Citation

BibTex format

@article{Mengoli:2022:10.1029/2021MS002767,
author = {Mengoli, G and Agusti-Panareda, A and Boussetta, S and Harrison, S and Trotta, C and Prentice, IC},
doi = {10.1029/2021MS002767},
journal = {Journal of Advances in Modeling Earth Systems},
pages = {1--18},
title = {Ecosystem photosynthesis in land-surface models: a first-principles approach incorporating acclimation},
url = {http://dx.doi.org/10.1029/2021MS002767},
volume = {14},
year = {2022}
}

RIS format (EndNote, RefMan)

TY  - JOUR
AB - Vegetation regulates land-atmosphere water and energy exchanges and is an essential component of land-surface models (LSMs). However, LSMs have been handicapped by assumptions that equate acclimated photosynthetic responses to the environment with the fast responses observable in the laboratory. The effects of acclimation can be taken into account by including PFT-specific values of photosynthetic parameters, but at the cost of increasing parameter requirements. Here we develop an alternative approach for including acclimation in LSMs by adopting the P model, an existing light-use efficiency model for gross primary production (GPP) that implicitly predicts the acclimation of photosynthetic parameters on a weekly to monthly timescale via optimality principles. We demonstrate that it is possible to explicitly separate the fast and slow photosynthetic responses to environmental conditions, allowing the simulation of GPP at the sub-daily timesteps required for coupling in an LSM. The resulting model reproduces the diurnal cycles of GPP recorded by eddy-covariance flux towers in a temperate grassland and boreal, temperate and tropical forests. The best performance is achieved when biochemical capacities are adjusted to match recent midday conditions. Comparison between this model and the operational LSM in the European Centre for Medium-range Weather Forecasts climate model shows that the new model has better predictive power in most of the sites and years analysed, particularly in summer and autumn. Our analyses suggest a simple and parameter-sparse method to include both instantaneous and acclimated responses within an LSM framework, with potential applications in weather, climate and carbon-cycle modelling.
AU - Mengoli,G
AU - Agusti-Panareda,A
AU - Boussetta,S
AU - Harrison,S
AU - Trotta,C
AU - Prentice,IC
DO - 10.1029/2021MS002767
EP - 18
PY - 2022///
SN - 1942-2466
SP - 1
TI - Ecosystem photosynthesis in land-surface models: a first-principles approach incorporating acclimation
T2 - Journal of Advances in Modeling Earth Systems
UR - http://dx.doi.org/10.1029/2021MS002767
UR - https://agupubs.onlinelibrary.wiley.com/doi/10.1029/2021MS002767
UR - http://hdl.handle.net/10044/1/93192
VL - 14
ER -