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Validation of the coupled physical–biogeochemical ocean model NEMO–SCOBI for the North Sea–Baltic Sea system.
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- Biogeosciences, 2024, v. 21, n. 8, p. 2087, doi. 10.5194/bg-21-2087-2024
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Observations of strong turbulence and mixing impacting water exchange between two basins in the Baltic Sea.
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- Ocean Science, 2023, v. 19, n. 6, p. 1809, doi. 10.5194/os-19-1809-2023
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WHY WE MUST THINK ABOUT CLIMATE CHANGE WHEN PLANNING HOW TO USE OUR SEAS.
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- Frontiers for Young Minds, 2023, p. 1, doi. 10.3389/frym.2023.1029011
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Validation of the coupled physical-biogeochemical ocean model NEMO-SCOBI for the North Sea-Baltic Sea system.
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- Biogeosciences Discussions, 2023, p. 1, doi. 10.5194/bg-2023-116
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Observations of strong turbulence and mixing impacting water exchange between two basins in the Baltic Sea.
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- Ocean Science Discussions, 2023, p. 1, doi. 10.5194/egusphere-2023-920
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Potential and Limitations of a Commercial Broadband Echo Sounder for Remote Observations of Turbulent Mixing.
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- Journal of Atmospheric & Oceanic Technology, 2022, v. 39, n. 12, p. 1985, doi. 10.1175/JTECH-D-21-0169.1
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Projected climate change impact on a coastal sea—As significant as all current pressures combined.
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- Global Change Biology, 2022, v. 28, n. 17, p. 5310, doi. 10.1111/gcb.16312
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In situ observations of turbulent ship wakes and their spatiotemporal extent.
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- Ocean Science, 2021, v. 17, n. 5, p. 1285, doi. 10.5194/os-17-1285-2021
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Turbulence in a small boreal lake: Consequences for air--water gas exchange.
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- Limnology & Oceanography, 2021, v. 66, n. 3, p. 827, doi. 10.1002/lno.11645
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In situ observations of turbulent ship wakes and their potential implications for vertical mixing.
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- Ocean Science Discussions, 2020, p. 1, doi. 10.5194/os-2020-59
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Extreme sea levels in the Baltic Sea under climate change scenarios – Part 1: Model validation and sensitivity.
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- Ocean Science, 2019, v. 15, n. 6, p. 1399, doi. 10.5194/os-15-1399-2019
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Extreme Sea Levels in the Baltic Sea under Climate Change Scenarios. Part 1: Model Validation and Sensitivity.
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- Ocean Science Discussions, 2019, p. 1, doi. 10.5194/os-2019-65
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Nitrate and ammonium fluxes to diatoms and dinoflagellates at a single cell level in mixed field communities in the sea.
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- Scientific Reports, 2019, v. 9, n. 1, p. 1, doi. 10.1038/s41598-018-38059-4
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Modelling discrete and diffuse pollution sources within the Gulf of Bothnia using passive tracers and NEMO.
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- Geophysical Research Abstracts, 2019, v. 21, p. 1
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Turbulence in a small arctic pond.
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- Limnology & Oceanography, 2018, v. 63, n. 6, p. 2337, doi. 10.1002/lno.10941
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Estimating air-water gas transfer velocity during low wind condition with and without buoyancy.
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- Geophysical Research Abstracts, 2018, v. 20, p. 1383
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Extreme Sea Levels in the Baltic Sea in Climate Change Scenarios.
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- Geophysical Research Abstracts, 2018, v. 20, p. 4356
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Tidal Energy Loss, Internal Tide Radiation, and Local Dissipation for Two-Layer Tidal Flow over a Sill.
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- Journal of Physical Oceanography, 2017, v. 47, n. 7, p. 1521, doi. 10.1175/JPO-D-16-0148.1
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Comment on 'Influence of sea level rise on the dynamics of salt inflows in the Baltic Sea' by R. Hordoir, L. Axell, U. Löptien, H. Dietze, and I. Kuznetsov.
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- Journal of Geophysical Research. Oceans, 2016, v. 121, n. 3, p. 2035, doi. 10.1002/2015JC011451
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An evaluation of gas transfer velocity parameterizations during natural convection using DNS.
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- Journal of Geophysical Research. Oceans, 2016, v. 121, n. 2, p. 1400, doi. 10.1002/2015JC011112
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Observations of Turbulence Caused by a Combination of Tides and Mean Baroclinic Flow over a Fjord Sill.
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- Journal of Physical Oceanography, 2015, v. 45, n. 2, p. 355, doi. 10.1175/JPO-D-13-0200.1
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Entrainment in Shallow Rotating Gravity Currents: A Modeling Study.
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- Journal of Physical Oceanography, 2010, v. 40, n. 8, p. 1819, doi. 10.1175/2010JPO4367.1
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Dynamics of Rotating Shallow Gravity Currents Passing through a Channel. Part I: Observation of Transverse Structure.
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- Journal of Physical Oceanography, 2009, v. 39, n. 10, p. 2385, doi. 10.1175/2009JPO4159.1
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Dynamics of Rotating Shallow Gravity Currents Passing through a Channel. Part II: Analysis.
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- Journal of Physical Oceanography, 2009, v. 39, n. 10, p. 2402, doi. 10.1175/2009JPO4164.1
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Overturning and Dissipation Caused by Baroclinic Tidal Flow near the Sill of a Fjord Basin.
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- Journal of Physical Oceanography, 2009, v. 39, n. 9, p. 2156, doi. 10.1175/2009JPO4037.1
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Gravity Current Dynamics and Entrainment—A Process Study Based on Observations in the Arkona Basin.
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- Journal of Physical Oceanography, 2007, v. 37, n. 8, p. 2094, doi. 10.1175/JPO3110.1
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The sensitivity of minimum oxygen concentrations in a fjord to changes in biotic and abiotic external forcing.
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- Limnology & Oceanography, 2006, v. 51, n. 1, p. 631, doi. 10.4319/lo.2006.51.1_part_2.0631
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Dynamics of medium-intensity dense water plumes in the Arkona Basin, Western Baltic Sea.
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- Ocean Dynamics, 2005, v. 55, n. 5/6, p. 391, doi. 10.1007/s10236-005-0025-2
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Spatial Variability of Diapycnal Mixing and Turbulent Dissipation Rates in a Stagnant Fjord Basin.
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- Journal of Physical Oceanography, 2004, v. 34, n. 7, p. 1679, doi. 10.1175/1520-0485(2004)034<1679:SVODMA>2.0.CO;2
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The rate of inflow and mixing during deep-water renewal in a sill fjord.
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- Limnology & Oceanography, 2004, v. 49, n. 3, p. 768, doi. 10.4319/lo.2004.49.3.0768
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Mixing Efficiencies in Patchy Turbulence.
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- Journal of Physical Oceanography, 2002, v. 32, n. 5, p. 1496, doi. 10.1175/1520-0485(2002)032<1496:MEIPT>2.0.CO;2
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The Internal Seiches in Gullmar Fjord. Part I: Dynamics.
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- Journal of Physical Oceanography, 2001, v. 31, n. 9, p. 2549, doi. 10.1175/1520-0485(2001)031<2549:TISIGF>2.0.CO;2
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The Internal Seiches in Gullmar Fjord. Part II: Contribution to Basin Water Mixing.
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- Journal of Physical Oceanography, 2001, v. 31, n. 9, p. 2567, doi. 10.1175/1520-0485(2001)031<2567:TISIGF>2.0.CO;2
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Numerical modelling of advection-dispersion equation in a stretched curvilinear grid using the QUICKEST scheme.
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- International Journal for Numerical Methods in Fluids, 1998, v. 28, n. 7, p. 1033, doi. 10.1002/(SICI)1097-0363(19981115)28:7<1033::AID-FLD753>3.0.CO;2-R
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