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Dynamics of magnetosphere‐ionosphere coupling including turbulent transport
Author(s) -
Lysak Robert L.,
Dum Christian T.
Publication year - 1983
Publication title -
journal of geophysical research: space physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.67
H-Index - 298
eISSN - 2156-2202
pISSN - 0148-0227
DOI - 10.1029/ja088ia01p00365
Subject(s) - physics , ionosphere , alfvén wave , decoupling (probability) , magnetosphere , turbulence , geophysics , magnetohydrodynamics , electric field , wave turbulence , computational physics , field line , mechanics , magnetic field , classical mechanics , quantum mechanics , control engineering , engineering
The dynamics of magnetosphere‐ionosphere coupling has been investigated by means of a two‐dimensional two—fluid MHD model including anomalous resistivity. When field‐aligned current is generated on auroral field lines, the disturbance propagates toward the ionosphere in the form of a kinetic Alfvén wave. When the current exceeds a critical value, microscopic turbulence is produced, which modifies the propagation of the Alfvén wave. This process is modeled by a nonlinear collision frequency, which increases with the excess of the drift velocity over the critical value. The system evolves toward an electrostatic structure, with the perpendicular electric field having a shorter scale than the field‐aligned current. The approach to a steady state is strongly dependent on the presence or absence of the turbulence and on the boundary conditions imposed in the generator. As current is increased or scale size is decreased, the turbulent region reflects and absorbs most of the Alfvén wave energy, decoupling the generator from the ionosphere.

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