Z-pinch aluminum plasmas; radiation hydrodynamic model; radiation model; radiation transport; radiative characteristics; radiative yield; simulation; soft X-ray radiator; time-dependent nonequilibrium model; volume emitter; Aluminum; Circuits; Hydrodynamics; Ionization; Optical sensors; Plasma properties; Plasma simulation; Plasma transport processes; Plasma x-ray sources; Stimulated emission;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.725150
  • Filename
    725150