Nonlinear wave propagation and reconnection at magnetic X-points in the Hall MHD regime
J. W. Threlfall, C. E. Parnell, I. De Moortel, K. G. McClements, T., D. Arber

TL;DR
This study explores how Hall MHD effects influence wave behavior and magnetic reconnection at X-points in the solar atmosphere, revealing that Hall effects accelerate reconnection and create multiple null points.
Contribution
It demonstrates the significant impact of Hall effects on wave-null interactions and reconnection dynamics in 2D magnetic X-points, highlighting dispersive wave components and multiple null formation.
Findings
Hall effects lead to earlier null interaction
Multiple transient nulls are created due to dispersive waves
Reconnection rates are significantly enhanced in Hall regime
Abstract
The highly dynamical, complex nature of the solar atmosphere naturally implies the presence of waves in a topologically varied magnetic environment. Here, the interaction of waves with topological features such as null points is inevitable and potentially important for energetics. The low resistivity of the solar coronal plasma implies that non-MHD effects should be considered in studies of magnetic energy release in this environment. This paper investigates the role of the Hall term in the propagation and dissipation of waves, their interaction with 2D magnetic X-points and the nature of the resulting reconnection. A Lagrangian remap shock-capturing code (Lare2d) is used to study the evolution of an initial fast magnetoacoustic wave annulus for a range of values of the ion skin depth in resistive Hall MHD. A magnetic null-point finding algorithm is also used to locate and track the…
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