Southern Ocean Iceâ€Covered Eddy Properties From Satellite Altimetry

We investigate statistical properties of surface currents as well as coherent mesoscale eddies in the seasonally ice-covered Southern Ocean. Based on a recent regional Sea Level Anomaly satellite altimetry data set, we compute Eddy Kinetic Energy (EKE) and detect mesoscale eddies. EKE is about one o...

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Bibliographic Details
Published in:Journal of Geophysical Research: Oceans
Main Authors: Auger, Matthis, Sallée, Jeanâ€Baptiste, Thompson, Andrew F., Pauthenet, Etienne, Prandi, Pierre
Format: Article in Journal/Newspaper
Language:unknown
Published: American Geophysical Union 2023
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Online Access:https://doi.org/10.1029/2022jc019363
Description
Summary:We investigate statistical properties of surface currents as well as coherent mesoscale eddies in the seasonally ice-covered Southern Ocean. Based on a recent regional Sea Level Anomaly satellite altimetry data set, we compute Eddy Kinetic Energy (EKE) and detect mesoscale eddies. EKE is about one order of magnitude higher in the northern sector of the subpolar basin and over the continental slope, as compared to the middle of the subpolar gyres. An eddy detection methodology reveals that eddies are distributed evenly in the subpolar Southern Ocean, and their amplitude follows the spatial pattern of EKE. In addition to regional circulation variations, sea ice concentration arises as an important driver of eddy properties. Eddies have low amplitude and density in the pack ice, in particular in the middle of the gyres where the background circulation is unfavorable for instabilities. In contrast, the northern part of the Marginal Ice Zone is favorable for mesoscale eddies, especially cyclonic. There, eddies are stronger and their density is higher than in any other region of the ice-covered or ice-free subpolar Southern Ocean. This region is expected to be a site of frontogenesis due to sea ice melt and upwelling generated from interactions between the wind and the sea ice. While many mesoscale eddies will fall below detection level due to the small Rossby radius at high latitudes, these results contribute to understanding the interactions between mesoscale eddies, sea ice, and the background circulation in the subpolar region. © 2023. The Authors. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. M.A. and J.-B.S. have received funding from the European Union's Horizon 2020 research and innovation program under grant agreement N°821001. M.A. was funded through a CNES/CLS scholarship. Data Availability Statement. The Sea Level Anomaly data used in this study are ...