English

Magnetic reconnection mediated by hyper-resistive plasmoid instability

Plasma Physics 2014-07-24 v1 Solar and Stellar Astrophysics Fluid Dynamics Space Physics

Abstract

Magnetic reconnection mediated by the hyper-resistive plasmoid instability is studied with both linear analysis and nonlinear simulations. The linear growth rate is found to scale as SH1/6S_{H}^{1/6} with respect to the hyper-resistive Lundquist number SHL3VA/ηHS_{H}\equiv L^{3}V_{A}/\eta_{H}, where LL is the system size, VAV_{A} is the Alfv\'en velocity, and ηH\eta_{H} is the hyper-resistivity. In the nonlinear regime, reconnection rate becomes nearly independent of SHS_{H}, the number of plasmoids scales as SH1/2S_{H}^{1/2}, and the secondary current sheet length and width both scale as SH1/2S_{H}^{-1/2}. These scalings are consistent with a heuristic argument assuming secondary current sheets are close to marginal stability. The distribution of plasmoids as a function of the enclosed flux ψ\psi is found to obey a ψ1\psi^{-1} power law over an extended range, followed by a rapid fall off for large plasmoids. These results are compared with those from resistive magnetohydrodynamic studies.

Keywords

Cite

@article{arxiv.1308.1871,
  title  = {Magnetic reconnection mediated by hyper-resistive plasmoid instability},
  author = {Yi-Min Huang and A. Bhattacharjee and Terry G. Forbes},
  journal= {arXiv preprint arXiv:1308.1871},
  year   = {2014}
}

Comments

Accepted for publication in Physics of Plasmas

R2 v1 2026-06-22T01:06:14.488Z