GUV long-term measurements of total ozone column and effective cloud transmittance at three Norwegian sites
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Published:2021-05-25
Issue:10
Volume:21
Page:7881-7899
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Svendby Tove M.ORCID, Johnsen BjørnORCID, Kylling ArveORCID, Dahlback Arne, Bernhard Germar H.ORCID, Hansen Georg H., Petkov Boyan, Vitale Vito
Abstract
Abstract. Measurements of total ozone column and effective cloud transmittance have
been performed since 1995 at the three Norwegian sites Oslo/Kjeller,
Andøya/Tromsø, and in Ny-Ålesund (Svalbard). These sites are a
subset of nine stations included in the Norwegian UV monitoring network, which uses ground-based ultraviolet (GUV) multi-filter instruments and is operated by the Norwegian Radiation and Nuclear Safety Authority (DSA) and the Norwegian Institute for Air Research (NILU). The network includes unique data sets of high-time-resolution measurements that can be used for a broad range of atmospheric and biological exposure studies. Comparison of the 25-year records of GUV (global sky) total ozone measurements with Brewer direct sun (DS) measurements shows that the GUV instruments provide valuable supplements to the more standardized ground-based instruments. The GUV instruments can fill in missing data and extend the measuring season at sites with reduced staff and/or characterized by harsh environmental conditions, such as Ny-Ålesund. Also, a harmonized GUV can easily be moved to more remote/unmanned locations and provide independent total ozone column data sets. The GUV instrument in Ny-Ålesund captured well the exceptionally large Arctic ozone depletion in March/April 2020, whereas the GUV instrument in Oslo recorded a mini ozone hole in December 2019 with total ozone values below 200 DU. For all the three Norwegian stations there is a slight increase in total ozone from 1995 until today. Measurements of GUV effective cloud transmittance in Ny-Ålesund indicate that there has been a significant change in albedo during the past 25 years, most likely resulting from increased temperatures and Arctic ice melt in the area surrounding Svalbard.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference52 articles.
1. Anderson, G. P., Clough, S. A., Kneizys, F. X., Chetwynd, J. H., and Shettle, E. P.: AFGL atmospheric constituent profiles (0–120 km), AFGL-TR-86-0110 Air Force Geophysics Laboratory, Hanscom Air Force Base, Massachusetts, 1987. 2. Antón, M. and Loyola, D.: Influence of cloud properties on satellite total ozone observations, J. Geophys. Res., 116, D03208, https://doi.org/10.1029/2010JD014780, 2011. 3. Bernhard, G.: Trends of solar ultraviolet irradiance at Barrow, Alaska, and
the effect of measurement uncertainties on trend detection, Atmos. Chem.
Phys., 11, 13029–13045, https://doi.org/10.5194/acp-11-13029-2011, 2011. 4. Bernhard, G., Booth, C. R., and Ehramjian, J. C.: Real-time ultraviolet and
column ozone from multichannel ultraviolet radiometers deployed in the National Science Foundation's ultraviolet monitoring network, Opt. Eng., 44, 041011-1–041011-12, 2005. 5. Bernhard, G., Dahlback, A., Fioletov, V., Heikkilä, A., Johnsen, B.,
Koskela, T., Lakkala, K., and Svendby, T.: High levels of ultraviolet radiation observed by ground-based instruments below the 2011 Arctic ozone hole, Atmos. Chem. Phys., 13, 10573–10590, https://doi.org/10.5194/acp-13-10573-2013, 2013.
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