ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate

<p>The Zonally Averaged Energy and Moisture BAlance (ZEMBA) climate model is introduced as a simple and computationally efficient tool for studies of the glacial–interglacial cycles of the Quaternary. The model is based on an energy balance model comprising an atmospheric layer, a land compone...

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Main Authors: D. F. J. Gunning, K. H. Nisancioglu, E. Capron, R. S. W. van de Wal
Format: Article
Language:English
Published: Copernicus Publications 2025-05-01
Series:Geoscientific Model Development
Online Access:https://gmd.copernicus.org/articles/18/2479/2025/gmd-18-2479-2025.pdf
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author D. F. J. Gunning
K. H. Nisancioglu
E. Capron
R. S. W. van de Wal
R. S. W. van de Wal
author_facet D. F. J. Gunning
K. H. Nisancioglu
E. Capron
R. S. W. van de Wal
R. S. W. van de Wal
author_sort D. F. J. Gunning
collection DOAJ
description <p>The Zonally Averaged Energy and Moisture BAlance (ZEMBA) climate model is introduced as a simple and computationally efficient tool for studies of the glacial–interglacial cycles of the Quaternary. The model is based on an energy balance model comprising an atmospheric layer, a land component and a two-dimensional ocean transport model with sea ice. In addition, ZEMBA replaces temperature with moist static energy for calculations of diffusive heat transport in the atmospheric layer and includes a hydrological cycle for simulating precipitation and snowfall. Prior to coupling with an ice sheet model, we present and evaluate equilibrium simulations of the model for the pre-industrial period and the Last Glacial Maximum, using prescribed land ice fractions and elevation. In addition, we test the sensitivity of ZEMBA to a doubling of the atmospheric CO<span class="inline-formula"><sub>2</sub></span> concentration and a 2 % increase in solar radiation at the top of the atmosphere. Compared to a global climate model (the Norwegian Earth System Model version 2, NorESM2) and reanalysis data (ERA5), ZEMBA reproduces the zonally averaged climate of the pre-industrial period with reasonable accuracy, capturing features such as surface temperature, precipitation, radiative fluxes, snow cover, sea ice cover and meridional heat transport. The response of ZEMBA to increasing CO<span class="inline-formula"><sub>2</sub></span> concentrations is qualitatively similar to the observational record and climate models of higher complexity, including polar amplification over the Northern Hemisphere and during the winter months. The globally averaged rise in surface air temperature for a doubling in CO<span class="inline-formula"><sub>2</sub></span> is 3.6 °C. Finally, ZEMBA shows success in emulating changes in surface temperature and precipitation during the Last Glacial Maximum when compared to reconstructions and global climate models.</p>
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spelling doaj-art-b5bb229094564c969eefcb6e6108382d2025-08-20T01:47:37ZengCopernicus PublicationsGeoscientific Model Development1991-959X1991-96032025-05-01182479250810.5194/gmd-18-2479-2025ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climateD. F. J. Gunning0K. H. Nisancioglu1E. Capron2R. S. W. van de Wal3R. S. W. van de Wal4Department of Earth Science, University of Bergen and Bjerknes Centre for Climate Research, Bergen, NorwayDepartment of Earth Science, University of Bergen and Bjerknes Centre for Climate Research, Bergen, NorwayUniversité Grenoble Alpes, CNRS, INRAE, IRD, Grenoble INP, IGE, 38000 Grenoble, FranceInstitute for Marine and Atmospheric research Utrecht, Utrecht University, Utrecht, the NetherlandsDepartment of Physical Geography, Faculty of Geosciences, Utrecht University, Utrecht, the Netherlands<p>The Zonally Averaged Energy and Moisture BAlance (ZEMBA) climate model is introduced as a simple and computationally efficient tool for studies of the glacial–interglacial cycles of the Quaternary. The model is based on an energy balance model comprising an atmospheric layer, a land component and a two-dimensional ocean transport model with sea ice. In addition, ZEMBA replaces temperature with moist static energy for calculations of diffusive heat transport in the atmospheric layer and includes a hydrological cycle for simulating precipitation and snowfall. Prior to coupling with an ice sheet model, we present and evaluate equilibrium simulations of the model for the pre-industrial period and the Last Glacial Maximum, using prescribed land ice fractions and elevation. In addition, we test the sensitivity of ZEMBA to a doubling of the atmospheric CO<span class="inline-formula"><sub>2</sub></span> concentration and a 2 % increase in solar radiation at the top of the atmosphere. Compared to a global climate model (the Norwegian Earth System Model version 2, NorESM2) and reanalysis data (ERA5), ZEMBA reproduces the zonally averaged climate of the pre-industrial period with reasonable accuracy, capturing features such as surface temperature, precipitation, radiative fluxes, snow cover, sea ice cover and meridional heat transport. The response of ZEMBA to increasing CO<span class="inline-formula"><sub>2</sub></span> concentrations is qualitatively similar to the observational record and climate models of higher complexity, including polar amplification over the Northern Hemisphere and during the winter months. The globally averaged rise in surface air temperature for a doubling in CO<span class="inline-formula"><sub>2</sub></span> is 3.6 °C. Finally, ZEMBA shows success in emulating changes in surface temperature and precipitation during the Last Glacial Maximum when compared to reconstructions and global climate models.</p>https://gmd.copernicus.org/articles/18/2479/2025/gmd-18-2479-2025.pdf
spellingShingle D. F. J. Gunning
K. H. Nisancioglu
E. Capron
R. S. W. van de Wal
R. S. W. van de Wal
ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
Geoscientific Model Development
title ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
title_full ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
title_fullStr ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
title_full_unstemmed ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
title_short ZEMBA v1.0: an energy and moisture balance climate model to investigate Quaternary climate
title_sort zemba v1 0 an energy and moisture balance climate model to investigate quaternary climate
url https://gmd.copernicus.org/articles/18/2479/2025/gmd-18-2479-2025.pdf
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