Cross-Field Diffusion Effects on Particle Transport in a Solar Coronal Flux Rope
arXiv:2411.00738 · doi:10.3847/2041-8213/ad8d56
Abstract
Solar energetic particles (SEPs) associated with solar flares and coronal mass ejections (CMEs) are key agents of space weather phenomena, posing severe threats to spacecraft and astronauts. Recent observations by Parker Solar Probe (PSP) indicate that the magnetic flux ropes of a CME can trap energetic particles and act as barriers, preventing other particles from crossing. In this paper, we introduce the novel COCONUT+PARADISE model to investigate the confinement of energetic particles within a flux rope and the effects of cross-field diffusion (CFD) on particle transport in the solar corona, particularly in the presence of a CME. Using the global magnetohydrodynamic coronal model COCONUT, we generate background configurations containing a CME modeled as a Titov-Démoulin flux rope (TDFR). We then utilize the particle transport code PARADISE to inject monoenergetic 100 keV protons inside one of the TDFR legs near its footpoint and evolve the particles through the COCONUT backgrounds. To study CFD, we employ two different approaches regarding the perpendicular proton mean free path (MFP): a constant MFP and a Larmor radius-dependent MFP. We contrast these results with those obtained without CFD. While particles remain fully trapped within the TDFR without CFD, we find that even relatively small perpendicular MFP values allow particles on the outer layers to escape. In contrast, the initially interior trapped particles stay largely confined. Finally, we highlight how our model and this paper's results are relevant for future research on particle acceleration and transport in an extended domain encompassing both the corona and inner heliosphere.
16 pages, 8 figures, accepted for publication by ApJ Letters
References in corpus (13)
- Understanding space weather to shield society: A global road map for 2015-2025 commissioned by COSPAR and ILWS
- A Hitch-hiker's Guide to Stochastic Differential Equations: Solution Methods for Energetic Particle Transport in Space Physics and Astrophysics
- Assessing the impact of space weather on the electric power grid based on insurance claims for industrial electrical equipment
- Modelling three-dimensional transport of solar energetic protons in a corotating interaction region generated with EUHFORIA
- Variable emission mechanism of a Type IV radio burst
- A Primer on Focused Solar Energetic Particle Transport: Basic physics and recent modelling results
- Observation-based modelling of the energetic storm particle event of 14 July 2012
- A Self-consistent Simulation of Proton Acceleration and Transport Near a High-speed Solar Wind Stream
- Energetic Proton Propagation and Acceleration Simulated for the Bastille Day Event of July 14, 2000
- Synchrotron Radio Emission from a Fast Halo Coronal Mass Ejection
- Effects of Mesh Topology on MHD Solution Features in Coronal Simulations
- Parker Solar Probe Observations of Helical Structures as Boundaries for Energetic Particles
- Energetic particle acceleration and transport with the novel IcarusPARADISE model