Rapid electron heating in the reconnection inflow on TREX

POSTER

Abstract

The Terrestrial Reconnection Experiment (TREX) has been designed to study the regime of collisionless magnetic reconnection in which kinetic features such as electron pressure anisotropy develop unimpeded by collisions [1]. This fully kinetic regime is limited to Lundquist numbers of S>10ε(mi/me)L/di, where ε<1 is an experimental scale factor and L is the system size [2]. TREX continues to assess the presence of pressure anisotropy in experiments with S~104-105 in Hydrogen, well within the collisionless regime. During these events, electron heating is observed along the inflow jets from Te~5 eV to Te~20 eV in 1 collision time (τe~2 μs). This heating is too fast to be thermalized by collisions, and given the expected anisotropy, is likely primarily Te|| heating. Additionally, TREX observes reconnection rates of Erec~VAB, much faster than the expected rate of Erec~(0.1)VAB, over a wide range of plasma species and experimental parameters. Current studies are looking into the relationship between the external drive and the global geometry and how these affect the kinetic structure of reconnection on TREX.

[1] Egedal J. et al., Nature Phys., 8, 321 (2012).

[2] Le A. et al., J. Plasma Phys., 81, 305810108 (2015).

*NSF/DOE award DE-SC0013032 and DOE support for the WiPPL user facility

Presenters

  • Joseph R Olson

    • Univ of Wisconsin, Madison

Authors

  • Joseph R Olson

    • Univ of Wisconsin, Madison
  • Jan Egedal

    • Univ of Wisconsin, Madison
  • Samuel Greess

    • Univ of Wisconsin, Madison
  • Rachel A Myers

    • Univ of Wisconsin, Madison
  • Alexander Millet-Ayala

    • Univ of Wisconsin, Madison
  • Cary B. Forest

    • Univ of Wisconsin, Madison
    • University of Wisconsin Madison