Cargando…

Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis

In this study, we show that limitations in the representation of land cover and vegetation seasonality in the European Centre for Medium‐Range Weather Forecasting (ECMWF) model are partially responsible for large biases (up to ∼10°C, either positive or negative depending on the region) on the simula...

Descripción completa

Detalles Bibliográficos
Autores principales: Nogueira, Miguel, Boussetta, Souhail, Balsamo, Gianpaolo, Albergel, Clément, Trigo, Isabel F., Johannsen, Frederico, Miralles, Diego G., Dutra, Emanuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9286567/
https://www.ncbi.nlm.nih.gov/pubmed/35866004
http://dx.doi.org/10.1029/2020JD034163
_version_ 1784748042066329600
author Nogueira, Miguel
Boussetta, Souhail
Balsamo, Gianpaolo
Albergel, Clément
Trigo, Isabel F.
Johannsen, Frederico
Miralles, Diego G.
Dutra, Emanuel
author_facet Nogueira, Miguel
Boussetta, Souhail
Balsamo, Gianpaolo
Albergel, Clément
Trigo, Isabel F.
Johannsen, Frederico
Miralles, Diego G.
Dutra, Emanuel
author_sort Nogueira, Miguel
collection PubMed
description In this study, we show that limitations in the representation of land cover and vegetation seasonality in the European Centre for Medium‐Range Weather Forecasting (ECMWF) model are partially responsible for large biases (up to ∼10°C, either positive or negative depending on the region) on the simulated daily maximum land surface temperature (LST) with respect to satellite Earth Observations (EOs) products from the Land Surface Analysis Satellite Application Facility. The error patterns were coherent in offline land‐surface and coupled land‐atmosphere simulations, and in ECMWF's latest generation reanalysis (ERA5). Subsequently, we updated the ECMWF model's land cover characterization leveraging on state‐of‐the‐art EOs—the European Space Agency Climate Change Initiative land cover data set and the Copernicus Global Land Services leaf area index. Additionally, we tested a clumping parameterization, introducing seasonality to the effective low vegetation coverage. The updates reduced the overall daily maximum LST bias and unbiased root‐mean‐squared errors. In contrast, the implemented updates had a neutral impact on daily minimum LST. Our results also highlighted the complex regional heterogeneities in the atmospheric sensitivity to land cover and vegetation changes, particularly with issues emerging over eastern Brazil and northeastern Asia. These issues called for a re‐calibration of model parameters (e.g., minimum stomatal resistance, roughness length, rooting depth), along with a revision of several model assumptions (e.g., snow shading by high vegetation).
format Online
Article
Text
id pubmed-9286567
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-92865672022-07-19 Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis Nogueira, Miguel Boussetta, Souhail Balsamo, Gianpaolo Albergel, Clément Trigo, Isabel F. Johannsen, Frederico Miralles, Diego G. Dutra, Emanuel J Geophys Res Atmos Research Article In this study, we show that limitations in the representation of land cover and vegetation seasonality in the European Centre for Medium‐Range Weather Forecasting (ECMWF) model are partially responsible for large biases (up to ∼10°C, either positive or negative depending on the region) on the simulated daily maximum land surface temperature (LST) with respect to satellite Earth Observations (EOs) products from the Land Surface Analysis Satellite Application Facility. The error patterns were coherent in offline land‐surface and coupled land‐atmosphere simulations, and in ECMWF's latest generation reanalysis (ERA5). Subsequently, we updated the ECMWF model's land cover characterization leveraging on state‐of‐the‐art EOs—the European Space Agency Climate Change Initiative land cover data set and the Copernicus Global Land Services leaf area index. Additionally, we tested a clumping parameterization, introducing seasonality to the effective low vegetation coverage. The updates reduced the overall daily maximum LST bias and unbiased root‐mean‐squared errors. In contrast, the implemented updates had a neutral impact on daily minimum LST. Our results also highlighted the complex regional heterogeneities in the atmospheric sensitivity to land cover and vegetation changes, particularly with issues emerging over eastern Brazil and northeastern Asia. These issues called for a re‐calibration of model parameters (e.g., minimum stomatal resistance, roughness length, rooting depth), along with a revision of several model assumptions (e.g., snow shading by high vegetation). John Wiley and Sons Inc. 2021-08-02 2021-08-16 /pmc/articles/PMC9286567/ /pubmed/35866004 http://dx.doi.org/10.1029/2020JD034163 Text en © 2021. The Authors. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Article
Nogueira, Miguel
Boussetta, Souhail
Balsamo, Gianpaolo
Albergel, Clément
Trigo, Isabel F.
Johannsen, Frederico
Miralles, Diego G.
Dutra, Emanuel
Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title_full Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title_fullStr Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title_full_unstemmed Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title_short Upgrading Land‐Cover and Vegetation Seasonality in the ECMWF Coupled System: Verification With FLUXNET Sites, METEOSAT Satellite Land Surface Temperatures, and ERA5 Atmospheric Reanalysis
title_sort upgrading land‐cover and vegetation seasonality in the ecmwf coupled system: verification with fluxnet sites, meteosat satellite land surface temperatures, and era5 atmospheric reanalysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9286567/
https://www.ncbi.nlm.nih.gov/pubmed/35866004
http://dx.doi.org/10.1029/2020JD034163
work_keys_str_mv AT nogueiramiguel upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT boussettasouhail upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT balsamogianpaolo upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT albergelclement upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT trigoisabelf upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT johannsenfrederico upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT mirallesdiegog upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis
AT dutraemanuel upgradinglandcoverandvegetationseasonalityintheecmwfcoupledsystemverificationwithfluxnetsitesmeteosatsatellitelandsurfacetemperaturesandera5atmosphericreanalysis