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Driving ionospheric outflows and magnetospheric O + energy density with Alfvén waves
Author(s) -
Chaston C. C.,
Bonnell J. W.,
Reeves G. D.,
Skoug R. M.
Publication year - 2016
Publication title -
geophysical research letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.007
H-Index - 273
eISSN - 1944-8007
pISSN - 0094-8276
DOI - 10.1002/2016gl069008
Subject(s) - physics , magnetosphere , ionosphere , ring current , ion , geomagnetic storm , earth's magnetic field , geophysics , atomic physics , computational physics , equator , magnetic field , plasma , astronomy , nuclear physics , latitude , quantum mechanics
We show how dispersive Alfvén waves observed in the inner magnetosphere during geomagnetic storms can extract O + ions from the topside ionosphere and accelerate these ions to energies exceeding 50 keV in the equatorial plane. This occurs through wave trapping, a variant of “shock” surfing, and stochastic ion acceleration. These processes in combination with the mirror force drive field‐aligned beams of outflowing ionospheric ions into the equatorial plane that evolve to provide energetic O + distributions trapped near the equator. These waves also accelerate preexisting/injected ion populations on the same field lines. We show that the action of dispersive Alfvén waves over several minutes may drive order of magnitude increases in O + ion pressure to make substantial contributions to magnetospheric ion energy density. These wave accelerated ions will enhance the ring current and play a role in the storm time evolution of the magnetosphere.

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