| Literature DB >> 33022860 |
Jacob A Nelson1, Oscar Pérez-Priego2, Sha Zhou3,4,5, Rafael Poyatos6,7, Yao Zhang3, Peter D Blanken8, Teresa E Gimeno9,10, Georg Wohlfahrt11, Ankur R Desai12, Beniamino Gioli13, Jean-Marc Limousin14, Damien Bonal15, Eugénie Paul-Limoges16, Russell L Scott17, Andrej Varlagin18, Kathrin Fuchs19, Leonardo Montagnani20, Sebastian Wolf21, Nicolas Delpierre22, Daniel Berveiller22, Mana Gharun21, Luca Belelli Marchesini23,24, Damiano Gianelle23, Ladislav Šigut25, Ivan Mammarella26, Lukas Siebicke27, T Andrew Black28, Alexander Knohl27,29, Lukas Hörtnagl30, Vincenzo Magliulo31, Simon Besnard1,32, Ulrich Weber1, Nuno Carvalhais1,33, Mirco Migliavacca1, Markus Reichstein1,34, Martin Jung1.
Abstract
We apply and compare three widely applicable methods for estimating ecosystem transpiration (T) from eddy covariance (EC) data across 251 FLUXNET sites globally. All three methods are based on the coupled water and carbon relationship, but they differ in assumptions and parameterizations. Intercomparison of the three daily T estimates shows high correlation among methods (R between .89 and .94), but a spread in magnitudes of T/ET (evapotranspiration) from 45% to 77%. When compared at six sites with concurrent EC and sap flow measurements, all three EC-based T estimates show higher correlation to sap flow-based T than EC-based ET. The partitioning methods show expected tendencies of T/ET increasing with dryness (vapor pressure deficit and days since rain) and with leaf area index (LAI). Analysis of 140 sites with high-quality estimates for at least two continuous years shows that T/ET variability was 1.6 times higher across sites than across years. Spatial variability of T/ET was primarily driven by vegetation and soil characteristics (e.g., crop or grass designation, minimum annual LAI, soil coarse fragment volume) rather than climatic variables such as mean/standard deviation of temperature or precipitation. Overall, T and T/ET patterns are plausible and qualitatively consistent among the different water flux partitioning methods implying a significant advance made for estimating and understanding T globally, while the magnitudes remain uncertain. Our results represent the first extensive EC data-based estimates of ecosystem T permitting a data-driven perspective on the role of plants' water use for global water and carbon cycling in a changing climate.Entities:
Keywords: FLUXNET; ecohydrology; eddy covariance; evaporation; evapotranspiration; transpiration
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Year: 2020 PMID: 33022860 DOI: 10.1111/gcb.15314
Source DB: PubMed Journal: Glob Chang Biol ISSN: 1354-1013 Impact factor: 10.863