Cloud Properties and Boundary Layer Stability Above Southern Ocean Sea Ice and Coastal Antarctica

Author:

Knight C. L.12ORCID,Mallet M. D.2ORCID,Alexander S. P.23ORCID,Fraser A. D.2ORCID,Protat A.24ORCID,McFarquhar G. M.56ORCID

Affiliation:

1. Institute for Marine and Antarctic Studies University of Tasmania Hobart TAS Australia

2. Australian Antarctic Program Partnership Institute for Marine and Antarctic Studies University of Tasmania Hobart TAS Australia

3. Australian Antarctic Division Kingston TAS Australia

4. Australian Bureau of Meteorology Melbourne VIC Australia

5. Cooperative Institute for Severe and High‐Impact Weather Research and Operations University of Oklahoma Norman OK USA

6. School of Meteorology University of Oklahoma Norman OK USA

Abstract

AbstractSignificant variability in climate predictions originates from the simulated cloud cover over the Southern Ocean. Historically, Southern Ocean cloud and aerosol properties have been less studied than their northern hemisphere counterparts, and cloud‐sea‐ice interactions over the Southern Ocean also remain largely unexamined. We used data from combined radar, lidar, radiometer, radiosonde, and ERA5 reanalysis profiles to investigate cloud property relationships to cloud temperature, sea‐ice concentration, and boundary layer stability. Our findings show correlations between both cloud macrophysical properties and radiative effects and sea‐ice concentration, and that the marine atmospheric boundary layer is more stable over higher sea‐ice concentrations. Mixed‐phase cloud frequency of occurrence was highest over the sea‐ice zone at 15%, three times higher than over cold water south of the Antarctic Polar Front. For temperatures greater than −15°C, low‐level, single‐layer clouds were more likely to precipitate ice if they were coupled to cold‐water or sea‐ice surfaces than if they were decoupled from these surfaces, with the highest percentage of clouds precipitating ice observed over sea ice. These findings suggest a surface source of ice‐nucleating particles at high southern latitudes that increases cloud glaciation probability. We discuss the implications of our results for future studies into the relationship between cloud properties, aerosols, sea ice, and boundary layer stability at high latitudes over the Southern Ocean.

Publisher

American Geophysical Union (AGU)

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