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

  • Jordi Vilà-Guerau de Arellano*
  • , Oscar Hartogensis
  • , Imme Benedict
  • , Hugo de Boer
  • , Peter J M Bosman
  • , Santiago Botía
  • , Micael Amore Cecchini
  • , Kim A P Faassen
  • , Raquel González-Armas
  • , Kevin van Diepen
  • , Bert G Heusinkveld
  • , Martin Janssens
  • , Felipe Lobos-Roco
  • , Ingrid T Luijkx
  • , Luiz A T Machado
  • , Mary Rose Mangan
  • , Arnold F Moene
  • , Wouter B Mol
  • , Michiel van der Molen
  • , Robbert Moonen
  • H G Ouwersloot, So-Won Park, Xabier Pedruzo-Bagazgoitia, Thomas Röckmann, Getachew Agmuas Adnew, Reinder Ronda, Martin Sikma, Ruben Schulte, Bart J H van Stratum, Menno A Veerman, Margreet C van Zanten, Chiel C van Heerwaarden
*Corresponding author for this work
  • Wageningen University & Research
  • Max Planck Institute for Biogeochemistry
  • Universidade de São Paulo
  • Pohang University of Science and Technology (POSTECH)

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Vegetation 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.

Original languageEnglish
Pages (from-to)74-97
Number of pages24
JournalAnnals of the New York Academy of Sciences
Volume1522
Issue number1
Early online dateFeb 2023
DOIs
Publication statusPublished - 1 Apr 2023

Bibliographical note

Publisher Copyright:
© 2023 The Authors. Annals of the New York Academy of Sciences published by Wiley Periodicals LLC on behalf of New York Academy of Sciences.

Funding

The following grants are acknowledged in providing observations and model calculations used in some figures of the paper: project Cloud-Roots - Clouds rooted in a heterogeneous biosphere (https://cloudroots. wur.nl/) (Dutch Research Council NWO OCENW.KLEIN.407), computer calculation time provided by the Dutch Research Council 2021/ENW/01081379, and Ruisdael scientific research infrastructure (https://ruisdael-observatory.nl/) co-financed by the Dutch Research Council (NWO, Grant number 184.034.015). Numerical simulations (Figures 9, 12, and 14) were supported by a NWO-Supercomputer Grant (15744). The contributions of H. J. de Boer were funded through the generosity of Eric and Wendy Schmidt by recommendation of the Schmidt Futures program. We acknowledge the World Climate Research Programme’s Working Group on Coupled Modeling, which is responsible for CMIP, the climate modeling groups for producing and making their model output, and the Earth System Grid Federation for archiving the data and providing access. The following grants are acknowledged in providing observations and model calculations used in some figures of the paper: project CloudRoots - Clouds rooted in a heterogeneous biosphere (https://cloudroots.wur.nl/) (Dutch Research Council NWO OCENW.KLEIN.407), computer calculation time provided by the Dutch Research Council 2021/ENW/01081379, and Ruisdael scientific research infrastructure (https://ruisdael-observatory.nl/) co-financed by the Dutch Research Council (NWO, Grant number 184.034.015). Numerical simulations (Figures 9, 12, and 14) were supported by a NWO-Supercomputer Grant (15744). The contributions of H. J. de Boer were funded through the generosity of Eric and Wendy Schmidt by recommendation of the Schmidt Futures program. We acknowledge the World Climate Research Programme's Working Group on Coupled Modeling, which is responsible for CMIP, the climate modeling groups for producing and making their model output, and the Earth System Grid Federation for archiving the data and providing access.

FundersFunder number
Dutch Research Council NWOOCENW.KLEIN.407
Earth System Grid Federation
NWO-Supercomputer15744
Ruisdael scientific research infrastructure
Nederlandse Organisatie voor Wetenschappelijk Onderzoek2021/ENW/01081379, 184.034.015

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 13 - Climate Action
      SDG 13 Climate Action

    Keywords

    • clouds
    • land–atmosphere interactions
    • leaf to regional
    • photosynthesis

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