The existence of parallel electric fields is an essential ingredient of auroral physics, leading to the acceleration of particles that give rise to the auroral displays. An auroral flux tube is modelled using electrostatic Vlasov simulations, and the results are compared to simulations of a proposed laboratory device that is meant for studies of the plasma physical processes that occur on auroral field lines. The hot magnetospheric plasma is represented by a gas discharge plasma source in the laboratory device, and the cold plasma mimicking the ionospheric plasma is generated by a Q-machine source. In both systems, double layers form with plasma density gradients concentrated on their high potential sides. The systems differ regarding the properties of ion acoustic waves that are heavily damped in the magnetosphere, where the ion population is hot, but weakly damped in the laboratory, where the discharge ions are cold. Ion waves are excited by the ion beam that is created by acceleration in the double layer in both systems. The efficiency of this beam-plasma interaction depends on the acceleration voltage. For voltages where the interaction is less efficient, the laboratory experiment is more space-like.
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October 2013
Research Article|
October 11 2013
Numerical and laboratory simulations of auroral acceleration
H. Gunell;
H. Gunell
a)
1
1Belgian Institute for Space Aeronomy
, Avenue Circulaire 3, B-1180 Brussels, Belgium
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J. De Keyser;
J. De Keyser
1
1Belgian Institute for Space Aeronomy
, Avenue Circulaire 3, B-1180 Brussels, Belgium
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I. Mann
I. Mann
2
EISCAT Scientific Association
, P.O. Box 812, SE-981 28 Kiruna, Sweden
and Department of Physics, Umeå University, SE-901 87 Umeå, Sweden
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H. Gunell
1,a)
J. De Keyser
1
I. Mann
2
1
1Belgian Institute for Space Aeronomy
, Avenue Circulaire 3, B-1180 Brussels, Belgium
2
EISCAT Scientific Association
, P.O. Box 812, SE-981 28 Kiruna, Sweden
and Department of Physics, Umeå University, SE-901 87 Umeå, Sweden
a)
Electronic mail: [email protected]
Phys. Plasmas 20, 102901 (2013)
Article history
Received:
July 24 2013
Accepted:
September 23 2013
Citation
H. Gunell, J. De Keyser, I. Mann; Numerical and laboratory simulations of auroral acceleration. Phys. Plasmas 1 October 2013; 20 (10): 102901. https://doi.org/10.1063/1.4824453
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