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Atmospheric Carbon Dioxide Variability in the Community Earth System Model: Evaluation and Transient Dynamics during the Twentieth and Twenty-First Centuries.

Authors :
Keppel-Aleks, Gretchen
Randerson, James T.
Lindsay, Keith
Stephens, Britton B.
Keith Moore, J.
Doney, Scott C.
Thornton, Peter E.
Mahowald, Natalie M.
Hoffman, Forrest M.
Sweeney, Colm
Tans, Pieter P.
Wennberg, Paul O.
Wofsy, Steven C.
Source :
Journal of Climate. Jul2013, Vol. 26 Issue 13, p4447-4475. 29p. 6 Charts, 15 Graphs, 2 Maps.
Publication Year :
2013

Abstract

Changes in atmospheric CO2 variability during the twenty-first century may provide insight about ecosystem responses to climate change and have implications for the design of carbon monitoring programs. This paper describes changes in the three-dimensional structure of atmospheric CO2 for several representative concentration pathways (RCPs 4.5 and 8.5) using the Community Earth System Model-Biogeochemistry (CESM1-BGC). CO2 simulated for the historical period was first compared to surface, aircraft, and column observations. In a second step, the evolution of spatial and temporal gradients during the twenty-first century was examined. The mean annual cycle in atmospheric CO2 was underestimated for the historical period throughout the Northern Hemisphere, suggesting that the growing season net flux in the Community Land Model (the land component of CESM) was too weak. Consistent with weak summer drawdown in Northern Hemisphere high latitudes, simulated CO2 showed correspondingly weak north-south and vertical gradients during the summer. In the simulations of the twenty-first century, CESM predicted increases in the mean annual cycle of atmospheric CO2 and larger horizontal gradients. Not only did the mean north-south gradient increase due to fossil fuel emissions, but east-west contrasts in CO2 also strengthened because of changing patterns in fossil fuel emissions and terrestrial carbon exchange. In the RCP8.5 simulation, where CO2 increased to 1150 ppm by 2100, the CESM predicted increases in interannual variability in the Northern Hemisphere midlatitudes of up to 60% relative to present variability for time series filtered with a 2-10-yr bandpass. Such an increase in variability may impact detection of changing surface fluxes from atmospheric observations. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
08948755
Volume :
26
Issue :
13
Database :
Academic Search Index
Journal :
Journal of Climate
Publication Type :
Academic Journal
Accession number :
88906980
Full Text :
https://doi.org/10.1175/JCLI-D-12-00589.1