Atmospheric inversion of the surface CO2 flux with 13CO2 constraint
Item
Title (Dublin Core)
Atmospheric inversion of the surface CO2 flux with 13CO2 constraint
Description (Dublin Core)
Observations of <sup>13</sup>CO<sub>2</sub> at 73 sites compiled in the GLOBALVIEW database are used for an additional constraint in a global atmospheric inversion of the surface CO<sub>2</sub> flux using CO<sub>2</sub> observations at 210 sites for the 2002–2004 period for 39 land regions and 11 ocean regions. This constraint is implemented using the <sup>13</sup>CO<sub>2</sub>/CO<sub>2</sub> flux ratio modeled with a terrestrial ecosystem model and an ocean model. These models simulate <sup>13</sup>CO<sub>2</sub> discrimination rates of terrestrial photosynthesis and respiration and ocean-atmosphere diffusion processes. In both models, the <sup>13</sup>CO<sub>2</sub> disequilibrium between fluxes to and from the atmosphere is considered due to the historical change in atmospheric <sup>13</sup>CO<sub>2</sub> concentration. For the 2002–2004 period, the <sup>13</sup>CO<sub>2</sub> constraint on the inversion increases the total land carbon sink from 3.40 to 3.70 Pg C yr<sup>−1</sup> and decreases the total oceanic carbon sink from 1.48 to 1.12 Pg C yr<sup>−1</sup>. The largest changes occur in tropical areas: a considerable decrease in the carbon source in the Amazon forest, and this decrease is mostly compensated by increases in the ocean region immediately west of the Amazon and the southeast Asian land region. Our further investigation through different treatments of the <sup>13</sup>CO<sub>2</sub>/CO<sub>2</sub> flux ratio used in the inversion suggests that variable spatial distributions of the <sup>13</sup>CO<sub>2</sub> isotopic discrimination rate simulated by the models over land and ocean have considerable impacts on the spatial distribution of the inverted CO<sub>2</sub> flux over land and the inversion results are not sensitive to errors in the estimated disequilibria over land and ocean.
Creator (Dublin Core)
Chen, J. M.
Mo, G.
Deng, F.
Date (Dublin Core)
2018-08-10
Type (Dublin Core)
Text
Format (Dublin Core)
application/pdf
Identifier (Dublin Core)
10.5194/acpd-13-26529-2013
https://acp.copernicus.org/preprints/acp-2013-730/
Source (Dublin Core)
eISSN: 1680-7324
Language (Dublin Core)
eng



