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Earth System Dynamics (ESD)
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Historical and future contributions of inland waters to the Congo Basin carbon balance

المساهمات التاريخية والمستقبلية للمياه الداخلية في توازن الكربون في حوض الكونغو
Authors: A. Hastie; A. Hastie; R. Lauerwald; R. Lauerwald; R. Lauerwald; P. Ciais; F. Papa; +2 Authors

Historical and future contributions of inland waters to the Congo Basin carbon balance

Abstract

Abstract. As the second largest area of contiguous tropical rainforest and second largest river basin in the world, the Congo Basin has a significant role to play in the global carbon (C) cycle. For the present day, it has been shown that a significant proportion of global terrestrial net primary productivity (NPP) is transferred laterally to the land–ocean aquatic continuum (LOAC) as dissolved CO2, dissolved organic carbon (DOC), and particulate organic carbon (POC). Whilst the importance of LOAC fluxes in the Congo Basin has been demonstrated for the present day, it is not known to what extent these fluxes have been perturbed historically, how they are likely to change under future climate change and land use scenarios, and in turn what impact these changes might have on the overall C cycle of the basin. Here we apply the ORCHILEAK model to the Congo Basin and estimate that 4 % of terrestrial NPP (NPP = 5800±166 Tg C yr−1) is currently exported from soils and vegetation to inland waters. Further, our results suggest that aquatic C fluxes may have undergone considerable perturbation since 1861 to the present day, with aquatic CO2 evasion and C export to the coast increasing by 26 % (186±41 to 235±54 Tg C yr−1) and 25 % (12±3 to 15±4 Tg C yr−1), respectively, largely because of rising atmospheric CO2 concentrations. Moreover, under climate scenario RCP6.0 we predict that this perturbation could continue; over the full simulation period (1861–2099), we estimate that aquatic CO2 evasion and C export to the coast could increase by 79 % and 67 %, respectively. Finally, we show that the proportion of terrestrial NPP lost to the LOAC could increase from approximately 3 % to 5 % from 1861–2099 as a result of increasing atmospheric CO2 concentrations and climate change. However, our future projections of the Congo Basin C fluxes in particular need to be interpreted with some caution due to model limitations. We discuss these limitations, including the wider challenges associated with applying the current generation of land surface models which ignore nutrient dynamics to make future projections of the tropical C cycle, along with potential next steps.

Countries
Belgium, United Kingdom, France
Keywords

Biomass (ecology), 550, Climate Change and Variability Research, QE500-639.5, 551, Oceanography, Marine Biogeochemistry and Ecosystem Dynamics, Importance of Mangrove Ecosystems in Coastal Protection, Climate change, [SDU.OCEAN]Sciences of the Universe [physics]/Ocean, Atmosphere, QE1-996.5, Global and Planetary Change, Ecology, Primary production, Geography, Q, Total organic carbon, Hydrology (agriculture), Geology, Oceanic Carbon Cycle, Carbon cycle, [SDU.ENVI] Sciences of the Universe [physics]/Continental interfaces, environment, Structural basin, Earth and Planetary Sciences, Physical Sciences, environment, Cartography, 570, Rainforest, Drainage basin, Science, Environmental science, [SDU.ENVI]Sciences of the Universe [physics]/Continental interfaces, environment, Biology, Ecosystem, [SDU.OCEAN]Sciences of the Universe [physics]/Ocean, Atmosphere, [SDU.OCEAN] Sciences of the Universe [physics]/Ocean, Atmosphere, Physique, Paleontology, FOS: Earth and related environmental sciences, Astronomie, Dynamic and structural geology, Geotechnical engineering, FOS: Biological sciences, Environmental Science, [SDU.ENVI]Sciences of the Universe [physics]/Continental interfaces, Dissolved organic carbon

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citations
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
15
Top 10%
Average
Top 10%
Green
gold