On the ionospheric coupling of auroral electric fields
The quasi-static coupling of high-altitude potential structures and electric fields to the ionosphere is discussed with particular focus on the downward field-aligned current (FAC) region. Results are presented from a preliminary analysis of a selection of electric field events observed by Cluster a...
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Copernicus Publications
2009-04-01
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doaj-2901da3a09d6472eabc8b38a7d76fb9b2020-11-24T22:46:03ZengCopernicus PublicationsNonlinear Processes in Geophysics1023-58091607-79462009-04-01162365372On the ionospheric coupling of auroral electric fieldsG. T. MarklundThe quasi-static coupling of high-altitude potential structures and electric fields to the ionosphere is discussed with particular focus on the downward field-aligned current (FAC) region. Results are presented from a preliminary analysis of a selection of electric field events observed by Cluster above the acceleration region. The degree of coupling is here estimated as the ratio between the magnetic field-aligned potential drop, &Delta;&Phi;<sub>II</sub>, as inferred from the characteristic energy of upward ion (electron) beams for the upward (downward) current region and the high-altitude perpendicular (to <b>B</b>) potential, &Delta;&Phi;<sub>bot</sub>, as calculated by integrating the perpendicular electric field across the structure. For upward currents, the coupling can be expressed analytically, using the linear current-voltage relation, as outlined by Weimer et al. (1985). This gives a scale size dependent coupling where structures are coupled (decoupled) above (below) a critical scale size. For downward currents, the current-voltage relation is highly non-linear which complicates the understanding of how the coupling works. Results from this experimental study indicate that small-scale structures are decoupled, similar to small-scale structures in the upward current region. There are, however, exceptions to this rule as illustrated by Cluster results of small-scale intense electric fields, correlated with downward currents, indicating a perfect coupling between the ionosphere and Cluster altitude. http://www.nonlin-processes-geophys.net/16/365/2009/npg-16-365-2009.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
G. T. Marklund |
spellingShingle |
G. T. Marklund On the ionospheric coupling of auroral electric fields Nonlinear Processes in Geophysics |
author_facet |
G. T. Marklund |
author_sort |
G. T. Marklund |
title |
On the ionospheric coupling of auroral electric fields |
title_short |
On the ionospheric coupling of auroral electric fields |
title_full |
On the ionospheric coupling of auroral electric fields |
title_fullStr |
On the ionospheric coupling of auroral electric fields |
title_full_unstemmed |
On the ionospheric coupling of auroral electric fields |
title_sort |
on the ionospheric coupling of auroral electric fields |
publisher |
Copernicus Publications |
series |
Nonlinear Processes in Geophysics |
issn |
1023-5809 1607-7946 |
publishDate |
2009-04-01 |
description |
The quasi-static coupling of high-altitude potential structures and electric fields to the ionosphere is discussed with particular focus on the downward field-aligned current (FAC) region. Results are presented from a preliminary analysis of a selection of electric field events observed by Cluster above the acceleration region. The degree of coupling is here estimated as the ratio between the magnetic field-aligned potential drop, &Delta;&Phi;<sub>II</sub>, as inferred from the characteristic energy of upward ion (electron) beams for the upward (downward) current region and the high-altitude perpendicular (to <b>B</b>) potential, &Delta;&Phi;<sub>bot</sub>, as calculated by integrating the perpendicular electric field across the structure. For upward currents, the coupling can be expressed analytically, using the linear current-voltage relation, as outlined by Weimer et al. (1985). This gives a scale size dependent coupling where structures are coupled (decoupled) above (below) a critical scale size. For downward currents, the current-voltage relation is highly non-linear which complicates the understanding of how the coupling works. Results from this experimental study indicate that small-scale structures are decoupled, similar to small-scale structures in the upward current region. There are, however, exceptions to this rule as illustrated by Cluster results of small-scale intense electric fields, correlated with downward currents, indicating a perfect coupling between the ionosphere and Cluster altitude. |
url |
http://www.nonlin-processes-geophys.net/16/365/2009/npg-16-365-2009.pdf |
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AT gtmarklund ontheionosphericcouplingofauroralelectricfields |
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