Activation of MHD reconnection on ideal timescales
arXiv:1610.04481 · doi:10.1088/0741-3335/59/1/014052
Abstract
Magnetic reconnection in laboratory, space and astrophysical plasmas is often invoked to explain explosive energy release and particle acceleration. However, the timescales involved in classical models within the macroscopic MHD regime are far too slow to match the observations. Here we revisit the tearing instability by performing visco-resistive two-dimensional numerical simulations of the evolution of thin current sheets, for a variety of initial configurations and of values of the Lunquist number , up to . Results confirm that when the critical aspect ratio of is reached in the reconnecting current sheets, the instability proceeds on ideal (Alfvénic) macroscopic timescales, as required to explain observations. Moreover, the same scaling is seen to apply also to the local, secondary reconnection events triggered during the nonlinear phase of the tearing instability, thus accelerating the cascading process to increasingly smaller spatial and temporal scales. The process appears to be robust, as the predicted scaling is measured both in inviscid simulations and when using a Prandtl number in the viscous regime.
Accepted for publication in Plasma Physics and Controlled Fusion
References in corpus (7)
- Instability of current sheets and formation of plasmoid chains
- ECHO: an Eulerian Conservative High Order scheme for general relativistic magnetohydrodynamics and magnetodynamics
- Self-Feeding Turbulent Magnetic Reconnection on Macroscopic Scales
- Self-generated turbulence in magnetic reconnection
- The tearing mode instability of thin current sheets: the transition to fast reconnection in the presence of viscosity
- "Ideally" unstable current sheets and the triggering of fast magnetic reconnection
- MHD simulations of three-dimensional Resistive Reconnection in a cylindrical plasma column