Arctic freshwater export: Status, mechanisms, and prospects

Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s compared to 1980–2000, with an extra ≈5000km3 — about 25% — being stored. The sources of freshwater to the Arctic from precipitation and runoff...

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Published inGlobal and planetary change Vol. 125; no. C; pp. 13 - 35
Main Authors Haine, Thomas W.N., Curry, Beth, Gerdes, Rüdiger, Hansen, Edmond, Karcher, Michael, Lee, Craig, Rudels, Bert, Spreen, Gunnar, de Steur, Laura, Stewart, Kial D., Woodgate, Rebecca
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.02.2015
Elsevier
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Abstract Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s compared to 1980–2000, with an extra ≈5000km3 — about 25% — being stored. The sources of freshwater to the Arctic from precipitation and runoff have increased between these periods (most of the evidence comes from models). Despite flux increases from 2001 to 2011, it is uncertain if the marine freshwater source through Bering Strait for the 2000s has changed, as observations in the 1980s and 1990s are incomplete. The marine freshwater fluxes draining the Arctic through Fram and Davis straits are also insignificantly different. In this way, the balance of sources and sinks of freshwater to the Arctic, Canadian Arctic Archipelago (CAA), and Baffin Bay shifted to about 1200±730km3yr−1 freshening the region, on average, during the 2000s. The observed accumulation of liquid freshwater is consistent with this increased supply and the loss of freshwater from sea ice. Coupled climate models project continued freshening of the Arctic during the 21st century, with a total gain of about 50,000km3 for the Arctic, CAA, and Baffin Bay (an increase of about 50%) by 2100. Understanding of the mechanisms controlling freshwater emphasizes the importance of Arctic surface winds, in addition to the sources of freshwater. The wind can modify the storage, release, and pathways of freshwater on timescales of O(1–10) months. Discharges of excess freshwater through Fram or Davis straits appear possible, triggered by changes in the wind, but are hard to predict. Continued measurement of the fluxes and storage of freshwater is needed to observe changes such as these. •Unprecedented volumes of freshwater have accumulated in the Arctic Ocean since 2000.•Models suggest that the extra freshwater derives from increased precipitation and runoff, and a smaller volume of sea ice.•The net export flux of Arctic freshwater to the North Atlantic Ocean has not changed significantly in the last decade.•Climate projections suggest increased inflow, storage, and outflow of freshwater to the Arctic in the 21st century.•It is possible that large freshwater discharges to the Atlantic could occur, triggered by changes in Arctic winds.
AbstractList Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s compared to 1980-2000, with an extra approximately 5000km3 - about 25% - being stored. The sources of freshwater to the Arctic from precipitation and runoff have increased between these periods (most of the evidence comes from models). Despite flux increases from 2001 to 2011, it is uncertain if the marine freshwater source through Bering Strait for the 2000s has changed, as observations in the 1980s and 1990s are incomplete. The marine freshwater fluxes draining the Arctic through Fram and Davis straits are also insignificantly different. In this way, the balance of sources and sinks of freshwater to the Arctic, Canadian Arctic Archipelago (CAA), and Baffin Bay shifted to about 1200 plus or minus 730km3 yr-1 freshening the region, on average, during the 2000s. The observed accumulation of liquid freshwater is consistent with this increased supply and the loss of freshwater from sea ice. Coupled climate models project continued freshening of the Arctic during the 21st century, with a total gain of about 50,000km3 for the Arctic, CAA, and Baffin Bay (an increase of about 50%) by 2100. Understanding of the mechanisms controlling freshwater emphasizes the importance of Arctic surface winds, in addition to the sources of freshwater. The wind can modify the storage, release, and pathways of freshwater on timescales of O(1-10) months. Discharges of excess freshwater through Fram or Davis straits appear possible, triggered by changes in the wind, but are hard to predict. Continued measurement of the fluxes and storage of freshwater is needed to observe changes such as these.
Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s compared to 1980–2000, with an extra ≈5000km3 — about 25% — being stored. The sources of freshwater to the Arctic from precipitation and runoff have increased between these periods (most of the evidence comes from models). Despite flux increases from 2001 to 2011, it is uncertain if the marine freshwater source through Bering Strait for the 2000s has changed, as observations in the 1980s and 1990s are incomplete. The marine freshwater fluxes draining the Arctic through Fram and Davis straits are also insignificantly different. In this way, the balance of sources and sinks of freshwater to the Arctic, Canadian Arctic Archipelago (CAA), and Baffin Bay shifted to about 1200±730km3yr−1 freshening the region, on average, during the 2000s. The observed accumulation of liquid freshwater is consistent with this increased supply and the loss of freshwater from sea ice. Coupled climate models project continued freshening of the Arctic during the 21st century, with a total gain of about 50,000km3 for the Arctic, CAA, and Baffin Bay (an increase of about 50%) by 2100. Understanding of the mechanisms controlling freshwater emphasizes the importance of Arctic surface winds, in addition to the sources of freshwater. The wind can modify the storage, release, and pathways of freshwater on timescales of O(1–10) months. Discharges of excess freshwater through Fram or Davis straits appear possible, triggered by changes in the wind, but are hard to predict. Continued measurement of the fluxes and storage of freshwater is needed to observe changes such as these.
Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s compared to 1980–2000, with an extra ≈5000km3 — about 25% — being stored. The sources of freshwater to the Arctic from precipitation and runoff have increased between these periods (most of the evidence comes from models). Despite flux increases from 2001 to 2011, it is uncertain if the marine freshwater source through Bering Strait for the 2000s has changed, as observations in the 1980s and 1990s are incomplete. The marine freshwater fluxes draining the Arctic through Fram and Davis straits are also insignificantly different. In this way, the balance of sources and sinks of freshwater to the Arctic, Canadian Arctic Archipelago (CAA), and Baffin Bay shifted to about 1200±730km3yr−1 freshening the region, on average, during the 2000s. The observed accumulation of liquid freshwater is consistent with this increased supply and the loss of freshwater from sea ice. Coupled climate models project continued freshening of the Arctic during the 21st century, with a total gain of about 50,000km3 for the Arctic, CAA, and Baffin Bay (an increase of about 50%) by 2100. Understanding of the mechanisms controlling freshwater emphasizes the importance of Arctic surface winds, in addition to the sources of freshwater. The wind can modify the storage, release, and pathways of freshwater on timescales of O(1–10) months. Discharges of excess freshwater through Fram or Davis straits appear possible, triggered by changes in the wind, but are hard to predict. Continued measurement of the fluxes and storage of freshwater is needed to observe changes such as these. •Unprecedented volumes of freshwater have accumulated in the Arctic Ocean since 2000.•Models suggest that the extra freshwater derives from increased precipitation and runoff, and a smaller volume of sea ice.•The net export flux of Arctic freshwater to the North Atlantic Ocean has not changed significantly in the last decade.•Climate projections suggest increased inflow, storage, and outflow of freshwater to the Arctic in the 21st century.•It is possible that large freshwater discharges to the Atlantic could occur, triggered by changes in Arctic winds.
Author Stewart, Kial D.
Gerdes, Rüdiger
Haine, Thomas W.N.
Hansen, Edmond
Karcher, Michael
Curry, Beth
Lee, Craig
Spreen, Gunnar
de Steur, Laura
Woodgate, Rebecca
Rudels, Bert
Author_xml – sequence: 1
  givenname: Thomas W.N.
  surname: Haine
  fullname: Haine, Thomas W.N.
  email: Thomas.Haine@jhu.edu
  organization: Earth & Planetary Sciences, The Johns Hopkins University, Baltimore, MD, USA
– sequence: 2
  givenname: Beth
  surname: Curry
  fullname: Curry, Beth
  organization: Applied Physics Laboratory, University of Washington, WA, USA
– sequence: 3
  givenname: Rüdiger
  surname: Gerdes
  fullname: Gerdes, Rüdiger
  organization: Alfred Wegener Institute for Polar and Marine Research, Bremerhaven, Germany
– sequence: 4
  givenname: Edmond
  surname: Hansen
  fullname: Hansen, Edmond
  organization: Norwegian Polar Institute, Fram Centre, Tromsø, Norway
– sequence: 5
  givenname: Michael
  surname: Karcher
  fullname: Karcher, Michael
  organization: Alfred Wegener Institute for Polar and Marine Research, Bremerhaven, Germany
– sequence: 6
  givenname: Craig
  surname: Lee
  fullname: Lee, Craig
  organization: Applied Physics Laboratory, University of Washington, WA, USA
– sequence: 7
  givenname: Bert
  surname: Rudels
  fullname: Rudels, Bert
  organization: Finnish Meteorological Institute, Helsinki, Finland
– sequence: 8
  givenname: Gunnar
  surname: Spreen
  fullname: Spreen, Gunnar
  organization: Norwegian Polar Institute, Fram Centre, Tromsø, Norway
– sequence: 9
  givenname: Laura
  surname: de Steur
  fullname: de Steur, Laura
  organization: Norwegian Polar Institute, Fram Centre, Tromsø, Norway
– sequence: 10
  givenname: Kial D.
  surname: Stewart
  fullname: Stewart, Kial D.
  organization: Climate Change Research Centre, University of New South Wales, Sydney, Australia
– sequence: 11
  givenname: Rebecca
  surname: Woodgate
  fullname: Woodgate, Rebecca
  organization: Applied Physics Laboratory, University of Washington, WA, USA
BackLink https://www.osti.gov/biblio/1360841$$D View this record in Osti.gov
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Snippet Large freshwater anomalies clearly exist in the Arctic Ocean. For example, liquid freshwater has accumulated in the Beaufort Gyre in the decade of the 2000s...
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SubjectTerms Arctic Ocean
Arctic region
Arctic regions
Brackish
climate change
climate models
Drainage
Fluxes
freshwater
Freshwaters
hydrological cycle
ice
International trade
Liquids
Marine
oceanography
runoff
Straits
Surface wind
wind
Title Arctic freshwater export: Status, mechanisms, and prospects
URI https://dx.doi.org/10.1016/j.gloplacha.2014.11.013
https://www.proquest.com/docview/1668245406
https://www.proquest.com/docview/1677903808
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https://www.osti.gov/biblio/1360841
Volume 125
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