Non-linear response of summertime marine productivity to increased meltwater discharge around Greenland
暂无分享,去创建一个
E. Achterberg | T. J. Browning | D. Carroll | M. Hopwood | L. Meire | J. Mortensen | S. Krisch | T. Browning
[1] P. Tréguer,et al. Dissolved iron in the North Atlantic Ocean and Labrador Sea along the GEOVIDE section (GEOTRACES section GA01) , 2020, Biogeosciences.
[2] N. Beaird,et al. Export of Strongly Diluted Greenland Meltwater From a Major Glacial Fjord , 2018 .
[3] Shin Sugiyama,et al. Upwelling of Macronutrients and Dissolved Inorganic Carbon by a Subglacial Freshwater Driven Plume in Bowdoin Fjord, Northwestern Greenland , 2018 .
[4] Joshua J. Rosen,et al. Exploring the Potential Impact of Greenland Meltwater on Stratification, Photosynthetically Active Radiation, and Primary Production in the Labrador Sea , 2018 .
[5] Stuart C. Painter,et al. Iron Biogeochemistry in the High Latitude North Atlantic Ocean , 2018, Scientific Reports.
[6] J. Amundson,et al. Effect of Topography on Subglacial Discharge and Submarine Melting During Tidewater Glacier Retreat , 2018 .
[7] Patrick Meire,et al. Marine‐terminating glaciers sustain high productivity in Greenland fjords , 2017, Global change biology.
[8] L Mayer,et al. BedMachine v3: Complete Bed Topography and Ocean Bathymetry Mapping of Greenland From Multibeam Echo Sounding Combined With Mass Conservation , 2017, Geophysical research letters.
[9] James P. M. Syvitski,et al. Substantial export of suspended sediment to the global oceans from glacial erosion in Greenland , 2017 .
[10] S. Aciego,et al. The iron isotopic composition of subglacial streams draining the Greenland ice sheet , 2017 .
[11] G. Catania,et al. Subglacial discharge-driven renewal of tidewater glacier fjords , 2017 .
[12] E. Achterberg,et al. Automated preconcentration of Fe, Zn, Cu, Ni, Cd, Pb, Co, and Mn in seawater with analysis using high-resolution sector field inductively-coupled plasma mass spectrometry. , 2017, Analytica chimica acta.
[13] K. Arrigo,et al. Melting glaciers stimulate large summer phytoplankton blooms in southwest Greenland waters , 2017 .
[14] E. Achterberg,et al. The heterogeneous nature of Fe delivery from melting icebergs , 2017 .
[15] F. Navarro,et al. Climatically sensitive transfer of iron to maritime Antarctic ecosystems by surface runoff , 2017, Nature Communications.
[16] P. Nienow,et al. Edinburgh Research Explorer Spatially Distributed Runoff at the Grounding Line of a Large Greenlandic Tidewater Glacier Inferred from Plume Modelling Spatially Distributed Runoff at the Grounding Line of a Large Greenlandic Tidewater Glacier Inferred from Plume Modelling , 2022 .
[17] M. Tranter,et al. Sources, cycling and export of nitrogen on the Greenland Ice Sheet , 2016 .
[18] B. Hudson,et al. The impact of glacier geometry on meltwater plume structure and submarine melt in Greenland fjords , 2016 .
[19] P. Meire,et al. High export of dissolved silica from the Greenland Ice Sheet , 2016 .
[20] F. Meysman,et al. Spring bloom dynamics in a subarctic fjord influenced by tidewater outlet glaciers (Godthåbsfjord, SW Greenland) , 2016 .
[21] T. Mote,et al. Oceanic transport of surface meltwater from the southern Greenland ice sheet , 2016 .
[22] B. Elberling,et al. Flocculated meltwater particles control Arctic land-sea fluxes of labile iron , 2016, Scientific Reports.
[23] D. Connelly,et al. Seasonal Changes in Fe along a Glaciated Greenlandic Fjord , 2016, Front. Earth Sci..
[24] E. Willerslev,et al. Spatial and temporal distribution of mass loss from the Greenland Ice Sheet since AD 1900 , 2015, Nature.
[25] M. Davis,et al. Distributed subglacial discharge drives significant submarine melt at a Greenland tidewater glacier , 2015 .
[26] C. Stedmon,et al. The influence of glacial melt water on bio-optical properties in two contrasting Greenlandic fjords , 2015 .
[27] Jing Zhang,et al. Transport and reaction of iron and iron stable isotopes in glacial meltwaters on Svalbard near Kongsfjorden: From rivers to estuary to ocean , 2015 .
[28] Jonathan D. Nash,et al. Modeling Turbulent Subglacial Meltwater Plumes: Implications for Fjord-Scale Buoyancy-Driven Circulation , 2015 .
[29] Eric Rignot,et al. Undercutting of marine‐terminating glaciers in West Greenland , 2015, Geophysical research letters.
[30] Jemma L. Wadham,et al. The effect of warming climate on nutrient and solute export from the Greenland Ice Sheet , 2015 .
[31] M. Chierici,et al. Effect of glacial drainage water on the CO2 system and ocean acidification state in an Arctic tidewater‐glacier fjord during two contrasting years , 2015 .
[32] S. Rysgaard,et al. Seasonal and interannual phytoplankton production in a sub-Arctic tidewater outlet glacier fjord, SW Greenland , 2015 .
[33] D. Goldberg,et al. Modeling the impact of glacial runoff on fjord circulation and submarine melt rate using a new subgrid-scale parameterization for glacial plumes , 2015 .
[34] C. Cenedese,et al. The Dynamics of Greenland's Glacial Fjords and Their Role in Climate. , 2015, Annual review of marine science.
[35] F. Meysman,et al. Glacial meltwater and primary production are drivers of strong CO 2 uptake in fjord and coastal waters adjacent to the Greenland Ice Sheet , 2014 .
[36] J. Bendtsen,et al. Seasonal variability of the circulation system in a west Greenland tidewater outlet glacier fjord, Godthåbsfjord (64°N) , 2014 .
[37] A. B. Mikkelsen,et al. Meltwater chemistry and solute export from a Greenland Ice Sheet catchment, Watson River, West Greenland , 2014 .
[38] J. Bendtsen,et al. Seasonal surface layer dynamics and sensitivity to runoff in a high Arctic fjord (Young Sound/Tyrolerfjord, 74°N) , 2014 .
[39] J. Tremblay,et al. Shifts in biological productivity inferred from nutrient drawdown in the southern Beaufort Sea (2003–2011) and northern Baffin Bay (1997–2011), Canadian Arctic , 2014 .
[40] H. Bouman,et al. Satellite‐detected fluorescence: Decoupling nonphotochemical quenching from iron stress signals in the South Atlantic and Southern Ocean , 2014 .
[41] B. Hudson,et al. MODIS observed increase in duration and spatial extent of sediment plumes in Greenland fjords , 2013 .
[42] K. Arrigo,et al. Processes and patterns of oceanic nutrient limitation , 2013 .
[43] M. Charette,et al. Greenland meltwater as a significant and potentially bioavailable source of iron to the ocean , 2013 .
[44] S. Bacon,et al. Export of nutrients from the Arctic Ocean , 2013 .
[45] E. Achterberg,et al. Spatial and temporal development of phytoplankton iron stress in relation to bloom dynamics in the high‐latitude North Atlantic Ocean , 2013 .
[46] M. Fahnestock,et al. On the seasonal freshwater stratification in the proximity of fast-flowing tidewater outlet glaciers in a sub-Arctic sill fjord , 2013 .
[47] S. Baines,et al. The trace metal composition of marine phytoplankton. , 2013, Annual review of marine science.
[48] D. Menemenlis,et al. Numerical experiments on subaqueous melting of Greenland tidewater glaciers in response to ocean warming and enhanced subglacial discharge , 2012, Annals of Glaciology.
[49] M. Babin,et al. The fate of riverine nutrients on Arctic shelves , 2012 .
[50] P. Raymond,et al. Seasonal and Annual Fluxes of Nutrients and Organic Matter from Large Rivers to the Arctic Ocean and Surrounding Seas , 2012, Estuaries and Coasts.
[51] R. Macdonald,et al. The Arctic Ocean Estuary , 2012, Estuaries and Coasts.
[52] A. Jenkins. Convection-Driven Melting near the Grounding Lines of Ice Shelves and Tidewater Glaciers , 2011 .
[53] J. Box,et al. Hydrologic controls on coastal suspended sediment plumes around the Greenland Ice Sheet , 2011 .
[54] A. Schroth,et al. Glacial influence on the geochemistry of riverine iron fluxes to the Gulf of Alaska and effects of deglaciation , 2011 .
[55] R. Curry,et al. Impact of fjord dynamics and glacial runoff on the circulation near Helheim Glacier , 2011 .
[56] Eric Rignot,et al. Recent large increases in freshwater fluxes from Greenland into the North Atlantic , 2010 .
[57] P. Rhines,et al. Physical controls and interannual variability of the Labrador Sea spring phytoplankton bloom in distinct regions , 2010 .
[58] Laurence C. Smith,et al. Sediment plume response to surface melting and supraglacial lake drainages on the Greenland ice sheet , 2009 .
[59] E. Achterberg,et al. Iron limitation of the postbloom phytoplankton communities in the Iceland Basin , 2009 .
[60] Bryan A. Franz,et al. Satellite-detected fluorescence reveals global physiology of ocean phytoplankton , 2008 .
[61] D. Hill,et al. Oceanography of Glacier Bay, Alaska: Implications for biological patterns in a glacial fjord estuary , 2007 .
[62] N. Mahowald,et al. Dissolved iron in the vicinity of the Crozet Islands, Southern Ocean , 2007 .
[63] Ian S. Robinson,et al. Effect of meteorological conditions on interannual variability in timing and magnitude of the spring bloom in the Irminger Basin, North Atlantic , 2006 .
[64] J. Hölemann,et al. Seasonal variability of trace metals in the Lena River and the southeastern Laptev Sea: Impact of the spring freshet , 2005 .
[65] David M. Holland,et al. Modeling Thermodynamic Ice–Ocean Interactions at the Base of an Ice Shelf , 1999 .
[66] J. Martin,et al. First data on trace metal level and behaviour in two major Arctic river-estuarine systems (Ob and Yenisey) and in the adjacent Kara Sea, Russia , 1995 .
[67] M. Brzezinski,et al. THE Si:C:N RATIO OF MARINE DIATOMS: INTERSPECIFIC VARIABILITY AND THE EFFECT OF SOME ENVIRONMENTAL VARIABLES 1 , 1985 .
[68] Geoffrey Ingram Taylor,et al. Turbulent gravitational convection from maintained and instantaneous sources , 1956, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[69] P. Tréguer,et al. Iron and manganese in the wake of the Kerguelen Islands (Southern Ocean) , 2001 .