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Terrestrial Exospheric Dayside H-density Profile at 3 - 15 RE from UVIS/HDAC and TWINS Lyman-alpha Data CombinedTerrestrial ecliptic dayside observations of the exospheric Lyman-α column intensity between 3–15 Earth radii (RE) by UVIS/HDAC (UVIS – ultraviolet imaging spectrograph; HDAC – hydrogen-deuterium absorption cell) Lyman-α photometer at CASSINI have been analyzed to derive the neutral exospheric H-density profile at the Earth’s ecliptic dayside in this radial range. The data were measured during CASSINI’s swing-by maneuver at the Earth on 18 August 1999 and are published by Werner et al. (2004). In this study the dayside HDAC Lyman-α observations published by Werner et al. (2004) are compared to calculated Lyman-α intensities based on the 3D H-density model derived from TWINS (Two Wide-angle Imaging Neutral-atom Spectrometers) Lyman-α observations between 2008–2010 (Zoennchen et al., 2015). It was found that both Lyman-α profiles show a very similar radial dependence in particular between 3–8RE. Between 3.0–5.5RE impact distance Lyman-α observations of both TWINS and UVIS/HDAC exist at the ecliptic dayside. In this overlapping region the cross-calibration of the HDAC profile against the calculated TWINS profile was done, assuming that the exosphere there was similar for both due to comparable space weather conditions. As a result of the cross-calibration the conversion factor between counts per second and rayleigh, fc = 3.285 counts s−1R−1, is determined for these HDAC observations. Using this factor, the radial H-density profile for the Earth’s ecliptic dayside was derived from the UVIS/HDAC observations, which constrained the neutral H density there at 10RE to a value of 35 cm-3. Furthermore, a faster radial H-density decrease was found at distances above 8RE (≈r−2.37) compared to the lower distances of 3–7RE (≈r−2.37). This increased loss of neutral H above 8RE might indicate a higher rate of H ionization in the vicinity of the magnetopause at 9–11RE (near subsolar point) and beyond, because of increasing charge exchange interactions of exospheric H atoms with solar wind ions outside the magnetosphere.
Document ID
20220016411
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Jochen H Zoennchen
(University of Bonn Bonn, Germany)
Hyunju K Connor
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Jaewoong Jung
(University of Alaska Fairbanks Fairbanks, Alaska, United States)
Uwe Nass
(University of Bonn Bonn, Germany)
Hans J Fahr
(University of Bonn Bonn, Germany)
Date Acquired
October 31, 2022
Publication Date
May 6, 2022
Publication Information
Publication: Annales Geophysicae
Publisher: European Geoscience Union
Volume: 40
Issue: 3
Issue Publication Date: May 6, 2022
ISSN: 0992-7689
e-ISSN: 1432-0576
Subject Category
Astrophysics
Funding Number(s)
CONTRACT_GRANT: 80NSSC18K1042
CONTRACT_GRANT: 80NSSC18K1043
CONTRACT_GRANT: 80NSSC19K0844
CONTRACT_GRANT: 80NSSC20K1670
CONTRACT_GRANT: 80MSFC20C0019
CONTRACT_GRANT: AGS-1928883, OIA-1920965
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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