Open Access
Issue
Climatologie
Volume 23, 2025
Article Number 1
Number of page(s) 11
DOI https://doi.org/10.1051/climat/202523001
Published online 16 February 2026
  • Caillet J., Jourdain N. C., Mathiot P., Hellmer H. H., Mouginot J., 2023. Drivers and reversibility of abrupt ocean state transitions in the Amundsen Sea, Antarctica. Journal of Geophysical Research: Oceans, 128, 1, e2022JC018929. [Google Scholar]
  • Caillet J., 2024. Contribution de la calotte Antarctique au niveau des mers du 19ème au 21ème siècle et liens avec le forçage anthropique. PhD thesis, Université Grenoble Alpes. [Google Scholar]
  • Caillet J., Jourdain N. C., Mathiot P., Gillet-Chaulet F., Urruty B., Burgard C., Amory C., Chekki M., Kittel C., 2025. Uncertainty in the projected Antarctic contribution to sea level due to internal climate variability. Earth System Dynamics, 16, 1, 293–315. [Google Scholar]
  • Casado M., Hébert R., Faranda D., Landais A., 2023. The quandary of detecting the signature of climate change in Antarctica. Nature Climate Change, 13, 10, 1082–1088. [Google Scholar]
  • Christian J. E., Robel A. A., Catania G., 2022. A probabilistic framework for quantifying the role of anthropogenic climate change in marine-terminating glacier retreats. The Cryosphere, 16, 7, 2725–2743. [Google Scholar]
  • Dalaiden Q., Abram N., Goosse H., 2024. Tropical Pacific variability and anthropogenic forcing are the key drivers of the West Antarctic atmospheric circulation variability over the 20th century. Technical report, Copernicus Meetings, 2023. [Google Scholar]
  • England M. R., 2021. Are multi-decadal fluctuations in Arctic and Antarctic surface temperatures a forced response to anthropogenic emissions or part of internal climate variability? Geophysical Research Letters, 48(6):e2020GL090631. [Google Scholar]
  • Eyring V., Bony S., Meehl G. A., Senior C. A., Stevens B., Stouffer R. J., Taylor K. E., 2016. Overview of the Coupled Model Intercomparison Project Phase 6 (CMIP6) experimental design and organization. Geoscientific Model Development, 9, 5, 1937–1958. [Google Scholar]
  • Hillenbrand C.-D., Smith J. A., Hodell D. A., Greaves M., Poole C. R., Kender S., Williams M., Andersen T. J., Jernas P. E., Elderfield H. et al., 2017. West Antarctic ice sheet retreat driven by Holocene warm water incursions. Nature, 547, 7661, 43–48. [Google Scholar]
  • Holland P. R., O’Connor G. K., Bracegirdle T. J., Dutrieux P., Naughten K. A., Steig E. J., Schneider D. P., Jenkins A., Smith J. A., 2022. Anthropogenic and internal drivers of wind changes over the Amundsen Sea, West Antarctica, during the 20th and 21st centuries. The Cryosphere, 16, 12, 5085–5105. [Google Scholar]
  • Jourdain N. C., 2024. Les plateformes de glace d’Antarctique : De leur découverte à leur désintégration. La Météorologie, 127, 50–56. [Google Scholar]
  • Larter R. D., Anderson J. B., Graham A. G. C., Gohl K., Hillenbrand C. D., Jakobsson M., Johnson J. S., Kuhn G., Nitsche F. O., Smith J. A., Witus A. E., Bentley M. J., Dowdeswell J. A., Ehrmann W., Klages J. P., Lindow J., Cofaigh C. O., Spiegel C., 2014. Reconstruction of changes in the Amundsen Sea and Bellingshausen Sea sector of the West Antarctic ice sheet since the Last Glacial Maximum. Quaternary Science Reviews, 100, 55–86. [Google Scholar]
  • Masson-Delmotte V., Zhai P., Pirani A., Connors S. L., Péan C., Berger S., Caud N., Chen Y., Goldfarb L., Gomis M. I. et al., 2021. Climate change 2021: the physical science basis. Contribution of working group I to the sixth assessment report of the intergovernmental panel on climate change, 2, 13. [Google Scholar]
  • O’Connor G. K., Holland P. R., Steig E. J., Dutrieux P., Hakim G. J., 2023. Characteristics and rarity of the strong 1940s westerly wind event over the Amundsen Sea, West Antarctica. The Cryosphere, 17(10), 4399–4420. [Google Scholar]
  • Reed B., Mattias Green J. A., Jenkins A., Hilmar Gudmundsson G., 2024. Recent irreversible retreat phase of Pine Island glacier. Nature Climate Change, 14, 1, 75–81. [Google Scholar]
  • Seroussi H., Verjans V., Nowicki S., Payne A. J., Goelzer H., Lipscomb W. H., Ouchi A. A., Agosta C., Albrecht T., Asay-Davis X. et al., 2023. Insights on the vulnerability of Antarctic glaciers from the ISMIP6 ice sheet model ensemble and associated uncertainty. The Cryosphere, 17, 5197–5217. [Google Scholar]
  • Shepherd A. et Nowicki S., 2017. Improvements in ice-sheet sea-level projections. Nature Climate Change, 7(10), 672–674. [Google Scholar]
  • Smith J. A., Andersen T. J., Shortt M., Gaffney A. M., Truffer M., Stanton T. P., Bindschadler R., Dutrieux P., Jenkins A., Hillenbrand CX.-D. et al., 2017. Sub-ice-shelf sediments record history of twentieth-century retreat of pine island glacier. Nature, 541, 7635, 77–80. [Google Scholar]

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