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  Impacts of land cover and climate data selection on understanding terrestrial carbon dynamics and the CO2 airborne fraction

Poulter, B., Frank, D. C., Hodson, E. L., & Zimmermann, N. E. (2011). Impacts of land cover and climate data selection on understanding terrestrial carbon dynamics and the CO2 airborne fraction. Biogeosciences, 8, 2027-2026. doi:10.5194/bg-8-2027-2011.

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Item Permalink: http://hdl.handle.net/11858/00-001M-0000-0014-4F51-1 Version Permalink: http://hdl.handle.net/11858/00-001M-0000-0024-5D99-4
Genre: Journal Article

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http://dx.doi.org/10.5194/bg-8-2027-2011 (Publisher version)
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Poulter, B.1, Author
Frank, D. C., Author
Hodson, E. L., Author
Zimmermann, N. E., Author
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1External Organizations, ou_persistent22              

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 Abstract: Terrestrial and oceanic carbon cycle processes remove 55% of global carbon emissions, with the remaining 45 %, known as the “airborne fraction”, accumulating in the atmosphere. The long-term dynamics of the component fluxes contributing to the airborne fraction are challenging to interpret, but important for informing fossil-fuel emission targets and for monitoring the trends of biospheric carbon fluxes. Climate and land-cover forcing data for terrestrial ecosystem models are a largely unexplored source of uncertainty in terms of their contribution to understanding airborne fraction dynamics. Here we present results using a single dynamic global vegetation model forced by an ensemble experiment of climate (CRU, ERA-Interim, NCEP-DOE II), and diagnostic land-cover datasets (GLC2000, GlobCover, MODIS). For the averaging period 1996–2005, forcing uncertainties resulted in a large range of simulated global carbon fluxes, up to 13% for net primary production (52.4 to 60.2 Pg C a−1) and 19% for soil respiration (44.2 to 54.8 Pg C a−1). The sensitivity of contemporary global terrestrial carbon fluxes to climate strongly depends on forcing data (1.2–5.9 Pg C K−1 or 0.5 to 2.7 ppmv CO2 K−1), but weakening carbon sinks in sub-tropical regions and strengthening carbon sinks in northern latitudes are found to be robust. The climate and land-cover combination that best correlate to the inferred carbon sink, and with the lowest residuals, is from observational data (CRU) rather than reanalysis climate data and with land-cover categories that have more stringent criteria for forest cover (MODIS). Since 1998, an increasing positive trend in residual error from bottom-up accounting of global sinks and sources (from 0.03 (1989–2005) to 0.23 Pg C a−1 (1998–2005)) suggests that either modeled drought sensitivity of carbon fluxes is too high, or that carbon emissions from net land-cover change is too large.

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 Dates: 2011-07-152011-08-01
 Publication Status: Published online
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 Identifiers: Other: BPR032
DOI: 10.5194/bg-8-2027-2011
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Title: Biogeosciences
  Other : Biogeosciences
Source Genre: Journal
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Publ. Info: Katlenburg-Lindau, Germany : Copernicus GmbH on behalf of the European Geosciences Union
Pages: - Volume / Issue: 8 Sequence Number: - Start / End Page: 2027 - 2026 Identifier: ISSN: 1726-4170
CoNE: https://pure.mpg.de/cone/journals/resource/111087929276006