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Simultaneous Proton and Electron Energization during Macroscale Magnetic Reconnection

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arxiv 2407.10933 v2 pith:SM45VVT4 submitted 2024-07-15 physics.plasm-ph astro-ph.HEastro-ph.SRphysics.space-ph

classification physics.plasm-phastro-ph.HEastro-ph.SRphysics.space-ph
keywords energymagneticpowerprotonprotonsdriveelectronelectrons
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The results of simulations of magnetic reconnection accompanied by electron and proton heating and energization in a macroscale system are presented. Both species form extended powerlaw distributions that extend nearly three decades in energy. The primary drive mechanism for the production of these nonthermal particles is Fermi reflection within evolving and coalescing magnetic flux ropes. While the powerlaw indices of the two species are comparable, the protons overall gain more energy than electrons and their power law extends to higher energy. The power laws roll into a hot thermal distribution at low energy with the transition energy occurring at lower energy for electrons compared with protons. A strong guide field diminishes the production of non-thermal particles by reducing the Fermi drive mechanism. In solar flares, proton power laws should extend down to 10's of keV, far below the energies that can be directly probed via gamma-ray emission. Thus, protons should carry much more of the released magnetic energy than expected from direct observations.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Solar Orbiter's 2024 Major Flare Campaigns: An Overview

    astro-ph.SR 2025-05 conditional novelty 5.0 of 10

    The 2024 Solar Orbiter Major Flare campaigns produced a publicly available dataset of 22 flares, including 2-second non-saturated EUV images and coordinated X-ray and UV spectroscopy.

  2. Particle Injection Problem in Magnetic Reconnection and Turbulence

    physics.plasm-ph 2025-06 conditional novelty 3.0 of 10

    A review of the particle injection problem in magnetic reconnection and turbulence, arguing that injection is set by direct acceleration, Fermi kicks, and pickup processes, not by E>B diffusion regions.

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