Ion temperature effects on plasma flow in the magnetic mirror configuration

Abstract

Effects of finite ion temperature on the plasma flow in the converging–diverging magnetic field, the magnetic mirror, or equivalently, magnetic nozzle configuration are studied using a quasineutral paraxial two-fluid MHD model with isothermal electrons and warm magnetized ions. The ion acceleration was studied with an emphasis on the role of the singularity at the sonic point transition. It is shown that the regularity of the sonic point defines a global solution describing plasma acceleration from subsonic to supersonic velocity. Stationary accelerating solutions were obtained and compared with the time dependent dynamics, confirming that the solutions of the time-dependent equations converge to the stationary solutions and, therefore, are stable. The effects of the ion pressure anisotropy were analyzed using the Chew–Golberger–Low model and its generalization. It is shown that the mirror force (manifested by the perpendicular ion pressure) enhances plasma acceleration. The role of ionization and charge exchange on plasma flow acceleration have been investigated.

Document Details

Document Type
Pub Defense Publication
Publication Date
May 01, 2022
Source ID
10.1063/5.0088534

Entities

People

  • A. I. Smolyakov
  • A. Sabo
  • P. Yushmanov
  • S. Putvinski

Organizations

  • Air Force Office of Scientific Research
  • Compute Canada
  • Natural Sciences and Engineering Research Council
  • TAE Technologies
  • University of Saskatchewan

Tags

Fields of Study

  • Physics

Readers

  • Fluid Mechanics and Fluid Dynamics.
  • Mathematical Modeling and Probability Theory.
  • Plasma Physics / Magnetohydrodynamics

Technology Areas

  • Hypersonics
  • Hypersonics - Hypersonic Flow
  • Microelectronics