Fluid theory and simulations of instabilities, turbulent transport and coherent structures in partially-magnetized plasmas of E х B discharges

Partially-magnetized plasmas with magnetized electrons and non-magnetized ions are common in Hall thrusters for electric propulsion and magnetron material processing devices. These plasmas are usually in strongly non-equilibrium state due to presence of crossed electric and magnetic fields, inhomogeneities of plasma density, temperature, magnetic field and beams of accelerated ions. Free energy from these sources make such plasmas prone to various instabilities resulting in turbulence, anomalous transport, and appearance of coherent structures as found in experiments. This paper provides an overview of instabilities that exist in such plasmas. A nonlinear fluid model has been developed for description of the Simon-Hoh, lower-hybrid and ion-sound instabilities. The model also incorporates electron gyroviscosity describing the effects of finite electron temperature. The nonlinear fluid model has been implemented in the BOUT++ framework. The results of nonlinear simulations are presented demonstrating turbulence, anomalous current and tendency toward the formation of coherent structures.

Authors
Smolyakov A.I. 1, 4 , Chapurin O. 1 , Frias W. 1 , Koshkarov O. 1 , Romadanov I. 1 , Tang T. 1 , Umansky M.2 , Raitses Y.3 , Kaganovich I.D. 3 , Lakhin V.P. 4
Number of issue
1
Language
English
Pages
014041
Status
Published
Volume
59
Year
2017
Organizations
  • 1 Department of Physics and Engineering Physics|University of Saskatchewan
  • 2 NRC 'Kurchatov Institute'
  • 3 Lawrence Livermore National Laboratory
  • 4 Princeton Plasma Physics Laboratory
Keywords
E×B discharges; instabilties; turbulence; anomalous transport; Hall thrusters; electric propulsion; magnetrons
Date of creation
10.07.2024
Date of change
10.07.2024
Short link
https://repository.rudn.ru/en/records/article/record/143548/
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