Solar Energetic Particle transport near a Heliospheric Current Sheet
arXiv:1701.04286 · doi:10.3847/1538-4357/836/1/138
Abstract
Solar Energetic Particles (SEPs), a major component of space weather, propagate through the interplanetary medium strongly guided by the Interplanetary Magnetic Field (IMF). In this work, we analyse the implications a flat Heliospheric Current Sheet (HCS) has on proton propagation from SEP release sites to the Earth. We simulate proton propagation by integrating fully 3-D trajectories near an analytically defined flat current sheet, collecting comprehensive statistics into histograms, fluence maps and virtual observer time profiles within an energy range of 1--800 MeV. We show that protons experience significant current sheet drift to distant longitudes, causing time profiles to exhibit multiple components, which are a potential source of confusing interpretation of observations. We find that variation of current sheet thickness within a realistic parameter range has little effect on particle propagation. We show that IMF configuration strongly affects deceleration of protons. We show that in our model, the presence of a flat equatorial HCS in the inner heliosphere limits the crossing of protons into the opposite hemisphere.
16 pages, 15 figures, accepted for publication in The Astrophysical Journal
References in corpus (1)
Cited by in corpus (6)
- A Primer on Focused Solar Energetic Particle Transport: Basic physics and recent modelling results
- Modelling the transport of relativistic solar protons along a heliospheric current sheet during historic GLE events
- Interplay of large-scale drift and turbulence in the heliospheric propagation of solar energetic particles
- Modelling shock-like injections of solar energetic particles with 3D test particle simulations
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects
- On the Turbulent Reduction of Drifts for Solar Energetic Particles