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  • 2000-2004  (296,064)
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  • 2002  (296,063)
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  • 1
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    Unknown
    PANGAEA
    In:  Supplement to: Hillenbrand, Claus-Dieter; Fütterer, Dieter K; Grobe, Hannes; Frederichs, Thomas (2002): No evidence for a Pleistocene collapse of the West Antarctic Ice Sheet from continental margin sediments recovered in the Amundsen Sea. Geo-Marine Letters, 22(2), 51-59, https://doi.org/10.1007/s00367-002-0097-7
    Publication Date: 2024-07-01
    Description: Records of glaciomarine deposition recovered from the West Antarctic continental margin in the Amundsen Sea allow the reconstruction of the behaviour of the West Antarctic Ice Sheet (WAIS) in response to the natural climatic changes of the last 1.8 million years. Contents of gravel-sized and lithogenic components represent the input and redeposition of glaciogenic debris, whereas variations in the proportions of the calcareous sediment fraction reflect palaeoproductivity changes. All proxies, which are regarded as sensitive to a WAIS collapse, changed markedly during the global climatic cycles, but do not confirm a complete disintegration of the WAIS during the Pleistocene.
    Keywords: Adelaide Island; Amundsen Sea; Antarctic Peninsula; ANT-VI/2; ANT-XI/3; Anvers Island; Argentine Islands; AWI_Paleo; Bellingshausen Sea; Giant box corer; GKG; Gravity corer (Kiel type); Marguerite Bay; MUC; MultiCorer; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Polarstern; PS12; PS12/185; PS12/186; PS12/193; PS12/194; PS12/195; PS12/196; PS12/199; PS12/200; PS1554-1; PS1555-1; PS1557-1; PS1558-1; PS1559-1; PS1560-1; PS1563-1; PS1564-1; PS2522-1; PS2524-1; PS2525-1; PS2526-1; PS2527-1; PS2528-1; PS2529-1; PS2531-1; PS2532-2; PS2533-1; PS2534-2; PS2537-1; PS2538-1; PS2539-2; PS2540-1; PS2541-2; PS2542-1; PS2543-3; PS2544-1; PS2545-1; PS2546-1; PS2547-2; PS2547-3; PS2548-2; PS2550-2; PS2551-1; PS2553-2; PS2556-1; PS29; PS29/010; PS29/012; PS29/016; PS29/018; PS29/021; PS29/022; PS29/024; PS29/033; PS29/039; PS29/040; PS29/042; PS29/045; PS29/046; PS29/047; PS29/048; PS29/049; PS29/050; PS29/051; PS29/054; PS29/057; PS29/062; PS29/063; PS29/064; PS29/066; PS29/067; PS29/070; PS29/075; Silicon Cycling in the World Ocean; SINOPS; SL
    Type: Dataset
    Format: application/zip, 6 datasets
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  • 2
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    Unknown
    PANGAEA
    In:  Supplement to: Romero, Oscar E; Lange, Carina Beatriz; Wefer, Gerold (2002): Interannual variability (1988-1991) of siliceous phytoplankton fluxes off NW Africa. Journal of Plankton Research, 24(10), 1035-1046, https://doi.org/10.1093/plankt/24.10.1035
    Publication Date: 2024-07-01
    Description: Four years of observations (1988-1991) of downward fluxes of diatoms and silicoflagellates at a trap site off Cape Blanc (ca. 20°N, 20°W), northwest Africa, are presented. Significant variations in flux and species composition were observed as well as a marked drop in the export of biogenic opal (and diatoms) from 1988 to 1989; fluxes remained low thereafter. We hypothesize that this diminution might be related to decreased coastal upwelling intensity and offshore spreading of the typical chlorophyll filament, and/or a lesser silicate content of upwelling waters off Cape Blanc. In addition, the more seaward positioning of the mooring may have influenced the fluxes. At all times, diatoms were the most prominent contributors to the biogenic opal flux, and diatom fluxes closely paralleled total mass flux fluctuations. Although species composition varied seasonally, no significant qualitative variations were observed from year to year. In general, the dominance of neritic diatoms, such as Thalassionema nitzschioides var. nitzschioides, resting spores of Chaetoceros and Cyclotella litoralis, reflected the continuous offshore influence of coastal upwelling at the Cape Blanc trap site, with stronger intensity in spring/summer. In contrast, the occurrence of pelagic diatoms (e.g. Nitzschia bicapitata, N. interruptestriata, T. nitzschioides var. parva and Fragilariopsis doliolus), and high silicoflagellate fluxes (mainly Dictyocha messanensis) were linked to inshore transport of oceanic waters, generally in winter. With the exception of some fragile, pelagic diatoms, dominant species found in the settled material also occurred in the underlying sediments, suggesting that diatom thanatocoenosis downcore (Organisms preserved from the top to the bottom in sediment core) can be used as a reliable indicator of the intensity and persistence of the offshore spreading of coastal upwelling.
    Keywords: CB1_trap; CB2_trap; CB3_trap; CB4_trap; Center for Marine Environmental Sciences; M12/1; M16/2; M6/6; M9/4; MARUM; Meteor (1986); Trap; TRAP
    Type: Dataset
    Format: application/zip, 12 datasets
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  • 3
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    Unknown
    PANGAEA
    In:  Supplement to: Meggers, Helge; Freudenthal, Tim; Nave, Silvia Osorio; Targarona, Jordi; Abrantes, Fatima F; Helmke, Peer (2002): Assessment of geochemical and micropaleontological sedimentary parameters as proxies of surface water properties in the Canary Islands region. Deep Sea Research Part II: Topical Studies in Oceanography, 49(17), 3631-3654, https://doi.org/10.1016/S0967-0645(02)00103-0
    Publication Date: 2024-07-01
    Description: The Canary Islands region occupies a key position with respect to biogeochemical cycles, with the zonal transition from oligotrophic to nutrient-rich waters and the contribution of Saharan dust to the particle flux. We present the distribution of geochemical proxies (TOC, carbonate, d15N, d13Corg, C/N-ratio) and micropaleontological parameters (diatoms, dinoflagellates, foraminifera, pteropods), in 80 surface-sediment samples in order to characterise the influence of coastally upwelled water on the domain of the subtropical gyre. Results of the surface-sediment analyses confirmed the high biomass gradient from the coast to the open ocean inferred from satellite data of surface chlorophyll or SST. The distribution of total dinoflagellate cysts, the planktic foraminifera species Globigerina bulloides, the diatom resting spore Chaetoceros spp., and TOC concentration coincided well with the areas of strong filament production off Cape Ghir and Cape Yubi. The warm-water planktic foraminifera Globigerinoides ruber (white), the diatom Nitzschia spp., and the d15N-values showed the opposite trend with high values in the open ocean. Factor analyses on the planktic foraminifera species distribution indicated three major assemblages in the Canary Islands region that represent the present surface-water conditions from the upwelling influenced region via a mixing area towards the subtropical gyre.
    Keywords: Agadir Canyon; Canary Islands; Canary Islands Azores Gibraltar Observations; CANIGO; GeoB; GeoB4024-3; GeoB4025-2; GeoB4026-1; GeoB4029-2; GeoB4031-1; GeoB4038-2; GeoB4040-2; GeoB4057-2; GeoB4060-2; GeoB4202-1; GeoB4204-1; GeoB4205-1; GeoB4206-2; GeoB4207-1; GeoB4208-1; GeoB4209-1; GeoB4210-2; GeoB4211-1; GeoB4212-3; GeoB4213-1; GeoB4214-3; GeoB4215-1; GeoB4216-2; GeoB4217-1; GeoB4220-2; GeoB4221-2; GeoB4223-1; GeoB4225-3; GeoB4226-1; GeoB4227-1; GeoB4228-1; GeoB4229-2; GeoB4230-1; GeoB4231-2; GeoB4232-1; GeoB4233-2; GeoB4234-1; GeoB4235-1; GeoB4236-2; GeoB4237-1; GeoB4238-2; GeoB4239-1; GeoB4241-5; GeoB4242-4; GeoB4301-1; GeoB5529-1; GeoB5530-3; GeoB5531-1; GeoB5532-2; GeoB5533-1; GeoB5534-2; GeoB5535-1; GeoB5536-3; GeoB5537-2; GeoB5538-2; GeoB5539-2; GeoB5540-3; GeoB5541-2; GeoB5542-3; GeoB5546-3; GeoB5547-2; GeoB5548-3; GeoB5549-2; GeoB5550-3; GeoB5551-2; GeoB5553-2; GeoB5555-2; GeoB5556-3; GeoB5557-2; GeoB5558-2; GeoB5559-1; GeoB5560-2; GeoB5561-1; GeoB6005-1; GeoB6006-2; GeoB6007-1; GeoB6008-2; GeoB6009-1; GeoB6010-1; GeoB6011-2; Geosciences, University of Bremen; Giant box corer; GKG; M37/1; M38/1; M42/4b; M45/5a; Meteor (1986); MUC; MultiCorer; VH96/1-3; VH96/1-4; Victor Hensen
    Type: Dataset
    Format: application/zip, 2 datasets
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  • 4
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    Unknown
    PANGAEA
    In:  Supplement to: Tütken, Thomas; Eisenhauer, Anton; Wiegand, Bettina; Hansen, Bent T (2002): Glacial-interglacial cycles in Sr and Nd isotopic composition of Arctic marine sediments triggered by the Svalbard/Barents Sea ice sheet. Marine Geology, 182(3-4), 351-372, https://doi.org/10.1016/S0025-3227(01)00248-1
    Publication Date: 2024-07-01
    Description: Sr and Nd isotopic compositions of Arctic marine sediments characterize changes of sediment source regions and trace shelf-ocean particle pathways during glacial-interglacial transitions in the eastern Arctic Ocean. In the 140-ka sedimentary record of a marine core from Yermak Plateau, north of Svalbard, 87Sr/86Sr ratios and epsion-Nd values vary between 0.717 and 0.740 and 39.3 and 314.9, respectively. Sr and Nd isotopic composition both change characteristically during glacial-interglacial cycles and are correlated with the extension of the Svalbard/Barents Sea ice sheet (SBIS). The downcore variation in Sr and Nd isotopic composition indicates climatically induced changes in sediment provenance from two isotopically distinct end-members: (1) Eurasian shelf sediments as a distal source; and (2) Svalbard bedrock as a proximal source that coincide with a change in transport mechanism from sea ice to glacial ice. During glacier advance from Svalbard and intensified glacial bedrock erosion, epsion-Nd values decrease gradually to a minimum value of 314.9 due to increased input of crystalline Svalbard bedrock material. During glacial maxima, the SBIS covered the entire Barents Sea shelf and supplied increasing amounts of Eurasian shelf material to the Arctic Ocean as ice rafted detritus (IRD). Epsion-Nd values in glacial sediments reach maximum values that are comparable to the average value of modern Eurasian shelf and sea ice sediments (epsion-Nd = 310.3). This confirms ice rafting as a major sediment transport mechanism for Eurasian shelf sediments into the Arctic Ocean and trace a sediment origin from the Kara Sea/Laptev Sea shelf area. After the decay of the shelf-based SBIS, the glacial shelf sediment spikes during glacial terminations I (epsion-Nd = 310.6) and II (epsion-Nd = 310.1) epsion-Nd values rapidly decrease to values of 312.5 typical for interglacial averages. The downcore Sr isotopic composition is anticorrelated to the Nd isotopic composition, but may be also influenced by grain-size effects. In contrast, the Nd isotopic composition in clay- to silt-size fractions of one bulk sediment sample is similar to within 0.3-0.8 epsion-Nd units and seems to be a grain-size independent provenance tracer.
    Keywords: Antarctic Ocean; ARK-IV/3; GIK21533-3 PS11/412; Gravity corer (Kiel type); Polarstern; PS11; PS1533-3; SL
    Type: Dataset
    Format: application/zip, 5 datasets
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  • 5
    Publication Date: 2024-07-01
    Keywords: Calculated; Conductivity, thermal; Depth, bathymetric; DEPTH, sediment/rock; ECHO; Echosounder; EXCO II; GeoB; Geosciences, University of Bremen; Heat flow; Heat flow probe; Heat-Flow probe; HF; LATITUDE; LONGITUDE; Sample code/label; SO145/1; SO145/1_HF0003; Sonne; Tilt angle
    Type: Dataset
    Format: text/tab-separated-values, 32 data points
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  • 6
    Publication Date: 2024-07-01
    Keywords: Calculated; Conductivity, thermal; Depth, bathymetric; DEPTH, sediment/rock; ECHO; Echosounder; EXCO II; GeoB; Geosciences, University of Bremen; Heat flow; Heat flow probe; Heat-Flow probe; HF; LATITUDE; LONGITUDE; Sample code/label; SO145/1; SO145/1_HF0007; Sonne; Tilt angle
    Type: Dataset
    Format: text/tab-separated-values, 31 data points
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  • 7
    Publication Date: 2024-07-01
    Keywords: Calculated; Conductivity, thermal; Depth, bathymetric; DEPTH, sediment/rock; ECHO; Echosounder; EXCO II; GeoB; Geosciences, University of Bremen; Heat flow; Heat flow probe; Heat-Flow probe; HF; LATITUDE; LONGITUDE; Sample code/label; SO145/1; SO145/1_HF0009; Sonne; Tilt angle
    Type: Dataset
    Format: text/tab-separated-values, 28 data points
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  • 8
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    Unknown
    PANGAEA
    Publication Date: 2024-07-01
    Keywords: Color reflectance at 400 nm; Color reflectance at 410 nm; Color reflectance at 420 nm; Color reflectance at 430 nm; Color reflectance at 440 nm; Color reflectance at 450 nm; Color reflectance at 460 nm; Color reflectance at 470 nm; Color reflectance at 480 nm; Color reflectance at 490 nm; Color reflectance at 500 nm; Color reflectance at 510 nm; Color reflectance at 520 nm; Color reflectance at 530 nm; Color reflectance at 540 nm; Color reflectance at 550 nm; Color reflectance at 560 nm; Color reflectance at 570 nm; Color reflectance at 580 nm; Color reflectance at 590 nm; Color reflectance at 600 nm; Color reflectance at 610 nm; Color reflectance at 620 nm; Color reflectance at 630 nm; Color reflectance at 640 nm; Color reflectance at 650 nm; Color reflectance at 660 nm; Color reflectance at 670 nm; Color reflectance at 680 nm; Color reflectance at 690 nm; Color reflectance at 700 nm; DEPTH, sediment/rock; GeoB; GeoB6416-1; Geosciences, University of Bremen; Gravity corer (Kiel type); M46/4; Meteor (1986); SL; Spectrophotometer Minolta CM-2002
    Type: Dataset
    Format: text/tab-separated-values, 2914 data points
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  • 9
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    Unknown
    PANGAEA
    Publication Date: 2024-07-01
    Keywords: Color reflectance at 400 nm; Color reflectance at 410 nm; Color reflectance at 420 nm; Color reflectance at 430 nm; Color reflectance at 440 nm; Color reflectance at 450 nm; Color reflectance at 460 nm; Color reflectance at 470 nm; Color reflectance at 480 nm; Color reflectance at 490 nm; Color reflectance at 500 nm; Color reflectance at 510 nm; Color reflectance at 520 nm; Color reflectance at 530 nm; Color reflectance at 540 nm; Color reflectance at 550 nm; Color reflectance at 560 nm; Color reflectance at 570 nm; Color reflectance at 580 nm; Color reflectance at 590 nm; Color reflectance at 600 nm; Color reflectance at 610 nm; Color reflectance at 620 nm; Color reflectance at 630 nm; Color reflectance at 640 nm; Color reflectance at 650 nm; Color reflectance at 660 nm; Color reflectance at 670 nm; Color reflectance at 680 nm; Color reflectance at 690 nm; Color reflectance at 700 nm; DEPTH, sediment/rock; GeoB; GeoB6419-2; Geosciences, University of Bremen; Gravity corer (Kiel type); M46/4; Meteor (1986); SL; Spectrophotometer Minolta CM-2002
    Type: Dataset
    Format: text/tab-separated-values, 2759 data points
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  • 10
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    Unknown
    PANGAEA
    Publication Date: 2024-07-01
    Keywords: Central South Atlantic; Color reflectance at 400 nm; Color reflectance at 410 nm; Color reflectance at 420 nm; Color reflectance at 430 nm; Color reflectance at 440 nm; Color reflectance at 450 nm; Color reflectance at 460 nm; Color reflectance at 470 nm; Color reflectance at 480 nm; Color reflectance at 490 nm; Color reflectance at 500 nm; Color reflectance at 510 nm; Color reflectance at 520 nm; Color reflectance at 530 nm; Color reflectance at 540 nm; Color reflectance at 550 nm; Color reflectance at 560 nm; Color reflectance at 570 nm; Color reflectance at 580 nm; Color reflectance at 590 nm; Color reflectance at 600 nm; Color reflectance at 610 nm; Color reflectance at 620 nm; Color reflectance at 630 nm; Color reflectance at 640 nm; Color reflectance at 650 nm; Color reflectance at 660 nm; Color reflectance at 670 nm; Color reflectance at 680 nm; Color reflectance at 690 nm; Color reflectance at 700 nm; DEPTH, sediment/rock; GeoB; GeoB6421-2; Geosciences, University of Bremen; Gravity corer (Kiel type); M46/4; Meteor (1986); SL; Spectrophotometer Minolta CM-2002
    Type: Dataset
    Format: text/tab-separated-values, 5952 data points
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