Spectral albedo of seasonal snow during intensive melt period at Sodankylä, beyond the Arctic Circle
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Published:2013-04-10
Issue:7
Volume:13
Page:3793-3810
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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:
Meinander O.,Kazadzis S.,Arola A.,Riihelä A.,Räisänen P.,Kivi R.,Kontu A.,Kouznetsov R.,Sofiev M.,Svensson J.,Suokanerva H.,Aaltonen V.,Manninen T.,Roujean J.-L.,Hautecoeur O.
Abstract
Abstract. We have measured spectral albedo, as well as ancillary parameters, of seasonal European Arctic snow at Sodankylä, Finland (67°22' N, 26°39' E). The springtime intensive melt period was observed during the Snow Reflectance Transition Experiment (SNORTEX) in April 2009. The upwelling and downwelling spectral irradiance, measured at 290–550 nm with a double monochromator spectroradiometer, revealed albedo values of ~0.5–0.7 for the ultraviolet and visible range, both under clear sky and variable cloudiness. During the most intensive snowmelt period of four days, albedo decreased from 0.65 to 0.45 at 330 nm, and from 0.72 to 0.53 at 450 nm. In the literature, the UV and VIS albedo for clean snow are ~0.97–0.99, consistent with the extremely small absorption coefficient of ice in this spectral region. Our low albedo values were supported by two independent simultaneous broadband albedo measurements, and simulated albedo data. We explain the low albedo values to be due to (i) large snow grain sizes up to ~3 mm in diameter; (ii) meltwater surrounding the grains and increasing the effective grain size; (iii) absorption caused by impurities in the snow, with concentration of elemental carbon (black carbon) in snow of 87 ppb, and organic carbon 2894 ppb, at the time of albedo measurements. The high concentrations of carbon, detected by the thermal–optical method, were due to air masses originating from the Kola Peninsula, Russia, where mining and refining industries are located.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference65 articles.
1. Aamaas, B., Bøggild, C. E., Stordal, F., Berntsen, T., Holmén K., and Ström, J.: Elemental carbon deposition to Svalbard snow from Norwegian settlements and long-range transport, Tellus, 63B, 340–351, https://doi.org/10.1111/j.1600-0889.2011.00531.x, 2011. 2. Arola, A., Kaurola, J., Koskinen, L., Tanskanen, A., Tikkanen, T., Taalas, P., Herman, J. R., Krotkov, N., and Fioletov, V.: A new approach to estimating the albedo for snow-covered surfaces in the satellite UV method, J. Geophys. Res., 108, 4531, https://doi.org/10.1029/2003JD003492, 2003. 3. Bernhard, G. and Seckmeyer, G.: Uncertainty of measurements of spectral solar UV irradiance, J. Geophys. Res., 104, 14321–14345, 1999. 4. Bernhard, G., Booth, C. R., Ehramjian, J. C., Stone, R., and Dutton, E. G.: Ultraviolet and visible radiation at Barrow, Alaska: Climatology and influencing factors on the basis of version 2 National Science Foundation network data, J. Geophys. Res., 112, D09101, https://doi.org/10.1029/2006JD007865, 2007. 5. Birch, M. E.: Diesel Particulate Matter (as Elemental carbon) Method 5040, in NIOSH Manual of Analytical Methods, National Institute of Occupational Safety and Health, Cincinnati, Ohio, 2003.
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