Regulation of the normalized rate of driven magnetic reconnection through shocked flux pileup
POSTER
Abstract
Magnetic reconnection is explored on the Terrestrial Reconnection Experiment (TREX) for asymmetric inflow conditions and in a configuration where the absolute rate of reconnection is set by an external drive. Magnetic pileup enhances the upstream magnetic field of the high-density inflow, leading to an increased upstream Alfvén speed and helping to lower the normalized reconnection rate to values expected from theoretical consideration. In addition, a shock interface between the far upstream supersonic plasma inflow and the region of magnetic flux pileup is observed, important to the overall force balance of the system, thereby demonstrating the role of shock formation for configurations including a supersonically driven inflow. Despite the specialized geometry where a strong reconnection drive is applied from only one side of the reconnection layer, previous numerical and theoretical results remain robust and are shown to accurately predict the normalized rate of reconnection for the range of system sizes considered.
Publication: Olson, J., Egedal, J., Clark, M., Endrizzi, D., Greess, S., Millet-Ayala, A., . . . Forest, C. (2021). Regulation of the normalized rate of driven magnetic reconnection through shocked flux pileup. Journal of Plasma Physics, 87(3), 175870301. doi:10.1017/S0022377821000659
Presenters
-
Joseph R Olson
University of Wisconsin - Madison
Authors
-
Joseph R Olson
University of Wisconsin - Madison
-
Jan Egedal
University of Wisconsin - Madison
-
Mike Clark
University of Wisconsin - Madison
-
Douglass A Endrizzi
University of Wisconsin - Madison
-
Samuel Greess
University of Wisconsin - Madison
-
Alexander Millet-Ayala
University of Wisconsin - Madison
-
Ethan E Peterson
Massachusetts Institute of Technology MIT
-
John P Wallace
University of Wisconsin - Madison
-
Cary B Forest
University of Wisconsin - Madison