Advancing understanding of land–atmosphere interactions by breaking discipline and scale barriers

Author:

Vilà‐Guerau de Arellano Jordi1ORCID,Hartogensis Oscar1,Benedict Imme1,de Boer Hugo2,Bosman Peter J. M.1,Botía Santiago3,Cecchini Micael Amore4,Faassen Kim A. P.1,González‐Armas Raquel1,van Diepen Kevin1,Heusinkveld Bert G.1,Janssens Martin1,Lobos‐Roco Felipe1,Luijkx Ingrid T.1,Machado Luiz A. T.56,Mangan Mary Rose1,Moene Arnold F.1,Mol Wouter B.1,van der Molen Michiel1,Moonen Robbert7,Ouwersloot H. G.1,Park So‐Won8,Pedruzo‐Bagazgoitia Xabier19,Röckmann Thomas7,Adnew Getachew Agmuas7,Ronda Reinder1,Sikma Martin1,Schulte Ruben1,van Stratum Bart J. H.1,Veerman Menno A.1,van Zanten Margreet C.110,van Heerwaarden Chiel C.1

Affiliation:

1. Meteorology and Air Quality Section Wageningen University Wageningen The Netherlands

2. Copernicus Institute of Sustainable Development Utrecht University Utrecht The Netherlands

3. Biogeochemical Signals Department Max Planck Institute for Biogeochemistry Planegg Germany

4. Institute of Astronomy, Geophysics and Atmospheric Sciences University of São Paulo São Paulo Brazil

5. Institute of Physics University of São Paulo São Paulo Brazil

6. Multiphase Chemistry Department Max Planck Institute for Chemistry Mainz Germany

7. Institute for Marine and Atmospheric Research Utrecht (IMAU) Utrecht University Utrecht The Netherlands

8. Division of Environmental Science and Engineering Pohang University of Science and Technology (POSTECH) Pohang South Korea

9. ECMWF Robert‐Schuman‐Platz 3 Bonn Germany

10. National Institute for Public Health and the Environment RIVM Utrecht The Netherlands

Abstract

AbstractVegetation and atmosphere processes are coupled through a myriad of interactions linking plant transpiration, carbon dioxide assimilation, turbulent transport of moisture, heat and atmospheric constituents, aerosol formation, moist convection, and precipitation. Advances in our understanding are hampered by discipline barriers and challenges in understanding the role of small spatiotemporal scales. In this perspective, we propose to study the atmosphere–ecosystem interaction as a continuum by integrating leaf to regional scales (multiscale) and integrating biochemical and physical processes (multiprocesses). The challenges ahead are (1) How do clouds and canopies affect the transferring and in‐canopy penetration of radiation, thereby impacting photosynthesis and biogenic chemical transformations? (2) How is the radiative energy spatially distributed and converted into turbulent fluxes of heat, moisture, carbon, and reactive compounds? (3) How do local (leaf‐canopy‐clouds, 1 m to kilometers) biochemical and physical processes interact with regional meteorology and atmospheric composition (kilometers to 100 km)? (4) How can we integrate the feedbacks between cloud radiative effects and plant physiology to reduce uncertainties in our climate projections driven by regional warming and enhanced carbon dioxide levels? Our methodology integrates fine‐scale explicit simulations with new observational techniques to determine the role of unresolved small‐scale spatiotemporal processes in weather and climate models.

Publisher

Wiley

Subject

History and Philosophy of Science,General Biochemistry, Genetics and Molecular Biology,General Neuroscience

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