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Revealing the Formation of the <20 MeV Inner Proton Radiation Belt at L ∼ 2 During the 10–11 May 2024 Superstorm

  • Murong Qin
  • , Mary K. Hudson
  • , Miles Engel
  • , Brian T. Kress
  • , Zhao Li
  • , Maulik Patel
  • , Wen Li
  • , Kevin Pham
  • , William R. Johnston
  • , Xinlin Li
  • , Shawn Young
  • Boston University
  • 6127 Wilder Laboratory
  • National Center for Atmospheric Research
  • Los Alamos National Laboratory
  • University of Colorado Boulder
  • Air Force Research Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

A new proton radiation belt was identified during the geomagnetic superstorm of 10–11 May 2024. To investigate its origin, we use an MHD-test particle simulation to model solar energetic proton (SEP) trapping and the evolution of the initial trapped proton population during the storm. The simulation weights the injected SEP population with interplanetary proton measurements and the initial trapped proton radial profile with energy-resolved Weather System Follow-on-Microwave (WSF-M) proton data, enabling quantitative comparison with observations. Results show that SEP contributions are minimal; the new ∼2–18 MeV belt at L ∼ 2 forms mainly through redistribution and energization of the initial trapped population within hours of the CME shock, driven by subsequent electric field impulses, rather than the initial shock alone. These results provide quantitative evidence based on realistic, plasma-dependent field dynamics and significantly advance understanding of inner radiation belt formation.

Original languageEnglish
Article numbere2025GL121247
JournalGeophysical Research Letters
Volume53
Issue number11
DOIs
StatePublished - Jun 16 2026
Externally publishedYes

Keywords

  • inner magnetosphere
  • inner radiation belt
  • magnetic storm
  • proton trapping
  • solar energetic protons

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