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  • PANGAEA  (261)
  • AGU (American Geophysical Union)  (3)
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  • 1
  • 2
    Publication Date: 2024-02-07
    Description: The Arctic Ocean is considered a source of micronutrients to the Nordic Seas and the North Atlantic Ocean through the gateway of Fram Strait. However, there is a paucity of trace element data from across the Arctic Ocean gateways, and so it remains unclear how Arctic and North Atlantic exchange shapes micronutrient availability in the two ocean basins. In 2015 and 2016, GEOTRACES cruises sampled the Barents Sea Opening (GN04, 2015) and Fram Strait (GN05, 2016) for dissolved iron (dFe), manganese (dMn), cobalt (dCo), nickel (dNi), copper (dCu) and zinc (dZn). Together with the most recent synopsis of Arctic-Atlantic volume fluxes, the observed trace element distributions suggest that Fram Strait is the most important gateway for Arctic-Atlantic dissolved micronutrient exchange as a consequence of Intermediate and Deep Water transport. Combining fluxes from Fram Strait and the Barents Sea Opening with estimates for Davis Strait (GN02, 2015) suggests an annual net southward flux of 2.7 ± 2.4 Gg·a-1 dFe, 0.3 ± 0.3 Gg·a-1 dCo, 15.0 ± 12.5 Gg·a-1 dNi and 14.2 ± 6.9 Gg·a-1 dCu from the Arctic towards the North Atlantic Ocean. Arctic-Atlantic exchange of dMn and dZn were more balanced, with a net southbound flux of 2.8 ± 4.7 Gg·a-1 dMn and a net northbound flux of 3.0 ± 7.3 Gg·a-1 dZn. Our results suggest that ongoing changes to shelf inputs and sea ice dynamics in the Arctic, especially in Siberian shelf regions, affect micronutrient availability in Fram Strait and the high latitude North Atlantic Ocean.
    Type: Article , PeerReviewed
    Format: text
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  • 3
    Publication Date: 2024-02-07
    Description: We present high-resolution profiles of dissolved, labile and total particulate trace metals (TMs) on the Northeast Greenland shelf from GEOTRACES cruise GN05 in August 2016. Combined with radium isotopes, stable oxygen isotopes, and noble gas measurements, elemental distributions suggest that TM dynamics were mainly regulated by the mixing between North Atlantic-derived Intermediate Water, enriched in labile particulate TMs (LpTMs), and Arctic surface waters, enriched in Siberian shelf-derived dissolved TMs (dTMs; Co, Cu, Fe, Mn, and Ni) carried by the Transpolar Drift. These two distinct sources were delineated by salinity-dependent variations of dTM and LpTM concentrations and the proportion of dTMs relative to the total dissolved and labile particulate ratios. Locally produced meltwater from the Nioghalvfjerdsbræ (79NG) glacier cavity, distinguished from other freshwater sources using helium excess, contributed a large pool of dTMs to the shelf inventory. Localized peaks in labile and total particulate Cd, Co, Fe, Mn, Ni, Cu, Al, V, and Ti in the cavity outflow, however, were not directly contributed by submarine melting. Instead, these particulate TMs were mainly supplied by the re-suspension of cavity sediment particles. Currently, Arctic Ocean outflows are the most important source of dFe, dCu and dNi on the shelf, while LpTMs and up to 60% of dMn and dCo are mainly supplied by subglacial discharge from the 79NG cavity. Therefore, changes in the cavity-overturning dynamics of 79NG induced by glacial retreat, and alterations in the transport of Siberian shelf-derived materials with the Transport Drift may shift the shelf dTM-LpTM stoichiometry in the future. Key Points The overall dissolved and particulate trace metal dynamics were mainly regulated by the mixing with Arctic surface waters Resuspension of cavity sediments is a major localized source of labile and total particulate Cd, Co, Fe, Mn, Ni, Cu, Al, V, and Ti Whilst dissolved and particulate trace metals are mostly coupled on the Greenland shelf, cavity outflow decouples both phases
    Type: Article , PeerReviewed , info:eu-repo/semantics/article
    Format: text
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  • 4
    Publication Date: 2023-03-16
    Keywords: Alpha spectrometry; ANT-IX/2; AWI_MarGeoChem; AWI_Paleo; BO1_trap; Bouvet_1; Bouvet Island, Southern Ocean (Atlantic sector); Calculated; DATE/TIME; Date/time end; DEPTH, water; Duration, number of days; Marine Geochemistry @ AWI; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Polarstern; Protactinium-231; Protactinium-231, standard deviation; Protactinium-231/Thorium-230 excess; Protactinium-231/Thorium-230 excess, standard deviation; Protactinium-231 excess; Protactinium-231 excess, standard deviation; PS18 06AQANTIX_2; Sample code/label; Thorium-230; Thorium-230, standard deviation; Thorium-230 excess; Thorium-230 excess, standard deviation; Thorium-232; Thorium-232, standard deviation; Total mass, flux per day; Trap, sediment; TRAPS
    Type: Dataset
    Format: text/tab-separated-values, 132 data points
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  • 5
    Publication Date: 2023-03-16
    Keywords: Alpha spectrometry; AWI_MarGeoChem; AWI_Paleo; Calculated; DATE/TIME; Date/time end; DEPTH, water; Duration, number of days; Marine Geochemistry @ AWI; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Polar_Front_1; Protactinium-231; Protactinium-231, standard deviation; Protactinium-231/Thorium-230 excess; Protactinium-231/Thorium-230 excess, standard deviation; Protactinium-231 excess; Protactinium-231 excess, standard deviation; Sample code/label; Thorium-230; Thorium-230, standard deviation; Thorium-230 excess; Thorium-230 excess, standard deviation; Thorium-232; Thorium-232, standard deviation; Total mass, flux per day; Trap; TRAP
    Type: Dataset
    Format: text/tab-separated-values, 32 data points
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  • 6
    Publication Date: 2023-03-16
    Keywords: Alpha spectrometry; AWI_MarGeoChem; AWI_Paleo; Calculated; DATE/TIME; Date/time end; DEPTH, water; Duration, number of days; King_George_1; Marine Geochemistry @ AWI; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Protactinium-231; Protactinium-231, standard deviation; Protactinium-231/Thorium-230 excess; Protactinium-231/Thorium-230 excess, standard deviation; Protactinium-231 excess; Protactinium-231 excess, standard deviation; Sample code/label; Thorium-230; Thorium-230, standard deviation; Thorium-230 excess; Thorium-230 excess, standard deviation; Thorium-232; Thorium-232, standard deviation; Total mass, flux per day; Trap; TRAP
    Type: Dataset
    Format: text/tab-separated-values, 77 data points
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  • 7
    Publication Date: 2023-03-16
    Keywords: Alpha spectrometry; AWI_MarGeoChem; AWI_Paleo; Calculated; DATE/TIME; Date/time end; DEPTH, water; Duration, number of days; Marine Geochemistry @ AWI; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Protactinium-231; Protactinium-231, standard deviation; Protactinium-231/Thorium-230 excess; Protactinium-231/Thorium-230 excess, standard deviation; Protactinium-231 excess; Protactinium-231 excess, standard deviation; Sample code/label; Thorium-230; Thorium-230, standard deviation; Thorium-230 excess; Thorium-230 excess, standard deviation; Thorium-232; Thorium-232, standard deviation; Total mass, flux per day; Trap; TRAP; Weddell_Sea_3
    Type: Dataset
    Format: text/tab-separated-values, 144 data points
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  • 8
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    PANGAEA
    In:  Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven
    Publication Date: 2023-03-16
    Keywords: ANT-XXIII/1; AWI_MarGeoChem; Calculated; Calculated from salinity (Chen et al. 1986); CT; DATE/TIME; DEPTH, water; LATITUDE; LONGITUDE; Marine Geochemistry @ AWI; Non-destructive beta-counting (Rutgers van der Loeff & Moore, 1999); Polarstern; PS69; PS69/1-track; PS69/Fish; PS69/Snorkel; Salinity; Sample code/label; Thermosalinograph; Thorium-234, dissolved; Thorium-234, particulate; Thorium-234, total; Thorium-234/Uranium-238 activity ratio; Thorium-234/Uranium-238 activity ratio, dissolved; Thorium-234/Uranium-238 activity ratio, particulate; TSG; Underway cruise track measurements; Uranium-238
    Type: Dataset
    Format: text/tab-separated-values, 306 data points
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  • 9
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    PANGAEA
    In:  Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven
    Publication Date: 2023-03-16
    Keywords: ANT-XXIII/3; AWI_MarGeoChem; Calculated, using 238U=2.4dpm/kg at Salinity 35; CTD/Rosette; CTD-RO; Date/time start; DEPTH, water; Marine Geochemistry @ AWI; Mass, brutto; Non-destructive beta-counting (Rutgers van der Loeff & Moore, 1999); Polarstern; PS69; PS69/181-3; Salinity; Sample ID; Sample volume; Thorium-234, dissolved; Thorium-234, dissolved, standard deviation; Thorium-234, particulate; Thorium-234, particulate, standard deviation; Thorium-234/Uranium-238 activity ratio; Thorium-234/Uranium-238 activity ratio, dissolved; Thorium-234/Uranium-238 activity ratio, particulate; Thorium-234/Uranium-238 activity ratio, standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 75 data points
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  • 10
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    PANGAEA
    In:  Alfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven
    Publication Date: 2023-03-16
    Keywords: ANT-XXIII/3; AWI_MarGeoChem; Calculated, using 238U=2.4dpm/kg at Salinity 35; CTD/Rosette; CTD-RO; Date/time start; DEPTH, water; Marine Geochemistry @ AWI; Mass, brutto; Non-destructive beta-counting (Rutgers van der Loeff & Moore, 1999); Polarstern; PS69; PS69/183-1; Salinity; Sample ID; Sample volume; Thorium-234, dissolved; Thorium-234, dissolved, standard deviation; Thorium-234, particulate; Thorium-234, particulate, standard deviation; Thorium-234/Uranium-238 activity ratio; Thorium-234/Uranium-238 activity ratio, dissolved; Thorium-234/Uranium-238 activity ratio, particulate; Thorium-234/Uranium-238 activity ratio, standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 75 data points
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