The impact of corotation on gradual solar energetic particle event intensity profiles
Adam Hutchinson, Silvia Dalla, Timo Laitinen, Charlotte O. G., Waterfall

TL;DR
This study demonstrates that corotation significantly influences the intensity profiles of gradual Solar Energetic Particle events, affecting duration, decay, and peak intensity, especially during the decay phase and for different observer positions.
Contribution
It introduces a 3D test particle simulation approach to explicitly assess corotation effects on SEP profiles, contrasting with traditional focused transport models that neglect corotation.
Findings
Corotation strongly impacts SEP decay phases.
Western events have shortened durations with corotation.
Corotation enhances east-west asymmetry in peak intensities.
Abstract
Corotation of particle-filled magnetic flux tubes is generally thought to have a minor influence on the time-intensity profiles of gradual Solar Energetic Particle (SEP) events. For this reason many models solve the focussed transport equation within the corotating frame, thus neglecting corotation effects. We study the effects of corotation on gradual SEP intensity profiles at a range of observer longitudinal positions relative to the solar source. We study how corotation affects the duration and decay time constant of SEP events and the variation of peak intensity with observer position. We use a 3D full-orbit test particle code with time-extended SEP injection via a shock-like source. Unlike with focussed transport models, the test particle approach enables us to switch corotation on and off easily. While shock acceleration is not modelled directly, our methodology allows us to study…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics · Gamma-ray bursts and supernovae
