Greenland freshwater pathways in the sub-Arctic Seas from model experiments with passive tracers

dc.contributor.author Dukhovskoy, Dmitry S.
dc.contributor.author Myers, Paul G.
dc.contributor.author Platov, Gennady A.
dc.contributor.author Timmermans, Mary-Louise
dc.contributor.author Curry, Beth
dc.contributor.author Proshutinsky, Andrey
dc.contributor.author Bamber, Jonathan L.
dc.contributor.author Chassignet, Eric P.
dc.contributor.author Hu, Xianmin
dc.contributor.author Lee, Craig M.
dc.contributor.author Somavilla, Raquel
dc.date.accessioned 2016-03-31T17:52:09Z
dc.date.available 2016-07-25T07:31:04Z
dc.date.issued 2016-01-25
dc.description Author Posting. © American Geophysical Union, 2016. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Journal of Geophysical Research: Oceans 121 (2016): 877–907, doi:10.1002/2015JC011290. en_US
dc.description.abstract Accelerating since the early 1990s, the Greenland Ice Sheet mass loss exerts a significant impact on thermohaline processes in the sub-Arctic seas. Surplus freshwater discharge from Greenland since the 1990s, comparable in volume to the amount of freshwater present during the Great Salinity Anomaly events, could spread and accumulate in the sub-Arctic seas, influencing convective processes there. However, hydrographic observations in the Labrador Sea and the Nordic Seas, where the Greenland freshening signal might be expected to propagate, do not show a persistent freshening in the upper ocean during last two decades. This raises the question of where the surplus Greenland freshwater has propagated. In order to investigate the fate, pathways, and propagation rate of Greenland meltwater in the sub-Arctic seas, several numerical experiments using a passive tracer to track the spreading of Greenland freshwater have been conducted as a part of the Forum for Arctic Ocean Modeling and Observational Synthesis effort. The models show that Greenland freshwater propagates and accumulates in the sub-Arctic seas, although the models disagree on the amount of tracer propagation into the convective regions. Results highlight the differences in simulated physical mechanisms at play in different models and underscore the continued importance of intercomparison studies. It is estimated that surplus Greenland freshwater flux should have caused a salinity decrease by 0.06–0.08 in the sub-Arctic seas in contradiction with the recently observed salinification (by 0.15–0.2) in the region. It is surmised that the increasing salinity of Atlantic Water has obscured the freshening signal. en_US
dc.description.embargo 2016-07-25 en_US
dc.description.sponsorship NSERC. Grant Numbers RGPIN 227438-09, RGPIN 04357 and RGPCC 433898; RFBR. Grant Number 13-05-00480, 14-05-00730, and 15-05-02457; NSF Grant Number: PLR-0804010, PLR-1313614, and PLR-1203720 en_US
dc.identifier.citation Journal of Geophysical Research: Oceans 121 (2016): 877–907 en_US
dc.identifier.doi 10.1002/2015JC011290
dc.identifier.uri https://hdl.handle.net/1912/7922
dc.language.iso en_US en_US
dc.publisher John Wiley & Sons en_US
dc.relation.uri https://doi.org/10.1002/2015JC011290
dc.subject Greenland Ice Sheet melting en_US
dc.subject Greenland freshwater en_US
dc.subject Thermohaline circulation en_US
dc.subject Nordic Seas en_US
dc.subject Sub-Arctic seas en_US
dc.subject Baffin Bay en_US
dc.subject Labrador Sea en_US
dc.title Greenland freshwater pathways in the sub-Arctic Seas from model experiments with passive tracers en_US
dc.type Article en_US
dspace.entity.type Publication
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