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Observed and calculated F2 peak heights and derived meridional winds at mid-latitudes over a full solar cycle
Institution:1. Department of Veterinary Medicine, Federal University of Lavras (UFLA), Lavras, MG, Brazil;2. Department of Health Sciences, Federal University of Lavras (UFLA), Lavras, MG, Brazil;3. Department of Biological Sciences, Federal University of Triângulo Mineiro (UFMT), Uberaba, MG, Brazil;1. Dept. of Physics and Astronomy, University of Western Ontario, London, Ontario, Canada N6A 3K7;2. Centre for Planetary Science and Exploration, University of Western Ontario, London, Ontario, Canada N6A 5B8;3. Leibniz Institute of Atmospheric Physics, Rostock University Kühlungsborn, Germany;4. NASA Meteoroid Environment Office, EV44, Marshall Space Flight Center, Huntsville, AL, USA
Abstract:The peak height of the F2 layer, hmF2, has been calculated using the ‘servo’ model of Rishbeth et al. (1978), J. atmos. terr. Phys. 40, 767], combined with the hedin et al. (1988), J. geophys. Res. 93, 9959] neutral wind model. The results are compared with observed values at noon and midnight derived from ionosonde measurements at two mid-latitude stations, Boulder and Wallops Island, over a full solar cycle. The reduced height of the F2 layer, zmF2, is also computed for the same period using the observed hmF2 values and the MSIS-86 model. Day-night, seasonal, and solar cycle variations in zmF2 are attributed to neutral composition changes and winds. Anomalously low values of hmF2 and zmF2 during summer both at solar minimum and during the solar cycle maximum in magnetic activity may be associated with increases in the molecular to atomic ion concentration ratio. Under these circumstances the F2 peak may lie significantly below the O+ peak height calculated by the servo model. Neutral meridional winds at Wallops Island are derived from the servo model using the observed hmF2 values and the calculated O+ ‘balance height’. It is shown that if the anomalously low hmF2 values are used, unrealistically large poleward winds are derived, which are inconsistent with both theory and observations made using other techniques. For most conditions the F2 peak is clearly an O+ peak, and daily mean winds at hmF2 derived from the servo model are consistent with the hedin et al. (1988) wind model. Unexpectedly, the results do not show an abrupt transition in the thermospheric circulation at the equinoxes. Diurnal curves of the servo model winds reveal a larger day-night difference at solar minimum than at solar maximum.
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