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Global Investigation of the Mg Atom and ion Layers using SCIAMACHY/Envisat Observations between 70 km and 150 km Altitude and WACCM-MG Model ResultsMg and Mg+ concentration fields in the upper mesosphere/lower thermosphere (UMLT) region are retrieved from SCIAMACHY/Envisat limb measurements of Mg and Mg+ dayglow emissions using a 2-D tomographic retrieval approach. The time series of monthly means of Mg and Mg+ for number density as well as vertical column density in different latitudinal regions are shown. Data from the limb mesosphere-thermosphere mode of SCIAMACHY/Envisat are used, which covers the 50 km to 150 km altitude region with a vertical sampling of 3.3 km and a highest latitude of 82 deg. The high latitudes are not covered in the winter months, because there is no dayglow emission during polar night. The measurements were performed every 14 days from mid-2008 until April 2012. Mg profiles show a peak at around 90 km altitude with a density between 750 cm(exp−3) and 2000 cm(exp−3). Mg does not show strong seasonal variation at mid-latitudes. The Mg+ peak occurs 5-15 km above the neutral Mg peak at 95-105 km. Furthermore, the ions show a significant seasonal cycle with a summer maximum in both hemispheres at mid- and high-latitudes. The strongest seasonal variations of the ions are observed at mid-latitudes between 20-40 deg and densities at the peak altitude range from 500 cm(exp−3) to 6000 cm(exp−3). The peak altitude of the ions shows a latitudinal dependence with a maximum at mid-latitudes that is up to 10 km higher than the peak altitude at the equator. The SCIAMACHY measurements are compared to other measurements and WACCM model results. In contrast to the SCIAMACHY results, the WACCM results show a strong seasonal variability for Mg with a winter maximum, which is not observable by SCIAMACHY, and globally higher peak densities. Although the peak densities do not agree the vertical column densities agree, since SCIAMACHY results show a wider vertical profile. The agreement of SCIAMACHY and WACCM results is much better for Mg+, showing the same seasonality and similar peak densities. However, there are the following minor differences: there is no latitudinal dependence of the peak altitude for WACCM and the density maximum, passing the equatorial region during equinox conditions, is not reduced as for SCIAMACHY.
Document ID
20140005693
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Langowski, M.
(Bremen Univ. Germany)
vonSavigny, C.
(Bremen Univ. Germany)
Burrows, J. P.
(Bremen Univ. Germany)
Feng, W.
(Leeds Univ. United Kingdom)
Plane, J. M. C.
(Leeds Univ. United Kingdom)
Marsh, D. R.
(National Center for Atmospheric Research Boulder, CO, United States)
Janches, Diego
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Sinnhuber, M.
(Technische Hochschule Aachen, Germany)
Aikin, A. C.
(Catholic Univ. of America Washington, DC, United States)
Date Acquired
May 13, 2014
Publication Date
January 1, 2014
Publication Information
Publication: Atmospheric Chemistry and Physics: Discussions
Publisher: Copernicus Publications
Volume: 14
Subject Category
Meteorology And Climatology
Earth Resources And Remote Sensing
Report/Patent Number
GSFC-E-DAA-TN13242
Report Number: GSFC-E-DAA-TN13242
Funding Number(s)
CONTRACT_GRANT: FA8655-09-3012
CONTRACT_GRANT: NE/G019487/1
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
SCIAMACHYEnvisat
thermosphere
mesosphere
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