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  • 104-642B; AGE; Cassidulina teretis, δ13C; Cassidulina teretis, δ18O; Corrected; DEPTH, sediment/rock; Depth, top/min; DRILL; Drilling/drill rig; DSDP/ODP/IODP sample designation; Globigerina bulloides, δ13C; Globigerina bulloides, δ18O; Joides Resolution; Leg104; Mass spectrometer, Finnigan, MAT 252; Mass spectrometer, Finnigan, MAT 253; Norwegian Sea; Sample code/label  (1)
  • 138-849; AGE; Alkenone, unsaturation index UK'37; Calculated; COMPCORE; Composite Core; DEPTH, sediment/rock; DSDP/ODP/IODP sample designation; Joides Resolution; Leg138; North Pacific Ocean; Ocean Drilling Program; ODP; Sample code/label; Sea surface temperature, annual mean  (1)
  • 145-882; 177-1090; Agulhas Ridge; ANT-XI/2; AWI_Paleo; COMPCORE; Composite Core; International Polar Year (2007-2008); IPY; Joides Resolution; KL; Leg145; Leg177; North Pacific Ocean; Ocean Drilling Program; ODP; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Piston corer (BGR type); Polarstern; PS2489-2; PS28; PS28/256; South Atlantic Ocean  (1)
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  • 1
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    Unknown
    PANGAEA
    In:  Supplement to: Risebrobakken, Bjørg; Andersson, Carin; De Schepper, Stijn; McClymont, Erin L (2016): Low-frequency Pliocene climate variability in the eastern Nordic Seas. Paleoceanography, 31(9), 1154-1175, https://doi.org/10.1002/2015PA002918
    Publication Date: 2023-06-27
    Description: The Pliocene (5.3-2.6 Ma) is often described as a relatively stable climatic period, with warm temperatures characterizing high latitudes. New suborbital resolved stable isotope records from ODP Hole 642B in the Eastern Nordic Seas document that the Pliocene was not a stable period characterized by one climate. Rather, seven distinct climate phases, each lasting between 150,000 and 400,000 years, are identified and characterized in the time interval 5.1-3.1 Ma. Four of the transitions between the defined climate phases occurred close to an eccentricity minimum and a minimum in amplitude of change for Northern Hemisphere summer insolation, while two occurred around an eccentricity maximum and a maximum in amplitude in insolation change. Hence, a low frequency response of the Nordic Seas to insolation forcing is indicated. In addition, paleogeographic and related paleoceanographic changes, expansion of the Arctic sea ice cover and onset of NHG were important factors behind the evolving Pliocene low frequency variability in the eastern Nordic Seas. It is likely that the identified climate phases and transitions are important beyond the Nordic Seas, due to their association with changes to both insolation and paleogeography. Also, a strong and variable degree of diagenetic calcite overgrowth is documented for the planktic foraminifera, especially influencing the planktic d18O results; the absolute values and amplitude of change cannot be taken at face value.
    Keywords: 104-642B; AGE; Cassidulina teretis, δ13C; Cassidulina teretis, δ18O; Corrected; DEPTH, sediment/rock; Depth, top/min; DRILL; Drilling/drill rig; DSDP/ODP/IODP sample designation; Globigerina bulloides, δ13C; Globigerina bulloides, δ18O; Joides Resolution; Leg104; Mass spectrometer, Finnigan, MAT 252; Mass spectrometer, Finnigan, MAT 253; Norwegian Sea; Sample code/label
    Type: Dataset
    Format: text/tab-separated-values, 6507 data points
    Location Call Number Limitation Availability
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  • 2
    Publication Date: 2024-01-09
    Keywords: 138-849; AGE; Alkenone, unsaturation index UK'37; Calculated; COMPCORE; Composite Core; DEPTH, sediment/rock; DSDP/ODP/IODP sample designation; Joides Resolution; Leg138; North Pacific Ocean; Ocean Drilling Program; ODP; Sample code/label; Sea surface temperature, annual mean
    Type: Dataset
    Format: text/tab-separated-values, 555 data points
    Location Call Number Limitation Availability
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  • 3
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    Unknown
    PANGAEA
    In:  Supplement to: Martínez‐García, Alfredo; Rosell-Melé, Antoni; McClymont, Erin L; Gersonde, Rainer; Haug, Gerald H (2010): Subpolar Link to the Emergence of the Modern Equatorial Pacific Cold Tongue. Science, 328(5985), 1550-1553, https://doi.org/10.1126/Science.1184480
    Publication Date: 2024-06-26
    Description: The cold upwelling 'tongue' of the eastern equatorial Pacific is a central energetic feature of the ocean, dominating both the mean state and temporal variability of climate in the tropics and beyond. Recent evidence for the development of the modern cold tongue during the Pliocene-Pleistocene transition has been explained as the result of extratropical cooling that drove a shoaling of the thermocline. We have found that the sub-Antarctic and sub-Arctic regions underwent substantial cooling nearly synchronous to the cold tongue development, thereby providing support for this hypothesis. In addition, we show that sub-Antarctic climate changed in its response to Earth's orbital variations, from a subtropical to a subpolar pattern, as expected if cooling shrank the warm-water sphere of the ocean and thus contracted the subtropical gyres.
    Keywords: 145-882; 177-1090; Agulhas Ridge; ANT-XI/2; AWI_Paleo; COMPCORE; Composite Core; International Polar Year (2007-2008); IPY; Joides Resolution; KL; Leg145; Leg177; North Pacific Ocean; Ocean Drilling Program; ODP; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Piston corer (BGR type); Polarstern; PS2489-2; PS28; PS28/256; South Atlantic Ocean
    Type: Dataset
    Format: application/zip, 3 datasets
    Location Call Number Limitation Availability
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