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  • Other Sources  (4)
  • American Institute of Physics (AIP)
  • Institut für Meereskunde
  • Nature Publishing Group
  • Nature Publishing Group (NPG)
  • Public Library of Science
  • 2010-2014
  • 2000-2004  (4)
  • 1990-1994
  • 1985-1989
  • 2001  (4)
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  • 2010-2014
  • 2000-2004  (4)
  • 1990-1994
  • 1985-1989
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  • 1
    Publication Date: 2017-01-04
    Description: Tropical South America is one of the three main centres of the global, zonal overturning circulation of the equatorial atmosphere (generally termed the 'Walker' circulation1). Although this area plays a key role in global climate cycles, little is known about South American climate history. Here we describe sediment cores and down-hole logging results of deep drilling in the Salar de Uyuni, on the Bolivian Altiplano, located in the tropical Andes. We demonstrate that during the past 50,000 years the Altiplano underwent important changes in effective moisture at both orbital (20,000-year) and millennial timescales. Long-duration wet periods, such as the Last Glacial Maximum—marked in the drill core by continuous deposition of lacustrine sediments—appear to have occurred in phase with summer insolation maxima produced by the Earth's precessional cycle. Short-duration, millennial events correlate well with North Atlantic cold events, including Heinrich events 1 and 2, as well as the Younger Dryas episode. At both millennial and orbital timescales, cold sea surface temperatures in the high-latitude North Atlantic were coeval with wet conditions in tropical South America, suggesting a common forcing.
    Type: Article , PeerReviewed
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  • 2
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    Institut für Meereskunde
    In:  Berichte aus dem Institut für Meereskunde an der Christian-Albrechts-Universität Kiel, 321 . Institut für Meereskunde, Kiel, Germany, 137 pp.
    Publication Date: 2017-01-03
    Type: Report , NonPeerReviewed
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  • 3
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    Nature Publishing Group
    In:  Nature, 412 . pp. 605-606.
    Publication Date: 2017-02-28
    Description: One way of accounting for lowered atmospheric carbon dioxide concentrations during Pleistocene glacial periods is by invoking the Antarctic stratification hypothesis, which links the reduction in CO2 to greater stratification of ocean surface waters around Antarctica1, 2. As discussed by Sigman and Boyle3, this hypothesis assumes that increased stratification in the Antarctic zone (Fig. 1) was associated with reduced upwelling of deep waters around Antarctica, thereby allowing CO2 outgassing to be suppressed by biological production while also allowing biological production to decline, which is consistent with Antarctic sediment records4. We point out here, however, that the response of ocean eddies to increased Antarctic stratification can be expected to increase, rather than reduce, the upwelling rate of deep waters around Antarctica. The stratification hypothesis may have difficulty in accommodating eddy feedbacks on upwelling within the constraints imposed by reconstructions of winds and Antarctic-zone productivity in glacial periods.
    Type: Article , PeerReviewed
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  • 4
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    Nature Publishing Group
    In:  Nature, 410 (6827). pp. 427-428.
    Publication Date: 2017-02-28
    Description: To what extent was the Arctic Ocean glaciated in the past? Heavily, according to data, gathered by a submarine, which show considerable ice-scouring of topography in parts of the ocean basin
    Type: Article , PeerReviewed
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