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December 2013 |
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August 2017 |
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February 2017 |
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July 2013 |
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April 2011 |
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February 2013 |
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September 2022 |
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January 2008 |
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Absolute velocity along the AR7W section in the Labrador Sea
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February 2013 |
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Software tools for pre- and post-processing of oceanic regional simulations
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May 2008 |
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The North Atlantic subpolar circulation in an eddy-resolving global ocean model
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February 2015 |
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Rescaled height coordinates for accurate representation of free-surface flows in ocean circulation models
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January 2004 |
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The regional oceanic modeling system (ROMS): a split-explicit, free-surface, topography-following-coordinate oceanic model
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January 2005 |
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On methods for solving the oceanic equations of motion in generalized vertical coordinates
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January 2006 |
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Two-way nesting in split-explicit ocean models: Algorithms, implementation and validation
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June 2012 |
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Improvements of simulated Western North Atlantic current system and impacts on the AMOC
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April 2014 |
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Observations of the Labrador Sea eddy field
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October 2003 |
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May 2007 |
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Convection and restratification in the Labrador Sea, 1990–2000
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October 2002 |
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Enhanced production of Labrador Sea Water in 2008
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January 2009 |
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Multidecadal variability of the North Brazil Current and its connection to the Atlantic meridional overturning circulation
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January 2011 |
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Ocean heat uptake and its consequences for the magnitude of sea level rise and climate change: OCEAN HEAT UPTAKE AND ITS CONSEQUENCES
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September 2012 |
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Stability of the Atlantic meridional overturning circulation: A model intercomparison
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October 2012 |
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The interannual variability of potential temperature in the central Labrador Sea
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October 2012 |
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CMIP6 Models Predict Significant 21st Century Decline of the Atlantic Meridional Overturning Circulation
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June 2020 |
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The Community Earth System Model Version 2 (CESM2)
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February 2020 |
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Oceanic vertical mixing: A review and a model with a nonlocal boundary layer parameterization
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January 1994 |
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Open-ocean convection: Observations, theory, and models
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February 1999 |
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Oceanic transport of subpolar climate signals to mid-depth subtropical waters
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February 1998 |
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Exceptional twentieth-century slowdown in Atlantic Ocean overturning circulation
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March 2015 |
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Oceanic transport of surface meltwater from the southern Greenland ice sheet
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April 2016 |
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Emerging impact of Greenland meltwater on deepwater formation in the North Atlantic Ocean
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June 2016 |
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Robust learning from noisy, incomplete, high-dimensional experimental data via physically constrained symbolic regression
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May 2021 |
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Future climate change shaped by inter-model differences in Atlantic meridional overturning circulation response
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June 2021 |
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Stratification constrains future heat and carbon uptake in the Southern Ocean between 30°S and 55°S
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January 2022 |
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Observed fingerprint of a weakening Atlantic Ocean overturning circulation
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April 2018 |
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Submesoscale modulation of deep water formation in the Labrador Sea
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October 2020 |
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Oceanographic conditions at Ocean Weather Ship Bravo , 1964–1974
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September 1980 |
Ventilation variability of Labrador Sea Water and its impact on oxygen and anthropogenic carbon: a review
- Rhein, Monika; Steinfeldt, Reiner; Kieke, Dagmar
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Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, Vol. 375, Issue 2102
https://doi.org/10.1098/rsta.2016.0321
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August 2017 |
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An outsized role for the Labrador Sea in the multidecadal variability of the Atlantic overturning circulation
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October 2021 |
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Dilution of the Northern North Atlantic Ocean in Recent Decades
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June 2005 |
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Global Sea Floor Topography from Satellite Altimetry and Ship Depth Soundings
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September 1997 |
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A sea change in our view of overturning in the subpolar North Atlantic
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January 2019 |
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Mechanism of Interannual to Decadal Variability of the North Atlantic Circulation
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May 2001 |
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Distribution and Circulation of Labrador Sea Water
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November 1982 |
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Hydrography of the Labrador Sea during Active Convection
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February 2002 |
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Labrador Sea Boundary Currents and the Fate of the Irminger Sea Water
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February 2002 |
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Increased Runoff from Melt from the Greenland Ice Sheet: A Response to Global Warming
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January 2008 |
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A Reanalysis of Ocean Climate Using Simple Ocean Data Assimilation (SODA)
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August 2008 |
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Eddy Formation near the West Coast of Greenland
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September 2008 |
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Atlantic Meridional Overturning Circulation (AMOC) in CMIP5 Models: RCP and Historical Simulations
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September 2013 |
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The Origins of Late-Twentieth-Century Variations in the Large-Scale North Atlantic Circulation
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May 2014 |
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The North Atlantic Subpolar Gyre in Four High-Resolution Models
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May 2005 |
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GFDL’s ESM2 Global Coupled Climate–Carbon Earth System Models. Part I: Physical Formulation and Baseline Simulation Characteristics
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October 2012 |
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GFDL’s ESM2 Global Coupled Climate–Carbon Earth System Models. Part II: Carbon System Formulation and Baseline Simulation Characteristics
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April 2013 |
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Twentieth-Century Oceanic Carbon Uptake and Storage in CESM1(BGC)
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September 2013 |
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Marine Ecosystem Dynamics and Biogeochemical Cycling in the Community Earth System Model [CESM1(BGC)]: Comparison of the 1990s with the 2090s under the RCP4.5 and RCP8.5 Scenarios
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December 2013 |
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The Seasonality of Convective Events in the Labrador Sea
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August 2014 |
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Local and Downstream Relationships between Labrador Sea Water Volume and North Atlantic Meridional Overturning Circulation Variability
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July 2019 |
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Heat and Freshwater Transport through the Central Labrador Sea*
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April 2006 |
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Modulation of the North Atlantic deoxygenation by the slowdown of the nutrient stream
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January 2020 |
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The Canadian Earth System Model version 5 (CanESM5.0.3)
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January 2019 |
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Wind-driven transport of fresh shelf water into the upper 30 m of the Labrador Sea
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January 2018 |
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Role of air–sea fluxes and ocean surface density in the production of deep waters in the eastern subpolar gyre of the North Atlantic
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October 2021 |
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On the ocean's response to enhanced Greenland runoff in model experiments: relevance of mesoscale dynamics and atmospheric coupling
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February 2023 |
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Estimating the Greenland ice sheet surface mass balance contribution to future sea level rise using the regional atmospheric climate model MAR
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January 2013 |