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Self-Consistent Superthermal Electron Effects on Plasmaspheric RefillingThe effects of self-consistently including superthermal electrons in the definition of the ambipolar electric field are investigated for the case of plasmaspheric refilling after a geomagnetic storm. By using the total electron population in the hydrodynamic equations, a method for incorporating superthermal electron parameters in the electric field and electron temperature calculation is developed. Also, the ambipolar electric field is included in the kinetic equation for the superthermal electrons through a change of variables using the total energy and the first adiabatic invariant. Calculations based on these changes are performed by coupling time-dependent models of the thermal plasma and superthermal electrons. Results from this treatment of the electric field and the self-consistent development of the solution are discussed in detail. Specifically, there is a decreased thermal electron density in the plasmasphere during the first few minutes of refilling, a slightly accelerated proton shock front, and a decreased superthermal electron flux due to the deceleration by the electric field. The timescales of plasmaspheric refilling are discussed and determined to be somewhat shorter than previously calculated for the thermal plasma and superthermal electron population due to the effects of the field-aligned potential.
Document ID
19970022495
Acquisition Source
Marshall Space Flight Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Liemohn, M. W.
(Michigan Univ. Ann Arbor, MI United States)
Khazanov, G. V.
(NASA Marshall Space Flight Center Huntsville, AL United States)
Moore, T. E.
(NASA Marshall Space Flight Center Huntsville, AL United States)
Guiter, S. M.
(Alabama Univ. Huntsville, AL United States)
Date Acquired
September 6, 2013
Publication Date
April 1, 1997
Publication Information
Publication: Journal of Geophysical Research
Publisher: American Geophysical Union
Volume: 102
Issue: A4
ISSN: 0148-0227
Subject Category
Atomic And Molecular Physics
Report/Patent Number
NASA-CR-204686
Paper-96JA03962
NAS 1.26:204686
Report Number: NASA-CR-204686
ISSN: 0148-0227
Report Number: Paper-96JA03962
Report Number: NAS 1.26:204686
Accession Number
97N23035
Funding Number(s)
CONTRACT_GRANT: NSF ATM-95-23699
CONTRACT_GRANT: NGT-51335
CONTRACT_GRANT: UPN-432-20-00
Distribution Limits
Public
Copyright
Public Use Permitted.
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