Evidence of Abrupt Transitions Between Sea Ice Dynamical Regimes in the East Greenland Marginal Ice Zone
暂无分享,去创建一个
[1] Daniel M. Watkins,et al. Sea ice drift tracks from autonomous buoys in the MOSAiC Distributed Network , 2023, Scientific data.
[2] K. Shimada,et al. Sea ice motion vector retrievals from AMSR2 89-GHz data: Validation algorithm with simultaneous multi-channel observations , 2022, Journal of Atmospheric and Oceanic Technology.
[3] D. Dumont. Marginal ice zone dynamics: history, definitions and research perspectives , 2022, Philosophical Transactions of the Royal Society A.
[4] M. Verlaan,et al. Tidal dissipation from free drift sea ice in the Barents Sea assessed using GNSS beacon observations , 2022, Ocean Dynamics.
[5] B. Arbic. Incorporating Tides and Internal Gravity Waves within Global Ocean General Circulation Models: A review , 2022, Progress in Oceanography.
[6] M. Wilhelmus,et al. Spinning ice floes reveal intensification of mesoscale eddies in the western Arctic Ocean , 2022, Scientific Reports.
[7] L. Tremblay,et al. A new state-dependent parameterization for the free drift of sea ice , 2022, The Cryosphere.
[8] I. Tan,et al. Process Drivers, Inter-Model Spread, and the Path Forward: A Review of Amplified Arctic Warming , 2021, Frontiers in Earth Science.
[9] Brandon M. Boylan. Increased maritime traffic in the Arctic: Implications for governance of Arctic sea routes , 2021 .
[10] S. Elipot,et al. An Assessment of Global Ocean Barotropic Tide Models Using Geodetic Mission Altimetry and Surface Drifters , 2020 .
[11] P. Kushner,et al. Sea ice and atmospheric circulation shape the high-latitude lapse rate feedback , 2020, npj Climate and Atmospheric Science.
[12] G. Manucharyan,et al. Brief Communication: Mesoscale and submesoscale dynamics in the marginal ice zone from sequential synthetic aperture radar observations , 2020 .
[13] E. Carmack,et al. Intensification of Near‐Surface Currents and Shear in the Eastern Arctic Ocean , 2020, Geophysical Research Letters.
[14] John K. Hall,et al. The International Bathymetric Chart of the Arctic Ocean Version 4.0 , 2020, Scientific Data.
[15] T. Krumpen,et al. The Expedition AF122/1 : Setting up the MOSAiC Distributed Network in October 2019 with Research Vessel AKADEMIK FEDOROV , 2020 .
[16] Jaime Fern'andez del R'io,et al. Array programming with NumPy , 2020, Nature.
[17] J. Thepaut,et al. The ERA5 global reanalysis , 2020, Quarterly Journal of the Royal Meteorological Society.
[18] W. Meier,et al. An enhancement to sea ice motion and age products at the National Snow and Ice Data Center (NSIDC) , 2020 .
[19] V. Squire. Ocean Wave Interactions with Sea Ice: A Reappraisal , 2020, Annual Review of Fluid Mechanics.
[20] M. Wilhelmus,et al. Ice Floe Tracker: An algorithm to automatically retrieve Lagrangian trajectories via feature matching from moderate-resolution visual imagery , 2019, Remote Sensing of Environment.
[21] Johannes L. Schönberger,et al. SciPy 1.0: fundamental algorithms for scientific computing in Python , 2019, Nature Methods.
[22] Wilken-Jon von Appen,et al. Does the East Greenland Current exist in the northern Fram Strait? , 2018, Ocean Science.
[23] J. Richter-Menge,et al. Corrigendum: Spatial and temporal characterisation of sea-ice deformation , 2018, Journal of Glaciology.
[24] J. Dawson,et al. Temporal and Spatial Patterns of Ship Traffic in the Canadian Arctic from 1990 to 2015 + Supplementary Appendix 1: Figs. S1–S7 (See Article Tools) , 2018 .
[25] J. Comiso,et al. Variability and trends in the Arctic Sea ice cover: Results from different techniques , 2017 .
[26] Bin Cheng,et al. Thin ice and storms: Sea ice deformation from buoy arrays deployed during N-ICE2015 , 2017 .
[27] Stephan Hoyer,et al. xarray: N-D labeled arrays and datasets in Python , 2017 .
[28] K. Kloster,et al. Fram Strait sea ice export variability and September Arctic sea ice extent over the last 80 years , 2016 .
[29] I. Fer,et al. Tidal forcing, energetics, and mixing near the Yermak Plateau , 2014 .
[30] Gary D. Egbert,et al. Accuracy assessment of global barotropic ocean tide models , 2014 .
[31] D. Marsan,et al. Sea ice inertial oscillations in the Arctic Basin , 2012 .
[32] R. Kwok,et al. Satellite remote sensing of sea-ice thickness and kinematics: a review , 2010, Journal of Glaciology.
[33] B. Brümmer,et al. Observation of cyclone‐induced inertial sea‐ice oscillation in Fram Strait , 2009 .
[34] C. Haas,et al. Tidal forcing on sea-ice drift and deformation in the western Weddell Sea in early austral summer, 2004 , 2008 .
[35] W. Emery,et al. A younger, thinner Arctic ice cover: Increased potential for rapid, extensive sea‐ice loss , 2007 .
[36] M. Leppäranta. The drift of sea ice , 2004 .
[37] S. Erofeeva,et al. A barotropic inverse tidal model for the Arctic Ocean , 2004 .
[38] P. Turet,et al. Barents Sea tidal and inertial motions from Argos ice buoys during the Coordinated Eastern Arctic Experiment , 1995 .
[39] R. Pinkel,et al. Diurnal tides near the Yermak Plateau , 1992 .
[40] K. Aagaard,et al. On the velocity field of the East Greenland Current , 1988 .
[41] J. Morison,et al. Boundary layer, upper ocean, and ice observations in the Greenland Sea Marginal Ice Zone , 1987 .
[42] K. Koltermann,et al. Large‐scale oceanography in Fram Strait during the 1984 Marginal Ice Zone Experiment , 1987 .
[43] M. Leppäranta,et al. Mesoscale sea ice deformation in the East Greenland marginal ice zone , 1987 .
[44] R. Colony,et al. Sea ice motion in response to geostrophic winds , 1982 .
[45] Mallik S. Mahmud,et al. Overview of the MOSAiC expedition , 2022, Elementa: Science of the Anthropocene.
[46] J. Dawson,et al. Temporal and Spatial Patterns of Ship Traffic in the Canadian Arctic from 1990 to 2015 , 2018 .
[47] P. Heil,et al. Subsynoptic scale spatial variability of sea ice deformation in the western Weddell Sea during early summer , 2012 .
[48] Andrew Roberts,et al. Spatial and temporal characterization of sea-ice deformation , 2011, Annals of Glaciology.