Fast Magnetic Reconnection: "Ideal" Tearing and the Hall Effect
arXiv:1704.08793 · doi:10.3847/1538-4357/aa7b82
Abstract
One of the main questions in magnetic reconnection is the origin of triggering behavior with on/off properties that accounts, once it is activated, for the fast magnetic energy conversion to kinetic and thermal energies at the heart of explosive events in astrophysical and laboratory plasmas. Over the past decade progress has been made on the initiation of fast reconnection via the plasmoid instability and what has been called "ideal" tearing, which sets in once current sheets thin to a critical inverse aspect ratio : as shown by Pucci and Velli (2014), at the time scale for the instability to develop becomes of the order of the Alfvén time and independent of the Lundquist number (here defined in terms of current sheet length ). However, given the large values of in natural plasmas, this transition might occur for thicknesses of the inner resistive singular layer which are comparable to the ion inertial length . When this occurs, Hall currents produce a three-dimensional quadrupole structure of magnetic field, and the dispersive waves introduced by the Hall effect accelerate the instability. Here we present a linear study showing how the "ideal" tearing mode critical aspect ratio is modified when Hall effects are taken into account, including more general scaling laws of the growth rates in terms of sheet inverse aspect ratio: the critical inverse aspect ratio is amended to , at which point the instability growth rate becomes Alfvénic and does not depend on either of the (small) parameters . We discuss the implications of this generalized triggering aspect ratio for recently developed phase diagrams of magnetic reconnection.
References in corpus (8)
- Instability of current sheets and formation of plasmoid chains
- General Theory of the Plasmoid Instability
- Turbulent Magnetohydrodynamic Reconnection Mediated by the Plasmoid Instability
- Magnetic Reconnection Onset via Disruption of a Forming Current Sheet by the Tearing Instability
- A Model for Spontaneous Onset of Fast 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
- "Ideal" tearing and the transition to fast reconnection in the weakly collisional MHD and EMHD regimes
Cited by in corpus (20)
- Magnetic reconnection in the era of exascale computing and multiscale experiments
- Influence of 3D plasmoid dynamics on the transition from collisional to kinetic reconnection
- The Onset of 3D Magnetic Reconnection and Heating in the Solar Corona
- Fast Magnetic Reconnection: Secondary Tearing Instability and Role of the Hall Term
- Onset of fast "ideal" tearing in thin current sheets: dependence on the equilibrium current profile
- Annihilation of Magnetic Islands at the Top of Solar Flare Loops
- Oblique tearing mode instability: guide field and Hall effect
- Spectral signatures of recursive magnetic field reconnection
- Marginal Stability of Sweet-Parker Type Current Sheets at Low Lundquist Numbers
- Fast Recursive Reconnection and the Hall effect: Hall-MHD Simulations
- Impact of 3D Structure on Magnetic Reconnection
- Dynamic evolution of current sheets, ideal tearing, plasmoid formation and generalized fractal reconnection scaling relations
- Tearing modes in partially ionized plasmas
- On the role of system size in Hall MHD magnetic reconnection
- Legolas: magnetohydrodynamic spectroscopy with viscosity and Hall current
- Fast magnetic reconnection: The "ideal" tearing instability in classic, Hall, and relativistic plasmas
- Modification of the resistive tearing instability with Joule heating by shear flow
- Instabilities in a current sheet with plasma jet
- Driven Collisionless Reconnection of Force-free Flux Tubes: From Onset to Coalescence
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects