Day-to-night transport in the Martian ionosphere: Implications from total electron content measurements
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Published version
Author(s)
Cui, J
Galand, M
Yelle, RV
Wei, Y
Zhang, S-J
Type
Journal Article
Abstract
The nightside Martian ionosphere is thought to be contributed by day-to-night transport and electron precipitation, of which the former has not been well studied. In this work, we evaluate the role of day-to-night transport based on the total electron content (TEC) measurements made by the Mars Advanced Radar for Subsurface and Ionospheric Sounding on board Mars Express. This is accomplished by an examination of the variation of nightside TEC in the time domain rather than the traditional solar zenith angle domain. Our analyses here, being constrained to the Northern Hemisphere where the effects of crustal magnetic fields can be neglected, reveal that day-to-night transport serves as the dominant source for the nightside Martian ionosphere from terminator crossing up to time in darkness of ≈5.3 × 103 s, beyond which it is surpassed by electron precipitation. The observations are compared with predictions from a simplified time-dependent ionosphere model. We conclude that the solid body rotation of Mars is insufficient to account for the observed depletion of nightside TEC but the data could be reasonably reproduced by a zonal electron flow velocity of ≈1.9 km s−1.
Date Issued
2015-03-28
Date Acceptance
2015-02-18
Citation
Journal of Geophysical Research: Space Physics, 2015, 120 (3), pp.2333-2346
ISSN
2169-9402
Publisher
American Geophysical Union (AGU)
Start Page
2333
End Page
2346
Journal / Book Title
Journal of Geophysical Research: Space Physics
Volume
120
Issue
3
Copyright Statement
©2015. American Geophysical Union. All Rights Reserved
Subjects
Science & Technology
Physical Sciences
Astronomy & Astrophysics
Martian ionosphere
day-to-night transport
DENSITY PROFILES ANALYSIS
SOLAR-WIND INTERACTION
VENUS IONOSPHERE
MARS IONOSPHERE
RADAR SOUNDINGS
DISSOCIATIVE RECOMBINATION
SUPERSONIC-FLOW
MAGNETIC-FIELD
PLASMA MOTION
ION
Publication Status
Published