• DocumentCode
    777389
  • Title

    Two-dimensional gas density and velocity distributions of a 12-cm-diameter, triple-nozzle argon Z-pinch load

  • Author

    Qi, Niansheng ; Failor, Bruce H. ; Banister, Jeff ; Levine, Jerrold S. ; Sze, Henry M. ; Lojewski, David

  • Author_Institution
    Titan Pulse Sci. Div., San Leandro, CA, USA
  • Volume
    33
  • Issue
    2
  • fYear
    2005
  • fDate
    4/1/2005 12:00:00 AM
  • Firstpage
    752
  • Lastpage
    762
  • Abstract
    We have developed a 12-cm-diameter Ar gas Z-pinch load, which produces two annular gas shells and a center gas jet. The two-dimensional (2-D) gas density profiles of the load, in r-θ and r-z planes, were measured with submillimeter spatial resolutions using the planar-laser-induced fluorescence (PLIF) method, for conditions used in Z-pinch experiments. Due to interactions between the shells, the net gas density profile differs from the superposition of the individual shell profiles. Narrow density peaks are observed both at smaller and larger radii than the radius where the shells come in contact with each other. Two-dimensional flow velocity distributions are determined from the displacements between the fluorescence and later time phosphorescence images. The measured stream velocities of argon gas puffs are 650 ± 20 m/s, higher than the ideal gas velocity due to the formation of clusters in the supersonic gas flow. Indeed, clusters were observed in earlier Rayleigh scattering experiments. The gas measurements of the initial phase using the PLIF will be combined with other density measurements of the implosion and pinch phases to better understand the implosion dynamics and to provide initial conditions for simulation codes.
  • Keywords
    Z pinch; argon; explosions; plasma X-ray sources; plasma density; plasma diagnostics; plasma jets; supersonic flow; 12 cm; 630 to 670 m/s; Ar; Rayleigh scattering; annular gas shells; argon gas puffs; center gas jet; flow velocity distributions; ideal gas velocity; implosion; phosphorescence; planar-laser-induced fluorescence; shell profile superposition; simulation codes; submillimeter spatial resolutions; supersonic gas flow; triple-nozzle argon Z-pinch; two-dimensional gas density; Argon; Density measurement; Fluid flow; Fluid flow measurement; Fluorescence; Phosphorescence; Spatial resolution; Streaming media; Two dimensional displays; Velocity measurement; Argon gas puff; Z-pinch; laser-induced fluorescence; plasma radiation source;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2005.845253
  • Filename
    1420616