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  3. nextGEMS: entering the era of kilometer-scale Earth system modeling
 

nextGEMS: entering the era of kilometer-scale Earth system modeling

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Description
Related Datasets:
https://doi.org/10.35089/WDCC/IconRelease01
https://github.com/FESOM/fesom2
https://doi.org/10.5281/zenodo.10225420
https://github.com/ecmwf
http://www.ecmwf.int/en/research/projects/openifs
https://doi.org/10.5281/zenodo.10223576
https://doi.org/10.17617/3.QZHXMC
https://doi.org/10.26050/WDCC/nextGEMS_cyc2
https://doi.org/10.26050/WDCC/nextGEMS_cyc3
https://doi.org/10.35095/WDCC/next GEMS_prod_addinfov1
https://doi.org/10.5281/zenodo.14725225
https://www.cen.uni-hamburg.de/en/icdc/data/atmosphere/imerg-precipitation-amount.html
BORIS DOI
10.48620/94361
Publisher DOI
10.5194/gmd-18-7735-2025
Description
The Next Generation of Earth Modeling Systems (nextGEMS) project aimed to produce multidecadal climate simulations, for the first time, with resolved kilometer-scale (km-scale) processes in the ocean, land, and atmosphere. In only 3 years, nextGEMS achieved this milestone with the two km-scale Earth system models, ICOsahedral Non-hydrostatic model (ICON) and Integrated Forecasting System coupled to the Finite-volumE Sea ice-Ocean Model (IFS-FESOM). nextGEMS was based on three cornerstones: (1) developing km-scale Earth system models with small errors in the energy and water balance, (2) performing km-scale climate simulations with a throughput greater than 1 simulated year per day, and (3) facilitating new workflows for an efficient analysis of the large simulations with common data structures and output variables. These cornerstones shaped the timeline of nextGEMS, divided into four cycles. Each cycle marked the release of a new configuration of ICON and IFS-FESOM, which were evaluated at hackathons. The hackathon participants included experts from climate science, software engineering, and high-performance computing as well as users from the energy and agricultural sectors. The continuous efforts over the four cycles allowed us to produce 30-year simulations with ICON and IFS-FESOM, spanning the period 2020–2049 under the SSP3-7.0 scenario. The throughput was about 500 simulated days per day on the Levante supercomputer of the German Climate Computing Center (DKRZ). The simulations employed a horizontal grid of about 5 km resolution in the ocean and 10 km resolution in the atmosphere and land. Aside from this technical achievement, the simulations allowed us to gain new insights into the realism of ICON and IFS-FESOM. Beyond its time frame, nextGEMS builds the foundation of the Climate Change Adaptation Digital Twin developed in the Destination Earth initiative and paves the way for future European research on climate change.
Date of Publication
2025-10-23
Publication Type
Article
Subject(s)
500 Science
500 Science > 550 Earth sciences & geology
900 History > 910 Geography & travel
Keyword(s)
Earth modeling systems project
•
nextGEMS
Language(s)
en
Contributor(s)
Segura, Hans
Pedruzo-Bagazgoitia, Xabier
Weiss, Philipp
Müller Sebastian K.
University of Trento
Rackow, Thomas
Lee, Junhong
Dolores-Tesillos, Edgar
Geographisches Institut (GIUB) - Klimafolgenforschung
Oeschger Centre for Climate Change Research (OCCR)
Benedict, Imme
WUR
Aengenheyster, Matthias
Aguridan, Razvan
Arduini, Gabriele
Baker, Alexander
Bao, Jiawei
Bastin, Swantje
MPI-M
Baulenas, Eulàlia
Becker, Tobias
Beyer, Sebastian
Bockelmann, Hendryk
Brüggemann, Nils
Brunner, Lukas
Cheedela, Suvarchal K.
Das, Suhas
Denissen, Jasper
ECMWF
Dragaud, Ian
Hamburg University
Dziekan, Piotr
Politechnika Warszawska
Ekblom, Madeleine
Engels, Jan Frederik
Esch, Monika
MPI-M
Forbes, Richard
Frauen, Claudia
Freischem, Lilli J
García-Maroto, Diego
Geier, Philipp
Gierz, Paul
González-Cervera, Álvaro
Grayson, Katherine M
Griffith, Matthew
Gutjahr, Oliver
Haak, Helmuth
Hadade, Ioan
Haslehner, Kerstin
ul Hasson, Shabeh
Hegewald, Jan
Kluft, Lukas
Koldunov, Aleksei
Koldunov, Nikolay
Kölling, Tobias
Koseki, Shunya
Kosukhin, Sergey
Kousal, Josh
Kuma, Peter
Kumar, Arjun U.
Li, Rumeng
Maury, Nicolas
Meindl, Maximilian
Milinski, Sebastian
Mogensen, Kristian
Niraula, Bimochan
Nowak, Jakub
Praturi, Divya Sri
Proske, Ulrike
Putrasahan, Dian
Redler, René
Santuy, David
Sármány, Domokos
Schnur, Reiner
Scholz, Patrick
Sidorenko, Dmitry
Spät, Dorian
Sützl, Birgit
Takasuka, Daisuke
Tompkins, Adrian
Uribe, Alejandro
Valentini, Mirco
Veerman, Menno
Voigt, Aiko
Warnau, Sarah
Wachsmann, Fabian
Wacławczyk, Marta
Wedi, Nils
Wieners, Karl-Hermann
Wille, Jonathan
Winkler, Marius
Wu, Yuting
Ziemen, Florian
Zimmermann, Janos
Bender, Frida A.-M.
Bojovic, Dragana
Bony, Sandrine
Bordoni, Simona
Brehmer, Patrice
Dengler, Marcus
Dutra, Emanuel
Faye, Saliou
Fischer, Erich
van Heerwaarden, Chiel
Hohenegger, Cathy
Järvinen, Heikki
Jochum, Markus
Jung, Thomas
Jungclaus, Johann H.
Keenlyside, Noel S.
Klocke, Daniel
Konow, Heike
Klose, Martina
Malinowski, Szymon
Martius, Oliviaorcid-logo
Geographisches Institut (GIUB) - Klimafolgenforschung
Institute of Geography
Oeschger Centre for Climate Change Research (OCCR)
Oeschger Centre for Climate Change Research (OCCR) - MobiLab
Mauritsen, Thorsten
Mellado, Juan Pedro
Mieslinger, Theresa
Mohino, Elsa
Pawłowska, Hanna
Peters-von Gehlen, Karsten
Sarré, Abdoulaye
Sobhani, Pajam
Stier, Philip
Tuppi, Lauri
Vidale, Pier Luigi
Sandu, Irina
Stevens, Bjorn
Additional Credits
Geographisches Institut (GIUB) - Klimafolgenforschung
MPI-M
Politechnika Warszawska
ECMWF
University of Trento
Hamburg University
Oeschger Centre for Climate Change Research (OCCR) - MobiLab
WUR
Institute of Geography
Oeschger Centre for Climate Change Research (OCCR)
Series
Geoscientific Model Development
Publisher
Copernicus Publications
ISSN
1991-9603
1991-959X
Related Funding(s)
European Union's Horizon 2020, nextGEMS
Access(Rights)
open.access
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