arXiv · 2011.01147
Electron Acceleration during Macroscale Magnetic Reconnection
Abstract
The first self-consistent simulations of electron acceleration during magnetic reconnection in a macroscale system are presented. Consistent with solar flare observations the spectra of energetic electrons take the form of power-laws that extend more than two decades in energy. The drive mechanism for these nonthermal electrons is Fermi reflection in growing and merging magnetic flux ropes. A strong guide field is found to suppress the production of nonthermal electrons by weakening the Fermi drive mechanism. For a weak guide field the total energy content of nonthermal electrons dominates that of the hot thermal electrons even though their number density remains small. Our results are benchmarked with the hard x-ray, radio and extreme ultra-violet (EUV) observations of the X8.2-class solar flare on September 10, 2017.
Explore related subjects
Keep this discovery
Harry Arnold, James Drake, Marc Swisdak, Fan Guo, Joel Dahlin, Bin Chen, Gregory Fleishman, Lindsay Glesener, Eduard Kontar, Tai Phan, Chengcai Shen. 2020-11-02. Electron Acceleration during Macroscale Magnetic Reconnection. https://doi.org/10.1103/physrevlett.126.135101
Cite the original work for its findings. Save a collection to share your selection of sources.