Evolution of the microstructure and reflectance of the surface scattering layer on melting, level Arctic sea ice

Author:

Macfarlane Amy R.1,Dadic Ruzica12,Smith Madison M.3,Light Bonnie3,Nicolaus Marcel4,Henna-Reetta Hannula5,Webster Melinda6,Linhardt Felix7,Hämmerle Stefan8,Schneebeli Martin1

Affiliation:

1. 1WSL Institute for Snow and Avalanche Research, Davos Dorf, Switzerland

2. 2University of Wellington, Kelburn, Wellington, New Zealand

3. 3Polar Science Center, Applied Physics Laboratory, University of Washington, Seattle, WA, USA

4. 4Alfred-Wegener-Institut, Helmholtz-Zentrum für Polar- und Meeresforschung, Bremerhaven, Germany

5. 5Finnish Meteorological Institute, Helsinki, Finland

6. 6Geophysical Institute, University of Alaska Fairbanks, Fairbanks, AK, USA

7. 7Kiel University, Kiel, Germany

8. 8SCANCO Medical AG, Wangen-Brüttisellen, Switzerland

Abstract

The microstructure of the uppermost portions of a melting Arctic sea ice cover has a disproportionately large influence on how incident sunlight is reflected and absorbed in the ice/ocean system. The surface scattering layer (SSL) effectively backscatters solar radiation and keeps the surface albedo of melting ice relatively high compared to ice with the SSL manually removed. Measurements of albedo provide information on how incoming shortwave radiation is partitioned by the SSL and have been pivotal to improving climate model parameterizations. However, the relationship between the physical and optical properties of the SSL is still poorly constrained. Until now, radiative transfer models have been the only way to infer the microstructure of the SSL. During the MOSAiC expedition of 2019–2020, we took samples and, for the first time, directly measured the microstructure of the SSL on bare sea ice using X-ray micro-computed tomography. We show that the SSL has a highly anisotropic, coarse, and porous structure, with a small optical diameter and density at the surface, increasing with depth. As the melting surface ablates, the SSL regenerates, maintaining some aspects of its microstructure throughout the melt season. We used the microstructure measurements with a radiative transfer model to improve our understanding of the relationship between physical properties and optical properties at 850 nm wavelength. When the microstructure is used as model input, we see a 10–15% overestimation of the reflectance at 850 nm. This comparison suggests that either a) spatial variability at the meter scale is important for the two in situ optical measurements and therefore a larger sample size is needed to represent the microstructure or b) future work should investigate either i) using a ray-tracing approach instead of explicitly solving the radiative transfer equation or ii) using a more appropriate radiative transfer model.

Publisher

University of California Press

Subject

Atmospheric Science,Geology,Geotechnical Engineering and Engineering Geology,Ecology,Environmental Engineering,Oceanography

Reference65 articles.

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2. Cole, DM, Shapiro, LH.1998. Observations of brine drainage networks and microstructure of first-year sea ice. Journal of Geophysical Research: Oceans103(C10): 21739–21750. DOI: http://dx.doi.org/10.1029/98JC01264.

3. Surface albedo feedbacks from climate variability and change;Journal of Geophysical Research: Atmosphere,2013

4. Effects of bubbles, cracks, and volcanic tephra on the spectral albedo of bare ice near the Transantarctic Mountains: Implications for sea glaciers on Snowball Earth;Journal of Geophysical Research: Earth Surface,2013

5. The physics of premelted ice and its geophysical consequences;Reviews of Modern Physics,2006

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