• DocumentCode
    10219
  • Title

    Effects of a Conducting Wall on Z-Pinch Stability

  • Author

    Knecht, Sean D. ; Lowrie, Weston ; Shumlak, U.

  • Author_Institution
    Univ. of Washington, Seattle, WA, USA
  • Volume
    42
  • Issue
    6
  • fYear
    2014
  • fDate
    Jun-14
  • Firstpage
    1531
  • Lastpage
    1543
  • Abstract
    The stabilizing effect of a conducting wall on Z-pinch stability has been investigated through a systematic experimental and numerical study. Numerical simulations of a Z-pinch with a cylindrical conducting wall are compared with a case that modeled perforations in the conducting wall. The conducting wall also acts as the return current path for these investigations. Plasma conditions with various pinch sizes were studied numerically to better understand the effect of wall stabilization in Z-pinches. A study using the ZaP Flow Z-Pinch was performed by inserting a 0.35-m perforated section of electrode that has eight longitudinal slots cut from the outer electrode, reducing the conducting wall material by ≈70% .This modification prevents currents from flowing freely along the azimuthal distance of the outer electrode required to stabilize the m = 1, 2, 3 modes, which are experimentally monitored. Operating with identical experimental parameters with and without the perforated electrode was assumed to produce similar equilibrium and flow shear conditions in the pinch. Comparing the stability characteristics isolated the potential effects of the conducting wall. Magnetic data, interferometry, and optical images indicate that the conducting wall does not have a discernible effect on stability in the ZaP experiment. This result agrees with simulations with similar ratios of conducting wall radius to pinch radius.
  • Keywords
    Z pinch; interferometry; numerical analysis; plasma diagnostics; plasma instability; plasma simulation; plasma-wall interactions; Z-pinch stability; ZaP flow Z-pinch; azimuthal distance; conducting wall effects; conducting wall radius-pinch radius ratios; cylindrical conducting wall; electrode perforated section; equilibrium condition; flow shear condition; interferometry; longitudinal slots; magnetic data; numerical simulations; optical images; pinch sizes; plasma conditions; return current path; size 0.35 m; stabilizing effect; wall stabilization effect; Electrodes; Geometry; Magnetic resonance imaging; Numerical stability; Optical interferometry; Plasmas; Stability analysis; Magnetohydrodynamics (MHD); Z-pinch.; wall stabilization; z-pinch;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2014.2320923
  • Filename
    6817607