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Climate-driven variability of the Southern Ocean CO 2 sink

  • N. Mayot
  • , C. Le Quéré
  • , C. Rödenbeck
  • , R. Bernardello
  • , L. Bopp
  • , L. M. Djeutchouang
  • , M. Gehlen
  • , L. Gregor
  • , N. Gruber
  • , J. Hauck
  • , Y. Iida
  • , T. Ilyina
  • , R. F. Keeling
  • , P. Landschützer
  • , A. C. Manning
  • , L. Patara
  • , L. Resplandy
  • , J. Schwinger
  • , R. Séférian
  • , A. J. Watson
  • R. M. Wright, J. Zeng
  • Centre for Ocean and Atmospheric Sciences
  • University of East Anglia
  • Max Planck Institute for Biogeochemistry
  • Earth Sciences Department
  • Earth Sciences
  • Dept. of Oceanography
  • University of Cape Town
  • Council for Scientific and Industrial Research
  • Université Versailles-Saint Quentin
  • Environmental Physics Group
  • ETH Zurich
  • Helmholtz Centre for Polar and Marine Sciences
  • Atmosphere and Ocean Department
  • Japan Meteorological Agency
  • Max Planck Institute for Meteorology
  • Scripps Institution of Oceanography
  • Flanders Marine Institute (VLIZ)
  • GEOMAR Helmholtz Centre for Ocean Research Kiel
  • Princeton University
  • Bjerknes Centre for Climate Research
  • NORCE Norwegian Research Centre AS
  • Université Paul Sabatier
  • College of Life and Environmental Sciences
  • University of Exeter
  • Earth System Division
  • National Institute for Environmental Studies of Japan

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

23 Citations (Scopus)

Résumé

The Southern Ocean is a major sink of atmospheric CO 2, but the nature and magnitude of its variability remains uncertain and debated. Estimates based on observations suggest substantial variability that is not reproduced by process-based ocean models, with increasingly divergent estimates over the past decade. We examine potential constraints on the nature and magnitude of climate-driven variability of the Southern Ocean CO 2 sink from observation-based air-sea O 2 fluxes. On interannual time scales, the variability in the air-sea fluxes of CO 2 and O 2 estimated from observations is consistent across the two species and positively correlated with the variability simulated by ocean models. Our analysis suggests that variations in ocean ventilation related to the Southern Annular Mode are responsible for this interannual variability. On decadal time scales, the existence of significant variability in the air-sea CO 2 flux estimated from observations also tends to be supported by observation-based estimates of O 2 flux variability. However, the large decadal variability in air-sea CO 2 flux is absent from ocean models. Our analysis suggests that issues in representing the balance between the thermal and non-thermal components of the CO 2 sink and/or insufficient variability in mode water formation might contribute to the lack of decadal variability in the current generation of ocean models. This article is part of a discussion meeting issue 'Heat and carbon uptake in the Southern Ocean: the state of the art and future priorities'.

langue originaleAnglais
Numéro d'article20220055
journalPhilosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences
Volume381
Numéro de publication2249
Les DOIs
étatPublié - 26 juin 2023

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  1. SDG 13 - Action climatique
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