ICON-Sapphire: simulating the components of the Earth system and their interactions at kilometer and subkilometer scales
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Published:2023-01-31
Issue:2
Volume:16
Page:779-811
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ISSN:1991-9603
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Container-title:Geoscientific Model Development
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language:en
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Short-container-title:Geosci. Model Dev.
Author:
Hohenegger Cathy, Korn Peter, Linardakis Leonidas, Redler René, Schnur ReinerORCID, Adamidis Panagiotis, Bao JiaweiORCID, Bastin SwantjeORCID, Behravesh Milad, Bergemann MartinORCID, Biercamp Joachim, Bockelmann Hendryk, Brokopf Renate, Brüggemann NilsORCID, Casaroli Lucas, Chegini Fatemeh, Datseris GeorgeORCID, Esch Monika, George GeetORCID, Giorgetta MarcoORCID, Gutjahr OliverORCID, Haak Helmuth, Hanke Moritz, Ilyina TatianaORCID, Jahns Thomas, Jungclaus Johann, Kern Marcel, Klocke Daniel, Kluft LukasORCID, Kölling Tobias, Kornblueh Luis, Kosukhin Sergey, Kroll ClarissaORCID, Lee JunhongORCID, Mauritsen Thorsten, Mehlmann Carolin, Mieslinger TheresaORCID, Naumann Ann KristinORCID, Paccini LauraORCID, Peinado Angel, Praturi Divya Sri, Putrasahan DianORCID, Rast Sebastian, Riddick Thomas, Roeber Niklas, Schmidt HaukeORCID, Schulzweida Uwe, Schütte Florian, Segura HansORCID, Shevchenko Radomyra, Singh Vikram, Specht Mia, Stephan Claudia ChristineORCID, von Storch Jin-Song, Vogel RaphaelaORCID, Wengel Christian, Winkler MariusORCID, Ziemen FlorianORCID, Marotzke JochemORCID, Stevens BjornORCID
Abstract
Abstract. State-of-the-art Earth system models typically employ grid spacings of O(100 km), which is too coarse to explicitly resolve main drivers of the flow of energy and matter across the Earth system. In this paper, we present the new ICON-Sapphire model configuration, which targets a representation of the components of the Earth system and their interactions with a grid spacing of 10 km and finer. Through the use of selected simulation examples, we demonstrate that ICON-Sapphire can (i) be run coupled globally on seasonal timescales with a grid spacing of 5 km, on monthly timescales with a grid spacing of 2.5 km, and on daily timescales with a grid spacing of 1.25 km; (ii) resolve large eddies in the atmosphere using hectometer grid spacings on limited-area domains in atmosphere-only simulations; (iii) resolve submesoscale ocean eddies by using a global uniform grid of 1.25 km or a telescoping grid with the finest grid spacing at 530 m, the latter coupled to a uniform atmosphere; and (iv) simulate biogeochemistry in an ocean-only simulation integrated for 4 years at 10 km. Comparison of basic features of the climate system to observations reveals no obvious pitfalls, even though some observed aspects remain difficult to capture. The throughput of the coupled 5 km global simulation is 126 simulated days per day employing 21 % of the latest machine of the German Climate Computing Center. Extrapolating from these results, multi-decadal global simulations including interactive carbon are now possible, and short global simulations resolving large eddies in the atmosphere and submesoscale eddies in the ocean are within reach.
Funder
Deutsche Forschungsgemeinschaft Horizon 2020 Bundesministerium für Bildung und Forschung Bundesministerium für Verkehr und Digitale Infrastruktur
Publisher
Copernicus GmbH
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