Plasmoid instability in the semi-collisional regime

POSTER

Abstract

Theoretical and numerical investigations were performed to validate the existence of the semi-collisional regime, which is unstable to plasmoids, in the magnetic reconnection phase space; governed by Lundquist number S and system size L in units of ion (sound) Larmor radius, ρs/L. The semi-collisional regime of the plasmoid instability is defined by the inequality δSP >> ρs >> δin, where δSP is the width of a Sweet-Parker current sheet, and δin is the width of the boundary layer that arises in the plasmoid instability analysis. This inequality translates to theoretically predicted bounds, given by (L/ρs)14/9 < S < (L/ρs)2 (for a sinusoidal-like magnetic configuration; for a Harris-type sheet the lower bound is replaced with (L/ρs)8/5).
These bounds are validated numerically using a reduced gyrokinetic model (Zocco & Schekochihin, Physics of Plasmas, 18, 2011) conducted with the code Viriato. Importantly, this regime is shown to allow for plasmoid formation at relatively low, experimentally accessible, values of the Lundquist number. Our simulations obtain plasmoid instability at values of S as low as ∼250.

*This work was supported by the NSF-DOE Partnership in Basic Plasma Science and Engineering, Award No. DE-SC0016215

Presenters

  • Pallavi Bhat

    • Massachusetts Inst of Tech-MIT

Authors

  • Pallavi Bhat

    • Massachusetts Inst of Tech-MIT
  • Nuno F Loureiro

    • Massachusetts Inst of Tech-MIT
    • Massachusetts Institute of Technology
    • Plasma Science and Fusion Center, MIT, Cambridge, USA