English

Plasmoid instability in the semi-collisional regime

Plasma Physics 2018-12-26 v2 Solar and Stellar Astrophysics Space Physics

Abstract

We investigate analytically and numerically the semi-collisional regime of the plasmoid instability, defined by the inequality δSPρsδin\delta_{SP} \gg \rho_s \gg \delta_{in}, where δSP\delta_{SP} is the width of a Sweet-Parker current sheet, ρS\rho_S is the ion sound Larmor radius, and δin\delta_{in} is width of boundary layer that arises in the plasmoid instability analysis. Theoretically, this regime is predicted to exist if the Lundquist number SS and the length of the current sheet LL are such that (L/ρS)14/9<S<(L/ρS)2(L/\rho_S)^{14/9} < S <(L/\rho_S)^2 (for a sinusoidal-like magnetic configuration; for a Harris-type sheet the lower bound is replaced with (L/ρS)8/5(L/\rho_S)^{8/5}). These bounds are validated numerically by means of simulations using a reduced gyrokinetic model (Zocco & Schekochihin, Physics of Plasmas\it{Physics~of~Plasmas}, 18{\bf 18}, 2011) conducted with the code Viriato\tt{Viriato}. Importantly, this regime is conjectured to allow for plasmoid formation at relatively low, experimentally accessible, values of the Lundquist number. Our simulations obtain plasmoid instability at values of SS as low as 250\sim 250. The simulations do not prescribe a Sweet-Parker sheet; rather, one is formed self-consistenly during the nonlinear evolution of the initial tearing mode configuration. This proves that this regime of the plasmoid instability is realizable, at least at the relatively low values of the Lundquist number that are accessible to current dedicated experiments.

Keywords

Cite

@article{arxiv.1804.05145,
  title  = {Plasmoid instability in the semi-collisional regime},
  author = {Pallavi Bhat and Nuno Loureiro},
  journal= {arXiv preprint arXiv:1804.05145},
  year   = {2018}
}

Comments

21 pages, 8 figures, accepted in Journal of Plasma Physics (accepted version)

R2 v1 2026-06-23T01:23:28.404Z