Emergence of deep convection in the Arctic Ocean under a warming climate

The appearance of winter deep mixed layers in the Arctic Ocean under a warming climate is investigated with the HiGEM coupled global climate model. In response to a four times increase of atmospheric CO2 levels with respect to present day conditions, the Arctic Basin becomes seasonally ice-free. Its...

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Published in:Climate Dynamics
Main Authors: Lique, C, Johnson, H, Plancherel, Y
Format: Article in Journal/Newspaper
Language:unknown
Published: Springer Berlin Heidelberg 2017
Subjects:
Online Access:https://doi.org/10.1007/s00382-017-3849-9
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spelling ftuloxford:oai:ora.ox.ac.uk:uuid:4323d935-ef9f-4311-9a2e-40accdc01bef 2023-05-15T14:29:15+02:00 Emergence of deep convection in the Arctic Ocean under a warming climate Lique, C Johnson, H Plancherel, Y 2017-09-06 https://doi.org/10.1007/s00382-017-3849-9 https://ora.ox.ac.uk/objects/uuid:4323d935-ef9f-4311-9a2e-40accdc01bef unknown Springer Berlin Heidelberg doi:10.1007/s00382-017-3849-9 https://ora.ox.ac.uk/objects/uuid:4323d935-ef9f-4311-9a2e-40accdc01bef https://doi.org/10.1007/s00382-017-3849-9 info:eu-repo/semantics/openAccess Journal article 2017 ftuloxford https://doi.org/10.1007/s00382-017-3849-9 2022-06-28T20:10:50Z The appearance of winter deep mixed layers in the Arctic Ocean under a warming climate is investigated with the HiGEM coupled global climate model. In response to a four times increase of atmospheric CO2 levels with respect to present day conditions, the Arctic Basin becomes seasonally ice-free. Its surface becomes consequently warmer and, on average, slightly fresher. Locally, changes in surface salinity can be far larger (up to 4 psu) than the basin-scale average, and of a different sign. The Canadian Basin undergoes a strong freshening, while the Eurasian Basin undergoes strong salinification. These changes are driven by the spin up of the surface circulation, likely resulting from the increased transfer of momentum to the ocean as sea ice cover is reduced. Changes in the surface salinity field also result in a change in stratification, which is strongly enhanced in the Canadian Basin and reduced in the Eurasian Basin. Reduction, or even suppression, of the stratification in the Eurasian Basin produces an environment that is favourable for, and promotes the appearance of, deep convection near the sea ice edge, leading to a significant deepening of winter mixed layers in this region (down to 1000 m). As the Arctic Ocean is transitioning toward a summer ice-free regime, new dynamical ocean processes will appear in the region, with potentially important consequences for the Arctic Ocean itself and for climate, both locally and on larger scales. Article in Journal/Newspaper Arctic Basin Arctic Arctic Ocean Sea ice ORA - Oxford University Research Archive Arctic Arctic Ocean Climate Dynamics 50 9-10 3833 3847
institution Open Polar
collection ORA - Oxford University Research Archive
op_collection_id ftuloxford
language unknown
description The appearance of winter deep mixed layers in the Arctic Ocean under a warming climate is investigated with the HiGEM coupled global climate model. In response to a four times increase of atmospheric CO2 levels with respect to present day conditions, the Arctic Basin becomes seasonally ice-free. Its surface becomes consequently warmer and, on average, slightly fresher. Locally, changes in surface salinity can be far larger (up to 4 psu) than the basin-scale average, and of a different sign. The Canadian Basin undergoes a strong freshening, while the Eurasian Basin undergoes strong salinification. These changes are driven by the spin up of the surface circulation, likely resulting from the increased transfer of momentum to the ocean as sea ice cover is reduced. Changes in the surface salinity field also result in a change in stratification, which is strongly enhanced in the Canadian Basin and reduced in the Eurasian Basin. Reduction, or even suppression, of the stratification in the Eurasian Basin produces an environment that is favourable for, and promotes the appearance of, deep convection near the sea ice edge, leading to a significant deepening of winter mixed layers in this region (down to 1000 m). As the Arctic Ocean is transitioning toward a summer ice-free regime, new dynamical ocean processes will appear in the region, with potentially important consequences for the Arctic Ocean itself and for climate, both locally and on larger scales.
format Article in Journal/Newspaper
author Lique, C
Johnson, H
Plancherel, Y
spellingShingle Lique, C
Johnson, H
Plancherel, Y
Emergence of deep convection in the Arctic Ocean under a warming climate
author_facet Lique, C
Johnson, H
Plancherel, Y
author_sort Lique, C
title Emergence of deep convection in the Arctic Ocean under a warming climate
title_short Emergence of deep convection in the Arctic Ocean under a warming climate
title_full Emergence of deep convection in the Arctic Ocean under a warming climate
title_fullStr Emergence of deep convection in the Arctic Ocean under a warming climate
title_full_unstemmed Emergence of deep convection in the Arctic Ocean under a warming climate
title_sort emergence of deep convection in the arctic ocean under a warming climate
publisher Springer Berlin Heidelberg
publishDate 2017
url https://doi.org/10.1007/s00382-017-3849-9
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geographic Arctic
Arctic Ocean
geographic_facet Arctic
Arctic Ocean
genre Arctic Basin
Arctic
Arctic Ocean
Sea ice
genre_facet Arctic Basin
Arctic
Arctic Ocean
Sea ice
op_relation doi:10.1007/s00382-017-3849-9
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op_rights info:eu-repo/semantics/openAccess
op_doi https://doi.org/10.1007/s00382-017-3849-9
container_title Climate Dynamics
container_volume 50
container_issue 9-10
container_start_page 3833
op_container_end_page 3847
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