Mechanisms of gradient-drift instabilities in partially magnetized ExB plasmas.

POSTER

Abstract

Partially magnetized plasmas with magnetized drifting electrons in crossed electric (E) and magnetic (B) fields, and unmagnetized ions, are widely used in various applications, including space propulsion and material processing, and also occur in nature, such as the ionosphere. Such plasmas are typically the subject of gradient-drift instabilities driven by density, temperature, and magnetic field gradients. Negative energy mode instabilities may also be triggered by dissipation, e.g., collisions. In this work, we review some specific mechanisms of gradient-drift instabilities, including the effects of electron inertia, finite electron Larmor radius, and ion motion. It is shown that predictions of the fluid theory based on the low-frequency (ω<ωce) reduction of the general moment equations agree well with kinetic results.

*This work is supported in part by NSERC Canada, the Digital Research Alliance of Canada, and Plasma Collaborative Research Facility at Princeton Plasma Physics Laboratory.

Presenters

  • Andrei I Smolyakov

    • Univ Saskatchewan
    • University Saskatchewan
    • University of Saskatchewan

Authors

  • Mina Papahn Zadeh

    • University of Saskatchewan
  • Andrei I Smolyakov

    • Univ Saskatchewan
    • University Saskatchewan
    • University of Saskatchewan
  • Ivan Romadanov

    • Princeton Plasma Physics Laboratory (PPPL)
    • Princeton Plasma Physics Laboratory
  • Yevgeny Raitses

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Physics Laboratory (PPPL)
  • Mikhail Tyushev

    • University of Saskatchewan