Modelling Solar Energetic Particle transport near a wavy Heliospheric Current Sheet
arXiv:1712.03729 · doi:10.3847/1538-4357/aaa3fa
Abstract
Understanding the transport of Solar Energetic Particles (SEPs) from acceleration sites at the Sun into interplanetary space and to the Earth is an important question for forecasting space weather. The Interplanetary Magnetic Field (IMF), with two distinct polarities and a complex structure, governs energetic particle transport and drifts. We analyse for the first time the effect of a wavy Heliospheric Current Sheet (HCS) on the propagation of SEPs. We inject protons close to the Sun and propagate them by integrating fully 3D trajectories within the inner heliosphere in the presence of weak scattering. We model the HCS position using fits based on neutral lines of magnetic field source surface maps (SSMs). We map 1 au proton crossings, which show efficient transport in longitude via HCS, depending on the location of the injection region with respect to the HCS. For HCS tilt angles around , we find significant qualitative differences between A+ and A configurations of the IMF, with stronger fluences along the HCS in the former case but with a distribution of particles across a wider range of longitudes and latitudes in the latter. We show how a wavy current sheet leads to longitudinally periodic enhancements in particle fluence. We show that for an A+ IMF configuration, a wavy HCS allows for more proton deceleration than a flat HCS. We find that A IMF configurations result in larger average fluences than A+ IMF configurations, due to a radial drift component at the current sheet.
16 pages, 8 figures and 1 table, plus appendix of 2 pages, 1 figure and 1 table
References in corpus (4)
Cited by in corpus (14)
- Comparing Long-Duration Gamma-Ray Flares and High-Energy Solar Energetic Particles
- A Primer on Focused Solar Energetic Particle Transport: Basic physics and recent modelling results
- Observations of the 2019 April 4 Solar Energetic Particle Event at the Parker Solar Probe
- 3D propagation of relativistic solar protons through interplanetary space
- On the seed population of solar energetic particles in the inner heliosphere
- Relativistic proton levels from region AR 12673 (GLE \#72) and the heliospheric current sheet as a SunEarth magnetic connection
- Modelling the transport of relativistic solar protons along a heliospheric current sheet during historic GLE events
- Multi-spacecraft observations and transport simulations of solar energetic particles for the May 17th 2012 event
- The multi-spacecraft high-energy solar particle event of 28 October 2021
- 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
- Multi-spacecraft constraints on relativistic solar energetic particle transport in the widespread 28 October 2021 event
- On the Turbulent Reduction of Drifts for Solar Energetic Particles
- Current sheets, plasmoids and flux ropes in the heliosphere. Part II: Theoretical aspects