Physical Review Accelerators and Beams (Dec 2019)

Current transport and loss mechanisms in the Z accelerator

  • N. Bennett,
  • D. R. Welch,
  • C. A. Jennings,
  • E. Yu,
  • M. H. Hess,
  • B. T. Hutsel,
  • G. Laity,
  • J. K. Moore,
  • D. V. Rose,
  • K. Peterson,
  • M. E. Cuneo

DOI
https://doi.org/10.1103/PhysRevAccelBeams.22.120401
Journal volume & issue
Vol. 22, no. 12
p. 120401

Abstract

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A challenge for the TW-class accelerators driving Z-pinch experiments, such as Sandia National Laboratories’ Z machine, is to efficiently couple power from multiple storage banks into a single multi-MA transmission line. The physical processes that lead to current loss are identified in new large-scale, multidimensional simulations of the Z machine. Kinetic models follow the range of physics occurring during a pulse, from vacuum pulse propagation to charged-particle emission and magnetically-insulated current flow to electrode plasma expansion. Simulations demonstrate that current is diverted from the load through a combination of standard transport (uninsulated charged-particle flows) and anomalous transport. Standard transport occurs in regions where the electrode current density is a few 10^{4}-10^{5} A/cm^{2} and current is diverted from the load via transport without magnetic insulation. In regions with electrode current density >10^{6} A/cm^{2}, electrode surface plasmas develop velocity-shear instabilities and a Hall-field-related transport which scales with electron density and may, therefore, lead to increased current loss.