Published September 1, 2020 | Version v1
Journal article

Stomatal response to decreased relative humidity constrains the acceleration of terrestrial evapotranspiration

  • 1. State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering, Hohai University, Nanjing 210098 (China)
  • 2. Department of Water Resources and Environment, Sun Yat-sen University, Guangzhou 510275 (China)
  • 3. Department of Atmospheric Science, School of Environmental Studies, China University of Geosciences, Wuhan 430074 (China)
  • 4. Institute for Atmosphere and Earth System Research/Physics, Faculty of Science, University of Helsinki, PO Box 68 (Finland)
  • 5. Faculty of Science and Technology, Free University of Bolzano, Universitätsplatz 5, Piazza Università, I-39100, Bolzano (Italy)
  • 6. School of Geography and Earth Sciences and McMaster Centre for Climate Change, McMaster University, Hamilton, ON (Canada)
  • 7. Mazingira Centre, International Livestock Research Institute (ILRI), 00100, Nairobi (Kenya)
  • 8. Consiglio Nazionale delle Ricerche, Institute for Mediterranean Agricultural and Forest Systems, Via Patacca 85, 80056, Ercolano (Napoli) (Italy)
  • 9. Finnish Meteorological Institute, Climate System Research, FIN-00101, Helsinki (Finland)
  • 10. Department of Environmental Systems Science, ETH Zurich, 8092, Zurich (Switzerland)
  • 11. School of Agriculture and Environment, University of Western Australia, Crawley 6009, Western Australia (Australia)
  • 12. Consiglio Nazionale delle Ricerche, Institute of Bioeconomy, via Giovanni Caproni 8, 50145, Firenze (Italy)

Description

Terrestrial evapotranspiration (ET) is thermodynamically expected to increase with increasing atmospheric temperature; however, the actual constraints on the intensification of ET remain uncertain due to a lack of direct observations. Based on the FLUXNET2015 Dataset, we found that relative humidity (RH) is a more important driver of ET than temperature. While actual ET decrease at reduced RH, potential ET increases, consistently with the complementary relationship (CR) framework stating that the fraction of energy not used for actual ET is dissipated as increased sensible heat flux that in turn increases potential ET. In this study, we proposed an improved CR formulation requiring no parameter calibration and assessed its reliability in estimating ET both at site-level with the FLUXNET2015 Dataset and at basin-level. Using the ERA-Interim meteorological dataset for 1979–2017 to calculate ET, we found that the global terrestrial ET showed an increasing trend until 1998, while the trend started to decline afterwards. Such decline was largely associated with a reduced RH, inducing water stress conditions that triggered stomatal closure to conserve water. For the first time, this study quantified the global-scale implications of changes in RH on terrestrial ET, indicating that the temperature-driven acceleration of the terrestrial water cycle will be likely constrained by terrestrial vegetation feedbacks. (letter)

Availability note (English)

Available from http://dx.doi.org/10.1088/1748-9326/ab9967

Additional details

Identifiers

Publishing Information

Journal Title
Environmental Research Letters
Journal Volume
15
Journal Issue
9
Journal Page Range
[11 p.]
ISSN
1748-9326

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
52089315
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
AMBIENT TEMPERATURE; BIOLOGICAL STRESS; CALIBRATION; DATASETS; EVAPORATION; HEAT FLUX; HUMIDITY; LIMITING VALUES; METEOROLOGY; PLANTS; WATER REQUIREMENTS
Descriptors DEC
DEMAND; DOCUMENT TYPES; MOISTURE; PHASE TRANSFORMATIONS