Asymmetric magnetic reconnection with a flow shear and applications to the magnetopause
C. E. Doss, C. M. Komar, P. A. Cassak, F. D. Wilder, S. Eriksson, J., F. Drake

TL;DR
This study combines theoretical analysis and numerical simulations to understand asymmetric magnetic reconnection with flow shear, revealing new insights into X-line motion and reconnection rates relevant to planetary magnetospheres.
Contribution
It provides a generalized model predicting X-line convection and reconnection rates under asymmetries and flow shear, challenging previous models for Earth's magnetopause.
Findings
X-line convection is governed by upstream momentum conservation.
Reconnection can occur with flow speeds exceeding twice the Alfven speed.
Asymmetries increase the critical flow speed for reconnection suppression.
Abstract
We perform a theoretical and numerical study of anti-parallel 2D magnetic reconnection with asymmetries in the density and reconnecting magnetic field strength in addition to a bulk flow shear across the reconnection site in the plane of the reconnecting fields, which commonly occurs at planetary magnetospheres. We predict the speed at which an isolated X-line is convected by the flow, the reconnection rate, and the critical flow speed at which reconnection no longer takes place for arbitrary reconnecting magnetic field strengths, densities, and upstream flow speeds, and confirm the results with two-fluid numerical simulations. The predictions and simulation results counter the prevailing model of reconnection at Earth's dayside magnetopause which says reconnection occurs with a stationary X-line for sub-Alfvenic magnetosheath flow, reconnection occurs but the X-line convects for…
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