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Seven years of recent European net terrestrial carbon dioxide exchange constrained by atmospheric observations

W. PETERS; M. C. KROL; G. R. Van Der WERF; S. HOUWELING; C. D. JONES; J. HUGHES; K. SCHAEFER; K. A. MASARIE; A. R. JACOBSON; J. B. MILLER; C. H. CHO; M. RAMONET; M. SCHMIDT; L. CIATTAGLIA; F. APADULA; D. HELTAI; F. MEINHARDT; A. G. DI SARRA; S. PIACENTINO; D. SFERLAZZO; T. AALTO; J. HATAKKA; J. STRÖM; L. HASZPRA; H. A. J. MEIJER; S. VAN DER LAAN; R. E. M. NEUBERT; A. JORDAN; X. RODÓ; J.‐A. MORGUÍ; A. T. VERMEULEN; E. POPA; K. ROZANSKI; M. ZIMNOCH; A. C. MANNING; M. LEUENBERGER; C. UGLIETTI; A. J. DOLMAN; P. CIAIS; M. HEIMANN; P. P. TANS
Global Change Biology · Vol. 16, Issue 4 · pp. 1317-1337 · 2010

Abstract

We present an estimate of net ecosystem exchange (NEE) of CO 2 in Europe for the years 2001–2007. It is derived with a data assimilation that uses a large set of atmospheric CO 2 mole fraction observations (∼70 000) to guide relatively simple descriptions of terrestrial and oceanic net exchange, while fossil fuel and fire emissions are prescribed. Weekly terrestrial sources and sinks are optimized (i.e., a flux inversion) for a set of 18 large ecosystems across Europe in which prescribed climate, weather, and surface characteristics introduce finer scale gradients. We find that the terrestrial biosphere in Europe absorbed a net average of −165 Tg C yr −1 over the period considered. This uptake is predominantly in non‐EU countries, and is found in the northern coniferous (−94 Tg C yr −1 ) and mixed forests (−30 Tg C yr −1 ) as well as the forest/field complexes of eastern Europe (−85 Tg C yr −1 ). An optimistic uncertainty estimate derived using three biosphere models suggests the uptake to be in a range of −122 to −258 Tg C yr −1 , while a more conservative estimate derived from the a‐posteriori covariance estimates is −165±437 Tg C yr −1 . Note, however, that uncertainties are hard to estimate given the nature of the system and are likely to be significantly larger than this. Interannual variability in NEE includes a reduction in uptake due to the 2003 drought followed by 3 years of more than average uptake. The largest anomaly of NEE occurred in 2005 concurrent with increased seasonal cycles of observed CO 2 . We speculate these changes to result from the strong negative phase of the North Atlantic Oscillation in 2005 that lead to favorable summer growth conditions, and altered horizontal and vertical mixing in the atmosphere. All our results are available through http://www.carbontracker.eu

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2010-04-01
Publication Year2010
Volume16
Issue4
Pages1317-1337
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/j.1365-2486.2009.02078.x
SubjectConservation Science

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NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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