Details zur Publikation

Kategorie Textpublikation
Referenztyp Zeitschriften
DOI 10.1111/gcb.12717
Volltext Shareable Link
Titel (primär) Spatial variability and temporal trends in water-use efficiency of European forests
Autor Saurer, M.; Spahni, R.; Frank, D.C.; Joos, F.; Leuenberger, M.; Loader, N.J.; McCarroll, D.; Gagen, M.; Poulter, B.; Siegwolf, R.T.W.; Andreu-Hayles, L.; Boettger, T.; Dorado Liñán, I.; Fairchild, I.J.; Friedrich, M.; Gutierrez, E.; Haupt, M.; Hilasvuori, E.; Heinrich, I.; Helle, G.; Grudd, H.; Jalkanen, R.; Levanič, T.; Linderholm, H.W.; Robertson, I.; Sonninen, E.; Treydte, K.; Waterhouse, J.S.; Woodley, E.J.; Wynn, P.M.; Young, G.H.F.
Quelle Global Change Biology
Erscheinungsjahr 2014
Department CATHYD
Band/Volume 20
Heft 12
Seite von 3700
Seite bis 3712
Sprache englisch
Keywords Tree rings; carbon isotope discrimination; climate change; dynamic vegetation model
UFZ Querschnittsthemen RU2;
Abstract The increasing carbon dioxide (CO2) concentration in the atmosphere in combination with climatic changes throughout the last century are likely to have had a profound effect on the physiology of trees: altering the carbon and water fluxes passing through the stomatal pores. However, the magnitude and spatial patterns of such changes in natural forests remain highly uncertain. Here, stable carbon isotope ratios from a network of 35 tree-ring sites located across Europe are investigated to determine the intrinsic water-use efficiency (iWUE), the ratio of photosynthesis to stomatal conductance from 1901–2000. The results were compared with simulations of a dynamic vegetation model (LPX-Bern 1.0) that integrates numerous ecosystem and land–atmosphere exchange processes in a theoretical framework. The spatial pattern of tree-ring derived iWUE of the investigated coniferous and deciduous species and the model results agreed significantly with a clear south-to-north gradient, as well as a general increase in iWUE over the 20th century. The magnitude of the iWUE increase was not spatially uniform, with the strongest increase observed and modelled for temperate forests in Central Europe, a region where summer soil-water availability decreased over the last century. We were able to demonstrate that the combined effects of increasing CO2 and climate change leading to soil drying have resulted in an accelerated increase of iWUE. These findings will help to reduce uncertainties in the land surface schemes of global climate models, where vegetation–climate feedbacks are currently still poorly constrained by observational data.
dauerhafte UFZ-Verlinkung https://www.ufz.de/index.php?en=20939&ufzPublicationIdentifier=15276
Saurer, M., Spahni, R., Frank, D.C., Joos, F., Leuenberger, M., Loader, N.J., McCarroll, D., Gagen, M., Poulter, B., Siegwolf, R.T.W., Andreu-Hayles, L., Boettger, T., Dorado Liñán, I., Fairchild, I.J., Friedrich, M., Gutierrez, E., Haupt, M., Hilasvuori, E., Heinrich, I., Helle, G., Grudd, H., Jalkanen, R., Levanič, T., Linderholm, H.W., Robertson, I., Sonninen, E., Treydte, K., Waterhouse, J.S., Woodley, E.J., Wynn, P.M., Young, G.H.F. (2014):
Spatial variability and temporal trends in water-use efficiency of European forests
Glob. Change Biol. 20 (12), 3700 - 3712 10.1111/gcb.12717