Solar Particle Acceleration at Reconnecting 3D Null Points
Adam J. Stanier, Philippa K. Browning, Silvia Dalla

TL;DR
This study investigates how 3D magnetic null point reconnection in solar flares accelerates particles, finding fan reconnection effectively energizes protons up to 0.1 GeV, unlike the less efficient spine model.
Contribution
It provides a detailed comparison of particle acceleration mechanisms in fan and spine reconnection models using full orbit simulations.
Findings
Fan reconnection accelerates particles efficiently via electric drift.
Maximum proton energy reaches 0.1 GeV in fan reconnection.
Spine model shows limited acceleration efficiency.
Abstract
Context: The strong electric fields associated with magnetic reconnection in solar flares are a plausible mechanism to accelerate populations of high energy, non-thermal particles. One such reconnection scenario occurs at a 3D magnetic null point, where global plasma flows give rise to strong currents in the spine axis or fan plane. Aims: To understand the mechanism of charged particle energy gain in both the external drift region and the diffusion region associated with 3D magnetic reconnection. In doing so we evaluate the efficiency of resistive spine and fan models for particle acceleration, and find possible observables for each. Method: We use a full orbit test particle approach to study proton trajectories within electromagnetic fields that are exact solutions to the steady and incompressible magnetohydrodynamic equations. We study single particle trajectories and find energy…
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