Works matching DE "ICELAND Basin"
Results: 40
Seafloor Surface Sediments of the North Atlantic on the Profile Along 59.5° N.
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- Oceanology (00014370), 2023, v. 63, n. 2, p. 269, doi. 10.1134/S0001437023010101
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Water masses of the northern part of the Iceland Basin in the late Pleistocene.
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- Oceanology (00014370), 2013, v. 53, n. 1, p. 99, doi. 10.1134/S0001437013010128
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Phytoplankton bloom phenomena in the North Atlantic Ocean and Arabian Sea.
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- ICES Journal of Marine Science / Journal du Conseil, 2015, v. 72, n. 6, p. 2021, doi. 10.1093/icesjms/fsu241
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Regulation of the Phytoplankton Heme b Iron Pool During the North Atlantic Spring Bloom.
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- Frontiers in Microbiology, 2019, p. 1, doi. 10.3389/fmicb.2019.01566
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Propagation and Transformation of Upper North Atlantic Deep Water From the Subpolar Gyre to 26.5°N.
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- Journal of Geophysical Research. Oceans, 2023, v. 128, n. 8, p. 1, doi. 10.1029/2023JC019726
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Linking Coherent Anticyclonic Eddies in the Iceland Basin to Decadal Oceanic Variability in the Subpolar North Atlantic.
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- Journal of Geophysical Research. Oceans, 2022, v. 127, n. 5, p. 1, doi. 10.1029/2021JC018046
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Investigation of the Source of Iceland Basin Freshening: Virtual Particle Tracking with Satellite-Derived Geostrophic Surface Velocities.
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- Remote Sensing, 2023, v. 15, n. 24, p. 5711, doi. 10.3390/rs15245711
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Surface factors controlling the volume of accumulated Labrador Sea Water.
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- Ocean Science Discussions, 2023, p. 1, doi. 10.5194/egusphere-2023-1564
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Mixing and air-sea buoyancy fluxes set the time-mean overturning circulation in the subpolar North Atlantic.
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- Ocean Science Discussions, 2022, p. 1, doi. 10.5194/egusphere-2022-1059
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Interannual to decadal sea level variability in the subpolar North Atlantic: The role of propagating signals.
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- Ocean Science Discussions, 2022, p. 1, doi. 10.5194/egusphere-2022-354
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Deep through-flow in the Bight Fracture Zone and its imprint in the Irminger Sea.
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- Ocean Science Discussions, 2022, p. 1, doi. 10.5194/egusphere-2022-248
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Role of air-sea fluxes and ocean surface density on the production of deep waters in the eastern subpolar gyre of the North Atlantic.
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- Ocean Science Discussions, 2021, p. 1, doi. 10.5194/os-2021-48
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An overlooked freshwater source contributed to the extreme freshening event in the eastern subpolar North Atlantic after 2014.
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- Ocean Science Discussions, 2021, p. 1, doi. 10.5194/os-2021-14
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Ocean acidification in the North Atlantic: controlling mechanisms.
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- Biogeosciences Discussions, 2016, v. 13, n. 2, p. 1, doi. 10.5194/bg-2016-66
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Phytoplankton dynamics in contrasting early stage North Atlantic spring blooms: composition, succession, and potential drivers.
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- Biogeosciences Discussions, 2015, v. 12, n. 1, p. 93, doi. 10.5194/bgd-12-93-2015
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Biological Characteristics of the Glacier Lantern Fish Benthosema glaciale (Myctophidae) in Icelandic Waters and the Irminger Sea During Summer.
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- Ecology & Evolution (20457758), 2024, v. 14, n. 10, p. 1, doi. 10.1002/ece3.70386
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Arrival of New Great Salinity Anomaly Weakens Convection in the Irminger Sea.
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- Geophysical Research Letters, 2022, v. 49, n. 11, p. 1, doi. 10.1029/2022GL098857
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Rapid Communication of Upper‐Ocean Salinity Anomaly to Deep Waters of the Iceland Basin Indicates an AMOC Short‐Cut.
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- Geophysical Research Letters, 2022, v. 49, n. 3, p. 1, doi. 10.1029/2021GL097570
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Rapid Freshening of Iceland Scotland Overflow Water Driven by Entrainment of a Major Upper Ocean Salinity Anomaly.
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- Geophysical Research Letters, 2021, v. 48, n. 22, p. 1, doi. 10.1029/2021GL094396
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Atlantic Deep Water Formation Occurs Primarily in the Iceland Basin and Irminger Sea by Local Buoyancy Forcing.
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- Geophysical Research Letters, 2020, v. 47, n. 22, p. 1, doi. 10.1029/2020GL091028
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Direct Observations of Near‐Inertial Wave ζ ‐Refraction in a Dipole Vortex.
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- Geophysical Research Letters, 2020, v. 47, n. 21, p. 1, doi. 10.1029/2020GL090375
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Exceptional 20th Century Ocean Circulation in the Northeast Atlantic.
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- Geophysical Research Letters, 2020, v. 47, n. 10, p. 1, doi. 10.1029/2020GL087577
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A Novel Integration of an Ultraviolet Nitrate Sensor On Board a Towed Vehicle for Mapping Open-Ocean Submesoscale Nitrate Variability.
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- Journal of Atmospheric & Oceanic Technology, 2010, v. 27, n. 8, p. 1410, doi. 10.1175/2010JTECHO780.1
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Iron limitation of the postbloom phytoplankton communities in the Iceland Basin.
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- Global Biogeochemical Cycles, 2009, v. 23, n. 3, p. GB3001, doi. 10.1029/2008GB003410
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Surface factors controlling the volume of accumulated Labrador Sea Water.
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- Ocean Science, 2024, v. 20, n. 2, p. 521, doi. 10.5194/os-20-521-2024
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Mixing and air–sea buoyancy fluxes set the time-mean overturning circulation in the subpolar North Atlantic and Nordic Seas.
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- Ocean Science, 2023, v. 19, n. 3, p. 745, doi. 10.5194/os-19-745-2023
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Interannual to decadal sea level variability in the subpolar North Atlantic: the role of propagating signals.
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- Ocean Science, 2022, v. 18, n. 6, p. 1741, doi. 10.5194/os-18-1741-2022
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Deep through-flow in the Bight Fracture Zone.
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- Ocean Science, 2022, v. 18, n. 4, p. 1055, doi. 10.5194/os-18-1055-2022
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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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- Ocean Science, 2021, v. 17, n. 5, p. 1353, doi. 10.5194/os-17-1353-2021
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Constraints on the applicability of the organic temperature proxies UK0 37, TEX86 and LDI in the subpolar region around Iceland.
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- Biogeosciences, 2015, v. 12, n. 22, p. 6573, doi. 10.5194/bg-12-6573-2015
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Observed acidification trends in North Atlantic water masses.
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- Biogeosciences, 2012, v. 9, n. 12, p. 5217, doi. 10.5194/bg-9-5217-2012
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Structure of the Bottom Boundary Current South of Iceland and Spreading of Deep Waters by Submesoscale Processes.
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- Geophysical Research Letters, 2024, v. 51, n. 5, p. 1, doi. 10.1029/2023GL107508
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Characteristics of the Kinetic Energy Spectra in the Subpolar North Atlantic.
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- Journal of Physical Oceanography, 2024, v. 54, n. 1, p. 29, doi. 10.1175/JPO-D-22-0247.1
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Damping of Inertial Motions through the Radiation of Near-Inertial Waves in a Dipole Vortex in the Iceland Basin.
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- Journal of Physical Oceanography, 2023, v. 53, n. 8, p. 1821, doi. 10.1175/JPO-D-22-0202.1
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Estimates of Near-Inertial Wind Power Input Using Novel In Situ Wind Measurements from Minimet Surface Drifters in the Iceland Basin.
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- Journal of Physical Oceanography, 2022, v. 52, n. 10, p. 2417, doi. 10.1175/JPO-D-21-0283.1
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Variability of the Iceland‐Scotland Overflow Water Transport Through the Charlie‐Gibbs Fracture Zone: Results From an Eddying Simulation and Observations.
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- Journal of Geophysical Research. Oceans, 2018, v. 123, n. 8, p. 5808, doi. 10.1029/2018JC013895
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Structure and Formation of Anticyclonic Eddies in the Iceland Basin.
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- Journal of Geophysical Research. Oceans, 2018, v. 123, n. 8, p. 5341, doi. 10.1029/2018JC013886
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Unciolidae of Deep-Sea Iceland (Amphipoda, Crustacea) †.
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- Diversity (14242818), 2023, v. 15, n. 4, p. 546, doi. 10.3390/d15040546
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Coccolithophore dynamics in non-bloom conditions during late summer in the central Iceland Basin (July-August 2007).
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- Limnology & Oceanography, 2010, v. 55, n. 4, p. 1601, doi. 10.4319/lo.2010.55.4.1601
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Sedimentation of acantharian cysts in the Iceland Basin: Strontium as a ballast for deep ocean particle flux, and implications for acantharian reproductive strategies.
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- Limnology & Oceanography, 2010, v. 55, n. 2, p. 13, doi. 10.4319/lo.2010.55.2.0604
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