Investigation of Inverse Velocity Dispersion in a Solar Energetic Particle Event Observed by Solar Orbiter

Fuente: arXiv
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Main Authors: Ding, Zheyi, Wimmer-Schweingruber, F. Robert, Kollhoff, Alexander, Kühl, Patrick, Yang, Liu, Berger, Lars, Kouloumvakos, Athanasios, Wijsen, Nicolas, Guo, Jingnan, Pacheco, Daniel, Li, Yuncong, Temmer, Manuela, Rodriguez-Pacheco, Javier, Allen, C. Robert, Ho, C. George, Mason, M. Glenn, Xu, Zigong, G, Sindhuja
Format: Preprint
Published: 2025
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author Ding, Zheyi
Wimmer-Schweingruber, F. Robert
Kollhoff, Alexander
Kühl, Patrick
Yang, Liu
Berger, Lars
Kouloumvakos, Athanasios
Wijsen, Nicolas
Guo, Jingnan
Pacheco, Daniel
Li, Yuncong
Temmer, Manuela
Rodriguez-Pacheco, Javier
Allen, C. Robert
Ho, C. George
Mason, M. Glenn
Xu, Zigong
G, Sindhuja
author_facet Ding, Zheyi
Wimmer-Schweingruber, F. Robert
Kollhoff, Alexander
Kühl, Patrick
Yang, Liu
Berger, Lars
Kouloumvakos, Athanasios
Wijsen, Nicolas
Guo, Jingnan
Pacheco, Daniel
Li, Yuncong
Temmer, Manuela
Rodriguez-Pacheco, Javier
Allen, C. Robert
Ho, C. George
Mason, M. Glenn
Xu, Zigong
G, Sindhuja
contents Inverse velocity dispersion (IVD) events, characterized by higher-energy particles arriving later than lower-energy particles, challenge the classical understanding of SEP events and are increasingly observed by spacecraft, such as Parker Solar Probe (PSP) and Solar Orbiter (SolO). However, the mechanisms underlying IVD events remain poorly understood. This study aims to investigate the physical processes responsible for long-duration IVD events by analyzing the SEP event observed by SolO on 2022 June 7. We explore the role of evolving shock connectivity, particle acceleration at interplanetary (IP) shocks, and cross-field transport in shaping the observed particle profiles.We utilize data from Energetic Particle Detector (EPD) suite onboard SolO to analyze the characteristics of the IVD, and model the event using the Heliospheric Energetic Particle Acceleration and Transport (HEPAT) model. The IVD event exhibited a distinct and long-duration IVD signature, across proton energies from 1 to 20 MeV and lasting for approximately 10 hours. Simulations suggest that evolving shock connectivity and the evolution of shock play a primary role in the IVD signature, with SolO transitioning from shock flank to nose over time, resulting in a gradual increase in maximum particle energy along the field line. Furthermore, model results show that limited cross-field diffusion can influence both the nose energy and the duration of the IVD event. This study demonstrates that long-duration IVD events are primarily driven by evolving magnetic connectivity along a non-uniform shock that evolves over time, where the connection moves to more efficient acceleration sites as the shock propagates farther from the Sun. Other mechanisms, such as acceleration time at the shock, may also contribute to the observed IVD features.
format Preprint
id arxiv_https___arxiv_org_abs_2503_12522
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Investigation of Inverse Velocity Dispersion in a Solar Energetic Particle Event Observed by Solar Orbiter
Ding, Zheyi
Wimmer-Schweingruber, F. Robert
Kollhoff, Alexander
Kühl, Patrick
Yang, Liu
Berger, Lars
Kouloumvakos, Athanasios
Wijsen, Nicolas
Guo, Jingnan
Pacheco, Daniel
Li, Yuncong
Temmer, Manuela
Rodriguez-Pacheco, Javier
Allen, C. Robert
Ho, C. George
Mason, M. Glenn
Xu, Zigong
G, Sindhuja
Solar and Stellar Astrophysics
Space Physics
Inverse velocity dispersion (IVD) events, characterized by higher-energy particles arriving later than lower-energy particles, challenge the classical understanding of SEP events and are increasingly observed by spacecraft, such as Parker Solar Probe (PSP) and Solar Orbiter (SolO). However, the mechanisms underlying IVD events remain poorly understood. This study aims to investigate the physical processes responsible for long-duration IVD events by analyzing the SEP event observed by SolO on 2022 June 7. We explore the role of evolving shock connectivity, particle acceleration at interplanetary (IP) shocks, and cross-field transport in shaping the observed particle profiles.We utilize data from Energetic Particle Detector (EPD) suite onboard SolO to analyze the characteristics of the IVD, and model the event using the Heliospheric Energetic Particle Acceleration and Transport (HEPAT) model. The IVD event exhibited a distinct and long-duration IVD signature, across proton energies from 1 to 20 MeV and lasting for approximately 10 hours. Simulations suggest that evolving shock connectivity and the evolution of shock play a primary role in the IVD signature, with SolO transitioning from shock flank to nose over time, resulting in a gradual increase in maximum particle energy along the field line. Furthermore, model results show that limited cross-field diffusion can influence both the nose energy and the duration of the IVD event. This study demonstrates that long-duration IVD events are primarily driven by evolving magnetic connectivity along a non-uniform shock that evolves over time, where the connection moves to more efficient acceleration sites as the shock propagates farther from the Sun. Other mechanisms, such as acceleration time at the shock, may also contribute to the observed IVD features.
title Investigation of Inverse Velocity Dispersion in a Solar Energetic Particle Event Observed by Solar Orbiter
topic Solar and Stellar Astrophysics
Space Physics
url https://arxiv.org/abs/2503.12522