A Two-Fluid Study of Oblique Tearing Modes in a Force-Free Current Sheet
arXiv:1601.07220 · doi:10.1063/1.4940945
Abstract
Kinetic simulations have demonstrated that three-dimensional reconnection in collisionless regimes proceeds through the formation and interaction of magnetic flux ropes, which are generated due to the growth of tearing instabilities at multiple resonance surfaces. Since kinetic simulations are intrinsically expensive, it is desirable to explore the feasibility of reduced two-fluid models to capture this complex evolution, particularly, in the strong guide field regime, where two-fluid models are better justified. With this goal in mind, this paper compares the evolution of the collisionless tearing instability in a force-free current sheet with a two-fluid model and fully kinetic simulations. Our results indicate that the most unstable modes are oblique for guide fields larger than the reconnecting field, in agreement with the kinetic results. The standard two-fluid tearing theory is extended to address the tearing instability at oblique angles. The resulting theory yields a flat oblique spectrum and underestimates the growth of oblique modes in a similar manner to kinetic theory relative to kinetic simulations.
accepted for publication in Physics of plasmas (February or March 2016 issue)
References in corpus (1)
Cited by in corpus (7)
- Influence of 3D plasmoid dynamics on the transition from collisional to kinetic reconnection
- Oblique tearing mode instability: guide field and Hall effect
- Collisionless Kinetic Theory of Oblique Tearing Instabilities
- Force-free collisionless current sheet models with non-uniform temperature and density profiles
- Role of Electron Inertia and Reconnection Dynamics in a Stressed X-point Collapse with a Guide-Field
- Collisionless tearing instability in relativistic non-thermal pair plasma and its application to MHD turbulence
- Collisionless distribution functions for force-free current sheets: using a pressure transformation to lower the plasma beta