Lukas Hörtnagl
Biographic Data
| ID | 7994536 |
|---|---|
| NAME | Lukas Hörtnagl |
| GIVEN NAMES | Lukas |
| FAMILY NAME | Hörtnagl |
| SIGNATURE | HÖRTNAGL L |
| AFFILIATIONS | ETH Zurich |
| ORCID | 0000-0002-5569-0761 |
| VERIFIED | Yes |
| TOTAL WORKS | 2 |
| TOTAL CITATIONS | 0 |
| AUTHOR COUNT | 2 |
| EDITOR COUNT | 0 |
| FIRST PUBLICATION YEAR | 2018 |
| LATEST PUBLICATION YEAR | 2020 |
| H-INDEX | 0 |
Stomatal response to decreased relative humidity constrains the acceleration of terrestrial evapotranspiration
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 complem…
Quantifying the effect of forest age in annual net forest carbon balance
Forests dominate carbon (C) exchanges between the terrestrial biosphere and the atmosphere on land. In the long term, the net carbon flux between forests and the atmosphere has been significantly impacted by changes in forest cover area and structure due to ecological disturbances and management activities. Current empirical approaches for estimating net ecosystem productivity (NEP) rarely consider forest age as a predictor, which represents vari…
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Quantifying the effect of forest age in annual net forest carbon balance
Forests dominate carbon (C) exchanges between the terrestrial biosphere and the atmosphere on land. In the long term, the net carbon flux between forests and the atmosphere has been significantly impacted by changes in forest cover area and structure due to ecological disturbances and management activities. Current empirical approaches for estimating net ecosystem productivity (NEP) rarely consider forest age as a predictor, which represents vari…
Stomatal response to decreased relative humidity constrains the acceleration of terrestrial evapotranspiration
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 complem…
Atmospheric sciences (2 works) · Climate change (2 works) · Climate variability and models (2 works) · Ecology (2 works) · Ecosystem (2 works) · Environmental Science (2 works) · Geography (2 works) · Plant Water Relations and Carbon Dynamics (2 works) · Abiotic component (1 works) · Agroforestry (1 works)