Parallel electric fields are inefficient drivers of energetic electrons in magnetic reconnection
arXiv:1607.03857 · doi:10.1063/1.4972082
Abstract
We present two-dimensional kinetic simulations, with a broad range of initial guide fields, that isolate the role of parallel electric fields () in energetic electron production during collisionless magnetic reconnection. In the strong guide field regime, drives essentially all of the electron energy gain, yet fails to generate an energetic component. We suggest that this is due to the weak energy scaling of particle acceleration from compared to that of a Fermi-type mechanism responsible for energetic electron production in the weak guide-field regime. This result has important implications for energetic electron production in astrophysical systems and reconnection-driven dissipation in turbulence.
References in corpus (3)
Cited by in corpus (10)
- 3D Turbulent Reconnection: Theory, Tests and Astrophysical Implications
- Electron Acceleration during Macroscale Magnetic Reconnection
- The role of three-dimensional transport in driving enhanced electron acceleration during magnetic reconnection
- Recent Progress on Particle Acceleration and Reconnection Physics during Magnetic Reconnectionin the Magnetically-dominated Relativistic Regime
- Thermal-nonthermal energy partition in solar flares derived from X-ray, EUV, and bolometric observations
- A Model for Coronal Inflows and In/Out Pairs
- Spectral Power-law Formation by Sequential Particle Acceleration in Multiple Flare Magnetic Islands
- Local analysis of fast magnetic reconnection
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects
- Characterizing Velocity-Space Signatures of Electron Energization in Large-Guide-Field Collisionless Magnetic Reconnection