Evaluating the interplay between biophysical processes and leaf area changes in land surface models

Land Surface Models (LSMs) are essential to reproduce biophysical processes modulated by vegetation and to predict the future evolution of the land-climate system. To assess the performance of an ensemble of LSMs (JSBACH, JULES, ORCHIDEE, CLM, and LPJ-GUESS) a consistent set of land surface energy fluxes and leaf area index (LAI) has been generated. Relationships of interannual variations of modeled surface fluxes and LAI changes have been analyzed at global scale across climatological gradients and compared with those obtained from satellite-based products. Model-specific strengths and deficiencies were diagnosed for tree and grass biomes. Results show that the responses of grasses are generally well represented in models with respect to the observed interplay between turbulent fluxes and LAI, increasing the confidence on how the LAI-dependent partition of net radiation into latent and sensible heat are simulated. On the contrary, modeled forest responses are characterized by systematic bias in the relation between the year-to-year variability in LAI and net radiation in cold and temperate climates, ultimately affecting the amount of absorbed radiation due to LAI-related effects on surface albedo. In addition, for tree biomes, the relationships between LAI and turbulent fluxes appear to contradict the experimental evidences. The dominance of the transpiration-driven over the observed albedo-driven effects might suggest that LSMs have the incorrect balance of these two processes. Such mismatches shed light on the limitations of our current understanding and process representation of the vegetation control on the surface energy balance and help to identify critical areas for model improvement.

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Copyright 2018 Author(s). This work is licensed under a Creative Commons Attribution-NonCommerical-NoDerivatives 4.0 International license.


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Author Forzieri, Giovanni
Duveiller, Gregory
Georgievski, Goran
Li, Wei
Robertson, Eddy
Kautz, Markus
Lawrence, Peter
Garcia San Martin, Lorea
Anthoni, Peter
Ciais, Philippe
Pongratz, Julia
Sitch, Stephen
Wiltshire, Andy
Arneth, Almut
Cescatti, Alessandro
Publisher UCAR/NCAR - Library
Publication Date 2018-05-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Resource Version N/A
Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:21:40.734002
Metadata Record Identifier edu.ucar.opensky::articles:21754
Metadata Language eng; USA
Suggested Citation Forzieri, Giovanni, Duveiller, Gregory, Georgievski, Goran, Li, Wei, Robertson, Eddy, Kautz, Markus, Lawrence, Peter, Garcia San Martin, Lorea, Anthoni, Peter, Ciais, Philippe, Pongratz, Julia, Sitch, Stephen, Wiltshire, Andy, Arneth, Almut, Cescatti, Alessandro. (2018). Evaluating the interplay between biophysical processes and leaf area changes in land surface models. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7cn76p6. Accessed 01 February 2025.

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