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Explicit IMF B -Dependence of Energetic Protons and the Ring Current.

L Holappa1,2,3, N Y Buzulukova2,3

  • 1Space Physics and Astronomy Research Unit University of Oulu Oulu Finland.

Geophysical Research Letters
|July 22, 2022
PubMed
Summary

The interplanetary magnetic field's (IMF) dawn-dusk component influences Earth's magnetosphere seasonally. This study reveals an explicit IMF By dependence on the ring current and Dst index, varying with the seasons.

Keywords:
IMF Byenergetic protonring currentsolar wind‐magnetosphere interaction

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Area of Science:

  • Space Physics
  • Magnetospheric Physics
  • Solar-Terrestrial Physics

Background:

  • The solar wind-magnetosphere interaction is primarily driven by the southward interplanetary magnetic field (IMF) Bz component.
  • The dawn-dusk (IMF) By component's role is significant but typically considered sign-independent.
  • Previous studies have not fully explored the explicit dependence of magnetospheric phenomena on the sign of IMF By.

Purpose of the Study:

  • To investigate and demonstrate a seasonally varying, explicit dependence of the ring current and Dst index on the IMF By component.
  • To analyze how the sign of IMF By affects energetic particle flux and ring current development.

Main Methods:

  • Utilizing satellite observations of the magnetosphere.
  • Employing a global magnetohydrodynamic (MHD) model coupled with a ring current model.
  • Analyzing data for seasonal variations in response to IMF By.

Main Results:

  • A clear, seasonally dependent IMF By effect on the ring current and Dst index was identified.
  • For a fixed solar wind input, the flux of energetic magnetospheric protons and the ring current growth rate are greater for By < 0 than By > 0 in Northern Hemisphere summer.
  • Conversely, these values are greater for By > 0 than By < 0 in Northern Hemisphere winter.

Conclusions:

  • The sign of the IMF By component has an explicit, seasonally varying impact on the ring current and Dst index.
  • This explicit By effect suggests modulation of magnetospheric convection and plasma transport in the inner magnetosphere.
  • Further research is needed to fully understand the underlying physical mechanisms driving this observed phenomenon.