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Empirical estimates of regional carbon budgets imply reduced global soil heterotrophic respiration

pmid: 34691569
pmc: PMC8288404
Abstract Resolving regional carbon budgets is critical for informing land-based mitigation policy. For nine regions covering nearly the whole globe, we collected inventory estimates of carbon-stock changes complemented by satellite estimates of biomass changes where inventory data are missing. The net land–atmospheric carbon exchange (NEE) was calculated by taking the sum of the carbon-stock change and lateral carbon fluxes from crop and wood trade, and riverine-carbon export to the ocean. Summing up NEE from all regions, we obtained a global ‘bottom-up’ NEE for net land anthropogenic CO2 uptake of –2.2 ± 0.6 PgC yr−1 consistent with the independent top-down NEE from the global atmospheric carbon budget during 2000–2009. This estimate is so far the most comprehensive global bottom-up carbon budget accounting, which set up an important milestone for global carbon-cycle studies. By decomposing NEE into component fluxes, we found that global soil heterotrophic respiration amounts to a source of CO2 of 39 PgC yr−1 with an interquartile of 33–46 PgC yr−1—a much smaller portion of net primary productivity than previously reported.
- Vrije Universiteit Amsterdam Netherlands
- California Institute of Technology United States
- Stanford University United States
- Université Libre de Bruxelles Belgium
- CEA LETI France
[SDE] Environmental Sciences, Atmospheric Science, Atmospheric sciences, 791, 550, Climate Change and Variability Research, Oceanography, Carbon sink, Atmospheric Aerosols and their Impacts, Soil water, SDG 13 - Climate Action, Carbon fibers, Climate change, soil carbon, Global and Planetary Change, Primary production, Ecology, Géochimie, Composite number, human appropriation of ecosystems, Geology, Carbon cycle, Soil respiration, Soil carbon, Earth and Planetary Sciences, Algorithm, Emissions, [SDE]Environmental Sciences, Physical Sciences, Carbon flux, 330, 530 Physics, Greenhouse gas, 333, Environmental science, carbon budget, SDG 17 - Partnerships for the Goals, FOS: Mathematics, Biology, Ecosystem, Soil science, FOS: Earth and related environmental sciences, FOS: Biological sciences, Global Methane Emissions and Impacts, Environmental Science, Earth Sciences, Mathematics
[SDE] Environmental Sciences, Atmospheric Science, Atmospheric sciences, 791, 550, Climate Change and Variability Research, Oceanography, Carbon sink, Atmospheric Aerosols and their Impacts, Soil water, SDG 13 - Climate Action, Carbon fibers, Climate change, soil carbon, Global and Planetary Change, Primary production, Ecology, Géochimie, Composite number, human appropriation of ecosystems, Geology, Carbon cycle, Soil respiration, Soil carbon, Earth and Planetary Sciences, Algorithm, Emissions, [SDE]Environmental Sciences, Physical Sciences, Carbon flux, 330, 530 Physics, Greenhouse gas, 333, Environmental science, carbon budget, SDG 17 - Partnerships for the Goals, FOS: Mathematics, Biology, Ecosystem, Soil science, FOS: Earth and related environmental sciences, FOS: Biological sciences, Global Methane Emissions and Impacts, Environmental Science, Earth Sciences, Mathematics
