Flare particle acceleration in the interaction of twisted coronal flux ropes

J Threlfall, A.W. Hood, Philippa Browning

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    Abstract

    Aims. The aim of this work is to investigate and characterise non-thermal particle behaviour in a three-dimensional (3D) magnetohydrodynamical (MHD) model of unstable multi-threaded flaring coronal loops.

    Methods.We have used a numerical scheme which solves the relativistic guiding centre approximation to study the motion of electrons and protons. The scheme uses snapshots from high resolution numerical MHD simulations of coronal loops containing two threads, where a single thread becomes unstable and (in one case) destabilises and merges with an additional thread.

    Results. The particle responses to the reconnection and fragmentation in MHD simulations of two loop threads are examined in detail. We illustrate the role played by uniform background resistivity and distinguish this from the role of anomalous resistivity using orbits in an MHD simulation where only one thread becomes unstable without destabilising further loop threads. We examine the (scalable) orbit energy gains and final positions recovered at different stages of a second MHD simulation wherein a secondary loop thread is destabilised by (and merges with) the first thread. We compare these results with other theoretical particle acceleration models in the context of observed energetic particle populations during solar flares.
    Original languageEnglish
    JournalAstronomy and Astrophysics
    Early online date9 Jan 2018
    DOIs
    Publication statusPublished - 2018

    Keywords

    • Plasmas
    • Sun: corona
    • Sun: Magnetic fields
    • Sun: activity
    • Acceleration of particles

    Research Beacons, Institutes and Platforms

    • Manchester Institute for Collaborative Research on Ageing

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