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A Top-Down View of Global and Regional Carbon Budgets From an Ensemble of Atmospheric Inversions

  • A. M. van der Woude
  • , I. T. Luijkx
  • , R. J. de Kok
  • , W. Peters
  • , F. Chevallier
  • , C. Rödenbeck
  • , P. Ciais
  • , N. Chandra
  • , K. Wang
  • , R. Janardanan
  • , H. van Asperen
  • , A. Bastos
  • , A. van den Berg
  • , A. A. Bloom
  • , S. Botía
  • , K. Bowman
  • , J. G. Canadell
  • , R. A.F. de Souza
  • , C. Q. Dias-Junior
  • , L. Feng
  • P. Friedlingstein, L. V. Gatti, E. Gloor, K. Ishijima, F. Jiang, Z. Jin, W. Ju, X. Lan, J. Liu, Z. Liu, T. Machida, S. Maksyutov, A. C. Manning, A. Martinez, G. A. Martins, K. McKain, J. B. Miller, L. Nayagam, Y. Niwa, P. I. Palmer, P. K. Patra, P. A. Pickers, B. Poulter, B. B. Stephens, C. Sweeney, S. Wofsy, Z. Wu, D. Yang, J. Yun, N. Zeng
  • Wageningen University & Research
  • Carbon Portal
  • Université Versailles St-Quentin
  • Max Planck Institute for Biogeochemistry
  • Japan Agency for Marine-Earth Science and Technology
  • Peking University
  • National Institute for Environmental Studies of Japan
  • Leipzig University
  • California Institute of Technology
  • CSIRO
  • Universidade do Estado do Amazonas
  • Federal Institute of Pará
  • University of Edinburgh
  • University of Exeter
  • École normale supérieure
  • Instituto Nacional de Pesquisas Espaciais
  • University of Leeds
  • Japan Meteorological Agency
  • Nanjing University
  • Chinese Academy of Sciences
  • National Oceanic and Atmospheric Administration
  • University of Colorado Boulder
  • CMA Key Open Laboratory of Transforming Climate Resources to Economy
  • Hiroshima University
  • University of East Anglia
  • Rochester Institute of Technology
  • Fundação Amazônica de Defesa da Atmosfera
  • National Center for Atmospheric Research
  • Harvard University
  • CAS - Institute of Atmospheric Physics
  • University of Maryland, College Park

Research output: Contribution to journalArticlepeer-review

Abstract

Atmospheric inversions provide surface CO2 flux estimates based on in situ observed atmospheric CO2 mole fractions or satellite-based column average CO2 (XCO2). Here, we provide a detailed assessment of 14 atmospheric CO2 inversions included in the Global Carbon Budget (GCB2024). We develop tools to further assess and use these inversions in global and regional carbon cycle studies including the GCB and the REgional Carbon Cycle Assessment and Processes (RECCAP2) initiative. We show that the global atmospheric CO2 growth rate and its interannual variability are reproduced well by all inversions. In contrast to bottom-up models, inversions provide carbon flux estimates directly constrained by observations. Our ensemble mean estimates of the global sinks for the period 2015–2023 are −1.41 (Formula presented.) 0.55 PgC yr−1 for the net land sink (including land-use change emissions) and −2.97 (Formula presented.) 0.55 PgC yr−1 for the global net ocean sink (uncertainties reported as (Formula presented.) across inversions; estimates include fossil fuel and river flux adjustments). On regional scales, we find significant spread in flux estimates between inversions across regions, and we present criteria and metrics to derive flux-observation relation constraints or subselect ensembles of inversions based on independent observations. Furthermore, we use the atmospheric inversions to assess the atmospheric growth rate of CO2. We show that the factor used to convert annual observation-based growth rates to net fluxes is variable over time as a result of atmospheric mixing. Finally, we propose guidelines on how to use the inverse results in global and regional carbon budget studies by the wider carbon cycle community.

Original languageEnglish
Article numbere2025GB008779
JournalGlobal Biogeochemical Cycles
Volume40
Issue number6
DOIs
StatePublished - Jun 2026
Externally publishedYes

Keywords

  • atmospheric CO
  • carbon budget
  • inversions
  • land carbon sink
  • ocean carbon sink
  • regional CO flux estimates

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