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Orbital forcing of the East Antarctic ice sheet during the Pliocene and Early Pleistocene

  • M. O. Patterson*
  • , R. McKay
  • , T. Naish
  • , C. Escutia
  • , F. J. Jimenez-Espejo
  • , M. E. Raymo
  • , S. R. Meyers
  • , L. Tauxe
  • , H. Brinkhuis
  • , A. Klaus
  • , A. Fehr
  • , J. A P Bendle
  • , P. K. Bijl
  • , S. M. Bohaty
  • , S. A. Carr
  • , R. B. Dunbar
  • , J. A. Flores
  • , J. J. Gonzalez
  • , T. G. Hayden
  • , M. Iwai
  • K. Katsuki, G. S. Kong, M. Nakai, M. P. Olney, S. Passchier, S. F. Pekar, J. Pross, C. R. Riesselman, U. Röhl, T. Sakai, P. K. Shrivastava, C. E. Stickley, S. Sugasaki, S. Tuo, T. Van De Flierdt, K. Welsh, T. Williams, M. Yamane
*Corresponding author for this work
  • Victoria University of Wellington
  • CSIC
  • University of Birmingham
  • Heidelberg University 
  • Japan Agency for Marine-Earth Science and Technology
  • Columbia University
  • University of Wisconsin-Madison
  • Scripps Research Institute
  • Texas A&M University
  • RWTH Aachen University
  • University of Southampton
  • Colorado School of Mines
  • Stanford University
  • Universidad de Salamanca
  • Instituto Andaluz de Ciencias de la Tierra
  • Western Michigan University
  • Kochi University
  • Korea Institute of Geoscience and Mineral Resources
  • Daito Bunka University
  • University of South Florida
  • Montclair State University
  • School of Earth and Environmental Sciences (SEES)
  • University of Otago
  • Utsunomiya University
  • Geological Survey of India
  • Evolution Applied Limited
  • The University of Tokyo
  • Tongji University
  • Imperial College London
  • University of Queensland
  • University of Bremen

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

The Pliocene and Early Pleistocene, between 5.3 and 0.8 million years ago, span a transition from a global climate state that was 2-3 °C warmer than present with limited ice sheets in the Northern Hemisphere to one that was characterized by continental-scale glaciations at both poles. Growth and decay of these ice sheets was paced by variations in the Earth's orbit around the Sun. However, the nature of the influence of orbital forcing on the ice sheets is unclear, particularly in light of the absence of a strong 20,000-year precession signal in geologic records of global ice volume and sea level. Here we present a record of the rate of accumulation of iceberg-rafted debris oshore from the East Antarctic ice sheet, adjacent to the Wilkes Subglacial Basin, between 4.3 and 2.2 million years ago. We infer that maximum iceberg debris accumulation is associated with the enhanced calving of icebergs during ice-sheet margin retreat. In the warmer part of the record, between 4.3 and 3.5 million years ago, spectral analyses show a dominant periodicity of about 40,000 years. Subsequently, the powers of the 100,000-year and 20,000-year signals strengthen. We suggest that, as the Southern Ocean cooled between 3.5 and 2.5 million years ago, the development of a perennial sea-ice field limited the oceanic forcing of the ice sheet. After this threshold was crossed, substantial retreat of the East Antarctic ice sheet occurred only during austral summer insolation maxima, as controlled by the precession cycle.

Original languageEnglish
Pages (from-to)841-847
Number of pages7
JournalNature Geoscience
Volume7
Issue number11
DOIs
Publication statusPublished - 26 Oct 2014

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

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