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  • PANGAEA  (23)
  • 2010-2014  (23)
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  • 1
    Publication Date: 2024-01-09
    Keywords: 177-1090; Accumulation rate, dust; Accumulation rate, iron per year; AGE; Calculated; COMPCORE; Composite Core; Joides Resolution; Leg177; Ocean Drilling Program; ODP; South Atlantic Ocean
    Type: Dataset
    Format: text/tab-separated-values, 12330 data points
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  Supplement to: Martínez‐García, Alfredo; Rosell-Melé, Antoni; Jaccard, Samuel L; Geibert, Walter; Sigman, Daniel M; Haug, Gerald H (2011): Southern Ocean dust-climate coupling over the past four million years. Nature, 476(7360), 312-316, https://doi.org/10.1038/nature10310
    Publication Date: 2024-01-09
    Description: Dust has the potential to modify global climate by influencing the radiative balance of the atmosphere and by supplying iron and other essential limiting micronutrients to the ocean (Martin et al., 1990, doi:10.1038/345156a0; Martin, 1990, doi:10.1029/PA005i001p00001). Indeed, dust supply to the Southern Ocean increases during ice ages, and 'iron fertilization' of the subantarctic zone may have contributed up to 40 parts per million by volume (p.p.m.v.) of the decrease (80-100 p.p.m.v.) in atmospheric carbon dioxide observed during late Pleistocene glacial cycles (Watson et al., 2000, doi:10.1038/35037561; Kohfeld et al., 2005, doi:10.1126/science.1105375; Martínez-Garcia et al., 2009, doi:10.1029/2008PA001657; Sigman et al., 2010, doi:10.1038/nature09149; Hain et al., 2010, doi:10.1029/2010gb003790). So far, however, the magnitude of Southern Ocean dust deposition in earlier times and its role in the development and evolution of Pleistocene glacial cycles have remained unclear. Here we report a high-resolution record of dust and iron supply to the Southern Ocean over the past four million years, derived from the analysis of marine sediments from ODP Site 1090, located in the Atlantic sector of the subantarctic zone. The close correspondence of our dust and iron deposition records with Antarctic ice core reconstructions of dust flux covering the past 800,000 years (Lambert et al., 2008, doi:10.1038/nature06763; Wolf et al., 2006, doi:10.1038/nature04614) indicates that both of these archives record large-scale deposition changes that should apply to most of the Southern Ocean, validating previous interpretations of the ice core data. The extension of the record beyond the interval covered by the Antarctic ice cores reveals that, in contrast to the relatively gradual intensification of glacial cycles over the past three million years, Southern Ocean dust and iron flux rose sharply at the Mid-Pleistocene climatic transition around 1.25 million years ago. This finding complements previous observations over late Pleistocene glacial cycles (Martínez-Garcia et al., 2009; Lambert et al., 2008; Wolff et al., 2006), providing new evidence of a tight connection between high dust input to the Southern Ocean and the emergence of the deep glaciations that characterize the past one million years of Earth history.
    Keywords: 177-1090; COMPCORE; Composite Core; Joides Resolution; Leg177; Ocean Drilling Program; ODP; South Atlantic Ocean
    Type: Dataset
    Format: application/zip, 2 datasets
    Location Call Number Limitation Availability
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  • 3
    Publication Date: 2024-04-23
    Keywords: 177-1090; Accumulation rate, n-Alkanes per year; AGE; Calculated; COMPCORE; Composite Core; Joides Resolution; Leg177; Ocean Drilling Program; ODP; South Atlantic Ocean
    Type: Dataset
    Format: text/tab-separated-values, 992 data points
    Location Call Number Limitation Availability
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  • 4
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    PANGAEA
    In:  Supplement to: Geibert, Walter; Assmy, Philipp; Bakker, Dorothee C E; Hanfland, Claudia; Hoppema, Mario; Pichevin, Laetitia; Schröder, Michael; Schwarz, Jill Nicola; Stimac, Ingrid; Usbeck, Regina; Webb, Adrian (2010): High productivity in an ice melting hot spot at the eastern boundary of the Weddell Gyre. Global Biogeochemical Cycles, 24, GB3007, https://doi.org/10.1029/2009GB003657
    Publication Date: 2024-06-25
    Description: The Southern Ocean (SO) plays a key role in modulating atmospheric CO2 via physical and biological processes. However, over much of the SO, biological activity is iron-limited. New in situ data from the Antarctic zone south of Africa in a region centered at -20°E - 25°E reveal a previously overlooked region of high primary production, comparable in size to the northwest African upwelling region. Here, sea ice together with enclosed icebergs is channeled by prevailing winds to the eastern boundary of the Weddell Gyre, where a sharp transition to warmer waters causes melting. This cumulative melting provides a steady source of iron, fuelling an intense phytoplankton bloom that is not fully captured by monthly satellite production estimates. These findings imply that future changes in sea-ice cover and dynamics could have a significant effect on carbon sequestration in the SO.
    Keywords: ANT-XX/2; AWI_MarGeoChem; CTD/Rosette; CTD-RO; Indian Ocean; Lazarev Sea; Marine Geochemistry @ AWI; MIC; MiniCorer; MUC; MULT; MultiCorer; Multiple investigations; Polarstern; Priority Programme 1158 Antarctic Research with Comparable Investigations in Arctic Sea Ice Areas; PS63/021-1; PS63/022-2; PS63/023-1; PS63/024-1; PS63/025-1; PS63/026-2; PS63/027-1; PS63/028-1; PS63/029-1; PS63/030-5; PS63/031-1; PS63/032-1; PS63/033-4; PS63/034-1; PS63/035-1; PS63/036-2; PS63/037-3; PS63/038-3; PS63/039-1; PS63/040-1; PS63/041-3; PS63/042-3; PS63/043-1; PS63/044-1; PS63/046-1; PS63/047-1; PS63/048-1; PS63/049-1; PS63/050-1; PS63/052-1; PS63/053-1; PS63/054-4; PS63/054-5; PS63/055-3; PS63/056-1; PS63/057-1; PS63/058-1; PS63/059-1; PS63/060-1; PS63/061-4; PS63/062-4; PS63/063-1; PS63/064-2; PS63/064-6; PS63/065-1; PS63/070-1; PS63/071-1; PS63/072-1; PS63/073-1; PS63/075-1; PS63/076-3; PS63/077-1; PS63/078-1; PS63/079-3; PS63/080-1; PS63/081-2; PS63/082-1; PS63/083-1; PS63/083-2; PS63/085-1; PS63/086-1; PS63/087-1; PS63/088-1; PS63/089-1; PS63/090-1; PS63/091-1; PS63/092-1; PS63/093-1; PS63/094-1; PS63/095-1; PS63/095-3; PS63/100-1; PS63/101-1; PS63/104-1; PS63/107-2; PS63/112-4; PS63/116-1; PS63/119-1; PS63/120-2; PS63/121-2; PS63/122-1; PS63/123-2; PS63/124-1; PS63/125-1; PS63/126-1; PS63/127-1; PS63/128-1; PS63/130-1; PS63/131-1; PS63/133-1; PS63/134-1; PS63/135-1; PS63/137-1; PS63/138-1; PS63/139-2; PS63/140-1; PS63/141-1; PS63/142-1; PS63/143-1; PS63/143-2; PS63/144-1; PS63/145-1; PS63/146-1; PS63/147-1; PS63/148-1; PS63/149-1; PS63/150-1; PS63/152-1; PS63/182-2; PS63/197-1; PS63/216-2; PS63 06AQ200211_2; Riiser-Larsen Sea; South Atlantic Ocean; SPP1158; Weddell Sea
    Type: Dataset
    Format: application/zip, 5 datasets
    Location Call Number Limitation Availability
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  • 5
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    PANGAEA
    In:  Supplement to: Kretschmer, Sven; Geibert, Walter; Rutgers van der Loeff, Michiel M; Mollenhauer, Gesine (2010): Grain size effects on Th-230 (xs) inventories in opal-rich and carbonate-rich marine sediments. Earth and Planetary Science Letters, 294(1-2), 131-142, https://doi.org/10.1016/j.epsl.2010.03.021
    Publication Date: 2024-06-25
    Description: Excess Thorium-230 (230Thxs) as a constant flux tracer is an essential tool for paleoceanographic studies, but its limitations for flux normalization are still a matter of debate. In regions of rapid sediment accumulation, it has been an open question if 230Thxs-normalized fluxes are biased by particle sorting effects during sediment redistribution. In order to study the sorting effect of sediment transport on 230Thxs, we analyzed the specific activity of 230Thxs in different particle size classes of carbonate-rich sediments from the South East Atlantic, and of opal-rich sediments from the Atlantic sector of the Southern Ocean. At both sites, we compare the 230Thxs distribution in neighboring high vs. low accumulation settings. Two grain-size fractionation methods are explored. We find that the 230Thxs distribution is strongly grain size dependent, and 50-90% of the total 230Thxs inventory is concentrated in fine material smaller than 10 µm, which is preferentially deposited at the high accumulation sites. This leads to an overestimation of the focusing factor Psi, and consequently to an underestimation of the vertical flux rate at such sites. The distribution of authigenic uranium indicates that fine organic-rich material has also been re-deposited from lateral sources. If the particle sorting effect is considered in the flux calculations, it reduces the estimated extent of sediment focusing. In order to assess the maximum effect of particle sorting on Psi, we present an extreme scenario, in which we assume a lateral sediment supply of only fine material (〈 10 µm). In this case, the focusing factor of the opal-rich core would be reduced from Psi = 5.9 to Psi = 3.2. In a more likely scenario, allowing silt-sized material to be transported, Psi is reduced from 5.9 to 5.0 if particle sorting is taken into consideration. The bias introduced by particle sorting is most important for strongly focused sediments. Comparing 230Thxs-normalized mass fluxes biased by sorting effects with uncorrected mass fluxes, we suggest that 230Thxs-normalization is still a valid tool to correct for lateral sediment redistribution. However, differences in focusing factors between core locations have to be evaluated carefully, taking the grain size distributions into consideration.
    Keywords: ANT-VIII/3; AWI_MarGeoChem; Center for Marine Environmental Sciences; GeoB1027-2; GeoB1028-4; Giant box corer; GKG; Gravity corer (Kiel type); M6/6; Marine Geochemistry @ AWI; MARUM; Meteor (1986); Polarstern; PS16; PS16/311; PS16/312; PS1768-8; PS1769-1; Shona Ridge; SL; Walvis Ridge
    Type: Dataset
    Format: application/zip, 6 datasets
    Location Call Number Limitation Availability
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  • 6
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    PANGAEA
    In:  Supplement to: Kretschmer, Sven; Geibert, Walter; Rutgers van der Loeff, Michiel M; Schnabel, Christoph; Xu, Sheng; Mollenhauer, Gesine (2011): Fractionation of **230Th, **231Pa, and **10Be induced by particle size and composition within an opal-rich sediment of the Atlantic Southern Ocean. Geochimica et Cosmochimica Acta, 75(22), 6971-6987, https://doi.org/10.1016/j.gca.2011.09.012
    Publication Date: 2024-06-25
    Description: This study centers on the question: How sensitive are 231Pa/230Th and 10Be/230Th to sediment composition and redistribution? The natural radionuclides 231Pa, 230Th and 10Be recorded in deep sea sediments are tracers for water mass advection and particle fluxes. We investigate the influence of oceanic particle composition on the element adsorption in order to improve our understanding of sedimentary isotope records. We present new data on particle size specific 231Pa and 10Be concentrations. An additional separation step, based on settling velocities, led to the isolation of a very opal-rich phase. We find that opal-rich particles contain the highest 231Pa and 10Be concentrations, and higher 231Pa/230Th and 10Be/230Th isotope ratios than opal-poor particles. The fractionation relative to 230Th induced by the adsorption to opal-rich particles is more pronounced for 231Pa than for 10Be. We conclude that bulk 231Pa/230Th in Southern Ocean sediments is most suitable as a proxy for past opal fluxes. The comparison between two neighboring cores with rapid and slow accumulation rates reveals that these isotope ratios are not influenced significantly by the intensity of sediment focusing at these two study sites. However, a simulation shows that particle sorting by selective removal of sediment (winnowing) could change the isotope ratios. Consequently, 231Pa/230Th should not be used as paleocirculation proxy in cases where a strong loss of opal-rich material due to bottom currents occurred.
    Keywords: ANT-VIII/3; AWI_MarGeoChem; AWI_Paleo; Gravity corer (Kiel type); Marine Geochemistry @ AWI; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Polarstern; PS16; PS16/311; PS16/312; PS1768-8; PS1769-1; Shona Ridge; SL
    Type: Dataset
    Format: application/zip, 6 datasets
    Location Call Number Limitation Availability
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  • 7
    Publication Date: 2024-06-25
    Keywords: Abundance estimate; ANT-XX/2; Asteromphalus hookeri; Asteromphalus hyalinus; AWI_MarGeoChem; Chaetoceros aequatorialis; Chaetoceros atlanticus; Chaetoceros bulbosus; Chaetoceros castracanei; Chaetoceros convolutus; Chaetoceros criophilus; Chaetoceros debilis; Chaetoceros dichaeta; Ciliates, heterotrophic, naked; Corethron pennatum; Cylindrotheca closterium; Dactyliosolen antarcticus; DEPTH, water; Diatoms, pennales indeterminata; Dictyocha speculum; Dinoflagellates, naked; Dinoflagellates, thecate; Fecal pellets; Fragilariopsis curta; Fragilariopsis cylindrus; Fragilariopsis kerguelensis; Fragilariopsis obliquecostata; Fragilariopsis rhombica; Fragilariopsis ritscheri; Fragilariopsis spp.; Guinardia cylindrus; Haslea trompii; Marine Geochemistry @ AWI; Membraneis imposter; MIC; MiniCorer; Pleurosigma sp.; Polarstern; Proboscia alata; Proboscia inermis; Proboscia truncata; Prorocentrum spp.; Protoperidinium spp., heterotrophic; PS63/064-6; PS63 06AQ200211_2; Pseudo-nitzschia heimii; Pseudo-nitzschia lineola; Pseudo-nitzschia turgiduloides; Rhizosolenia chunii; Rhizosolenia spp.; South Atlantic Ocean; Thalassiosira gracilis; Thalassiosira lentiginosa; Thalassiosira oliverana; Thalassiosira spp.; Thalassiothrix antarctica; Tintinnids, heterotrophic
    Type: Dataset
    Format: text/tab-separated-values, 46 data points
    Location Call Number Limitation Availability
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  • 8
    Publication Date: 2024-06-25
    Keywords: ANT-XX/2; Asteromphalus hookeri; Asteromphalus hyalinus; AWI_MarGeoChem; Chaetoceros aequatorialis; Chaetoceros atlanticus; Chaetoceros bulbosus; Chaetoceros castracanei; Chaetoceros convolutus; Chaetoceros criophilum; Chaetoceros debilis; Chaetoceros dichaeta; Ciliates, heterotrophic, naked; Corethron pennatum; Counting; CTD/Rosette; CTD-RO; Cylindrotheca closterium; Dactyliosolen antarcticus; Date/Time of event; DEPTH, water; Diatoms, pennales indeterminata; Dictyocha speculum; Dinoflagellates, naked; Dinoflagellates, thecate; Elevation of event; Event label; Fecal pellets; Fragilariopsis curta; Fragilariopsis cylindrus; Fragilariopsis kerguelensis; Fragilariopsis obliquecostata; Fragilariopsis rhombica; Fragilariopsis ritscheri; Fragilariopsis spp.; Guinardia cylindrus; Haslea trompii; Indian Ocean; Latitude of event; Longitude of event; Marine Geochemistry @ AWI; Membraneis imposter; MUC; MultiCorer; Pleurosigma sp.; Polarstern; Proboscia alata; Proboscia inermis; Proboscia truncata; Prorocentrum spp.; Protoperidinium spp., heterotrophic; PS63/048-1; PS63/054-5; PS63/095-3; PS63/112-4; PS63/121-2; PS63/127-1; PS63/139-2; PS63/143-2; PS63/146-1; PS63/152-1; PS63 06AQ200211_2; Pseudo-nitzschia heimii; Pseudo-nitzschia lineola; Pseudo-nitzschia turgiduloides; Rhizosolenia chunii; Rhizosolenia spp.; Riiser-Larsen Sea; South Atlantic Ocean; Thalassiosira gracilis; Thalassiosira lentiginosa; Thalassiosira oliverana; Thalassiosira spp.; Thalassiothrix antarctica; Tintinnids, heterotrophic; Weddell Sea
    Type: Dataset
    Format: text/tab-separated-values, 924 data points
    Location Call Number Limitation Availability
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  • 9
    Publication Date: 2024-06-25
    Keywords: ANT-XX/2; AWI_MarGeoChem; Calculated; Calculated from conductivity; Carbon, organic, total; Carbon, total, particulate; Carbon, total, particulate, salt corrected; Carbon/Nitrogen ratio; Chlorophyll total; CTD/Rosette; CTD-RO; Date/Time of event; DEPTH, water; Element analyser CHN; Event label; Fluorometer, in-situ; ICP-OES, Inductively coupled plasma - optical emission spectrometry; Indian Ocean; Iron; Iron/Carbon ratio; Latitude of event; Longitude of event; Marine Geochemistry @ AWI; MIC; MiniCorer; MUC; MultiCorer; Nitrogen, total, particulate; Nitrogen, total, particulate, salt corrected; Opal, auto analysis (Müller & Schneider, 1993); Opal, biogenic silica, water free; Particle concentration; Polarstern; PS63/048-1; PS63/054-5; PS63/064-6; PS63/083-2; PS63/095-3; PS63/112-4; PS63/121-2; PS63/127-1; PS63/139-2; PS63/143-2; PS63/146-1; PS63/152-1; PS63 06AQ200211_2; Riiser-Larsen Sea; Salt content; Sample mass; Sample volume; Silica, particulate, salt corrected; South Atlantic Ocean; Sulfur, total, particulate; Weddell Sea
    Type: Dataset
    Format: text/tab-separated-values, 202 data points
    Location Call Number Limitation Availability
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  • 10
    Publication Date: 2024-06-25
    Keywords: ANT-VIII/3; AWI_MarGeoChem; Center for Marine Environmental Sciences; Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; Event label; GeoB1027-2; GeoB1028-4; Giant box corer; GKG; Gravity corer (Kiel type); ICP-SF-MS, Thermo Scientific, Element 2; M6/6; Marine Geochemistry @ AWI; MARUM; Meteor (1986); Method comment; Polarstern; PS16; PS16/311; PS16/312; PS1768-8; PS1769-1; Shona Ridge; Size fraction; SL; Thorium-230; Thorium-230, standard deviation; Thorium-230 excess; Thorium-230 excess, standard deviation; Thorium-232; Thorium-232, standard deviation; Uranium-234; Uranium-234, standard deviation; Uranium-234/Uranium-238 activity ratio; Uranium-234/Uranium-238 activity ratio, standard deviation; Uranium-235; Uranium-235, standard deviation; Uranium-238; Uranium-238, authigenic; Uranium-238, authigenic, standard deviation; Uranium-238, authigenic/Uranium-238, total ratio; Uranium-238, standard deviation; Velocity, settling, comment; Walvis Ridge
    Type: Dataset
    Format: text/tab-separated-values, 1248 data points
    Location Call Number Limitation Availability
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