Spring enhancement and summer reduction in carbon uptake during the 2018 drought in northwestern Europe

2020 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Spring enhancement and summer reduction in carbon uptake during the 2018 drought in northwestern Europe​
Smith, N. E.; Kooijmans, L. M. J.; Koren, G.; van Schaik, E.; van der Woude, A. M.; Wanders, N. & Ramonet, M. et al.​ (2020) 
Philosophical Transactions of the Royal Society of London. B, Biological Sciences375(1810) pp. 20190509​.​ DOI: https://doi.org/10.1098/rstb.2019.0509 

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Authors
Smith, Naomi E.; Kooijmans, Linda M. J.; Koren, Gerbrand; van Schaik, Erik; van der Woude, Auke M.; Wanders, Niko; Ramonet, Michel; Xueref-Remy, Irène; Siebicke, Lukas; Manca, Giovanni; Brümmer, Christian; Baker, Ian T.; Haynes, Katherine D.; Luijkx, Ingrid T.; Peters, Wouter
Abstract
We analysed gross primary productivity (GPP), total ecosystem respiration (TER) and the resulting net ecosystem exchange (NEE) of carbon dioxide (CO2) by the terrestrial biosphere during the summer of 2018 through observed changes across the Integrated Carbon Observation System (ICOS) network, through biosphere and inverse modelling, and through remote sensing. Highly correlated yet independently-derived reductions in productivity from sun-induced fluorescence, vegetative near-infrared reflectance, and GPP simulated by the Simple Biosphere model version 4 (SiB4) suggest a 130–340 TgC GPP reduction in July–August–September (JAS) of 2018. This occurs over an area of 1.6 × 106 km2 with anomalously low precipitation in northwestern and central Europe. In this drought-affected area, reduced GPP, TER, NEE and soil moisture at ICOS ecosystem sites are reproduced satisfactorily by the SiB4 model. We found that, in contrast to the preceding 5 years, low soil moisture is the main stress factor across the affected area. SiB4’s NEE reduction by 57 TgC for JAS coincides with anomalously high atmospheric CO2 observations in 2018, and this is closely matched by the NEE anomaly derived by CarbonTracker Europe (52 to 83 TgC). Increased NEE during the spring (May–June) of 2018 (SiB4 −52 TgC; CTE −46 to −55 TgC) largely offset this loss, as ecosystems took advantage of favourable growth conditions.
Issue Date
2020
Journal
Philosophical Transactions of the Royal Society of London. B, Biological Sciences 
Organization
Fakultät für Forstwissenschaften und Waldökologie ; Büsgen-Institut ; Abteilung Bioklimatologie 
ISSN
0962-8436
eISSN
1471-2970
Language
English

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