Numerical Tests of Fast Reconnection in Weakly Stochastic Magnetic Fields
G. Kowal, A. Lazarian, E. T. Vishniac, K. Otmianowska-Mazur

TL;DR
This study uses 3D numerical simulations to test a model of fast magnetic reconnection driven by weak turbulence, confirming that turbulence enhances reconnection speed independently of resistivity, aligning with theoretical predictions.
Contribution
First numerical validation of the Lazarian & Vishniac (1999) model showing turbulence-induced fast reconnection in weakly stochastic magnetic fields.
Findings
Reconnection speed scales as the square root of injected power.
Reconnection rate is independent of Ohmic resistivity in turbulent conditions.
Reconnection depends on magnetic field wandering, not guide field strength.
Abstract
We study the effects of turbulence on magnetic reconnection using 3D numerical simulations. This is the first attempt to test a model of fast magnetic reconnection in the presence of weak turbulence proposed by Lazarian & Vishniac (1999). This model predicts that weak turbulence, generically present in most of astrophysical systems, enhances the rate of reconnection by reducing the transverse scale for reconnection events and by allowing many independent flux reconnection events to occur simultaneously. As a result the reconnection speed becomes independent of Ohmic resistivity and is determined by the magnetic field wandering induced by turbulence. To quantify the reconnection speed we use both an intuitive definition, i.e. the speed of the reconnected flux inflow, as well as a more sophisticated definition based on a formally derived analytical expression. Our results confirm the…
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