Sea ice volume variability and water temperature in the Greenland Sea

This study explores a link between the long-term variations in the integral sea ice volume (SIV) in the Greenland Sea and oceanic processes. Using the Pan-Arctic Ice Ocean Modeling and Assimilation System (PIOMAS, 1979–2016), we show that the increasing sea ice volume flux through Fram Strait goes i...

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Published in:The Cryosphere
Main Authors: Selyuzhenok, V., Bashmachnikov, I., Ricker, R., Vesman, A., Bobylev, L.
Format: Article in Journal/Newspaper
Language:unknown
Published: 2020
Subjects:
Online Access:https://gfzpublic.gfz-potsdam.de/pubman/item/item_5025530
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spelling ftgfzpotsdam:oai:gfzpublic.gfz-potsdam.de:item_5025530 2024-05-12T07:59:44+00:00 Sea ice volume variability and water temperature in the Greenland Sea Selyuzhenok, V. Bashmachnikov, I. Ricker, R. Vesman, A. Bobylev, L. 2020 https://gfzpublic.gfz-potsdam.de/pubman/item/item_5025530 unknown info:eu-repo/semantics/altIdentifier/doi/10.5194/tc-14-477-2020 https://gfzpublic.gfz-potsdam.de/pubman/item/item_5025530 The Cryosphere info:eu-repo/semantics/article 2020 ftgfzpotsdam https://doi.org/10.5194/tc-14-477-2020 2024-04-17T14:00:21Z This study explores a link between the long-term variations in the integral sea ice volume (SIV) in the Greenland Sea and oceanic processes. Using the Pan-Arctic Ice Ocean Modeling and Assimilation System (PIOMAS, 1979–2016), we show that the increasing sea ice volume flux through Fram Strait goes in parallel with a decrease in SIV in the Greenland Sea. The overall SIV loss in the Greenland Sea is 113 km3 per decade, while the total SIV import through Fram Strait increases by 115 km3 per decade. An analysis of the ocean temperature and the mixed-layer depth (MLD) over the climatic mean area of the winter marginal sea ice zone (MIZ) revealed a doubling of the amount of the upper-ocean heat content available for the sea ice melt from 1993 to 2016. This increase alone can explain the SIV loss in the Greenland Sea over the 24-year study period, even when accounting for the increasing SIV flux from the Arctic. The increase in the oceanic heat content is found to be linked to an increase in temperature of the Atlantic Water along the main currents of the Nordic Seas, following an increase in the oceanic heat flux from the subtropical North Atlantic. We argue that the predominantly positive winter North Atlantic Oscillation (NAO) index during the 4 most recent decades, together with an intensification of the deep convection in the Greenland Sea, is responsible for the intensification of the cyclonic circulation pattern in the Nordic Seas, which results in the observed long-term variations in the SIV. Article in Journal/Newspaper Arctic Fram Strait Greenland Greenland Sea Nordic Seas North Atlantic North Atlantic oscillation Sea ice The Cryosphere GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam) Arctic Greenland The Cryosphere 14 2 477 495
institution Open Polar
collection GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)
op_collection_id ftgfzpotsdam
language unknown
description This study explores a link between the long-term variations in the integral sea ice volume (SIV) in the Greenland Sea and oceanic processes. Using the Pan-Arctic Ice Ocean Modeling and Assimilation System (PIOMAS, 1979–2016), we show that the increasing sea ice volume flux through Fram Strait goes in parallel with a decrease in SIV in the Greenland Sea. The overall SIV loss in the Greenland Sea is 113 km3 per decade, while the total SIV import through Fram Strait increases by 115 km3 per decade. An analysis of the ocean temperature and the mixed-layer depth (MLD) over the climatic mean area of the winter marginal sea ice zone (MIZ) revealed a doubling of the amount of the upper-ocean heat content available for the sea ice melt from 1993 to 2016. This increase alone can explain the SIV loss in the Greenland Sea over the 24-year study period, even when accounting for the increasing SIV flux from the Arctic. The increase in the oceanic heat content is found to be linked to an increase in temperature of the Atlantic Water along the main currents of the Nordic Seas, following an increase in the oceanic heat flux from the subtropical North Atlantic. We argue that the predominantly positive winter North Atlantic Oscillation (NAO) index during the 4 most recent decades, together with an intensification of the deep convection in the Greenland Sea, is responsible for the intensification of the cyclonic circulation pattern in the Nordic Seas, which results in the observed long-term variations in the SIV.
format Article in Journal/Newspaper
author Selyuzhenok, V.
Bashmachnikov, I.
Ricker, R.
Vesman, A.
Bobylev, L.
spellingShingle Selyuzhenok, V.
Bashmachnikov, I.
Ricker, R.
Vesman, A.
Bobylev, L.
Sea ice volume variability and water temperature in the Greenland Sea
author_facet Selyuzhenok, V.
Bashmachnikov, I.
Ricker, R.
Vesman, A.
Bobylev, L.
author_sort Selyuzhenok, V.
title Sea ice volume variability and water temperature in the Greenland Sea
title_short Sea ice volume variability and water temperature in the Greenland Sea
title_full Sea ice volume variability and water temperature in the Greenland Sea
title_fullStr Sea ice volume variability and water temperature in the Greenland Sea
title_full_unstemmed Sea ice volume variability and water temperature in the Greenland Sea
title_sort sea ice volume variability and water temperature in the greenland sea
publishDate 2020
url https://gfzpublic.gfz-potsdam.de/pubman/item/item_5025530
geographic Arctic
Greenland
geographic_facet Arctic
Greenland
genre Arctic
Fram Strait
Greenland
Greenland Sea
Nordic Seas
North Atlantic
North Atlantic oscillation
Sea ice
The Cryosphere
genre_facet Arctic
Fram Strait
Greenland
Greenland Sea
Nordic Seas
North Atlantic
North Atlantic oscillation
Sea ice
The Cryosphere
op_source The Cryosphere
op_relation info:eu-repo/semantics/altIdentifier/doi/10.5194/tc-14-477-2020
https://gfzpublic.gfz-potsdam.de/pubman/item/item_5025530
op_doi https://doi.org/10.5194/tc-14-477-2020
container_title The Cryosphere
container_volume 14
container_issue 2
container_start_page 477
op_container_end_page 495
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