Particle acceleration and transport in reconnecting twisted loops in a stratified atmosphere
Mykola Gordovskyy, Philippa Browning, Eduard Kontar, Nicolas Bian

TL;DR
This study combines MHD and test-particle simulations to explore how twisted coronal loops in the solar atmosphere accelerate particles and produce X-ray emissions during magnetic reconnection events.
Contribution
It provides new insights into particle acceleration mechanisms and X-ray source structures in kink-unstable twisted coronal loops considering atmospheric stratification.
Findings
Electric fields in twisted loops accelerate particles up to 10 MeV.
High-energy particles exhibit power-law energy spectra.
X-ray emission features depend on loop density and particle distribution.
Abstract
Twisted coronal loops should be ubiquitous in the solar corona. Twisted magnetic fields contain excess magnetic energy, which can be released during magnetic reconnection, causing solar flares. The aim of this work is to investigate magnetic reconnection, and particle acceleration and transport in kink-unstable twisted coronal loops, with a focus on the effects of resistivity, loop geometry and atmospheric stratification. Another aim is to perform forward-modelling of bremsstrahlung emission and determine the structure of hard X-ray sources. We use a combination of magnetohydrodynamic (MHD) and test-particle methods. First, the evolution of the kinking coronal loop is considered using resistive MHD model, incorporating atmospheric stratification and loop curvature. Then, the obtained electric and magnetic fields and density distributions are used to calculate electron and proton…
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