Mountain glacier evolution since the last interglacial

Abstract. Mountain glacier evolution since the last interglacial remains poorly constrained, with limited spatial and temporal coverage. Conventional modelling approaches typically target major climatic events, operate at coarse spatial resolution over limited spatial domains, or employ simplified representations of ice dynamics. Here, we address these limitations by applying the Instructed Glacier Model (IGM), to reconstruct, for the first time, mountain glacier evolution since ∼130 ka at 500 m resolution across nine mountain ranges in North America, South America, Eurasia, and Africa. We perform 707 parameter-calibration simulations by varying paleoclimate and ice-dynamic parameters, and validate model performance by assessing glacier extent and ice thickness. The model outputs are evaluated using a spatial frequency map approach, which identifies a set of acceptable model results rather than a single best-fit simulation. As a result, we identify areas of robust agreement and those sensitive to parameter choices, providing a systematic way to visualise spatial uncertainty and glacier–climate-topography interactions. Together, our framework is a scalable foundation for next-generation, uncertainty-aware reconstructions turning glacier modelling at orbital-timescales into a reproducible, expandable workflow that can be deployed across mountain ranges worldwide. All data are publicly available at https://archive.sigma2.no/dataset/evolution-of-mountain-glaciers-since-the-last-interglacial (Barndon et al., 2026b) and the animations at https://av.tib.eu/series/2022 (Barndon et al., 2026a).

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Publication Details

Journal
Earth System Science Data Discussions
Published
2026-09-28
DOI
https://doi.org/10.5194/essd-2026-404
Primary Topic
Geology and Paleoclimatology Research
Type
preprint
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preprint

Mountain glacier evolution since the last interglacial

Eline S. Rentier, Suzette G. A. Flantua, Augusto Lima, Sjur Barndon et al.
Earth System Science Data Discussions
Geology and Paleoclimatology Research
preprint

Mountain glacier evolution since the last interglacial

Eline S. Rentier, Suzette G. A. Flantua, Augusto Lima, Sjur Barndon, Abe Theodorus Wiersma, Tancrede P.M. Leger, Raúl Prats, David Chandler
preprint en

Abstract

Abstract. Mountain glacier evolution since the last interglacial remains poorly constrained, with limited spatial and temporal coverage. Conventional modelling approaches typically target major climatic events, operate at coarse spatial resolution over limited spatial domains, or employ simplified representations of ice dynamics. Here, we address these limitations by applying the Instructed Glacier Model (IGM), to reconstruct, for the first time, mountain glacier evolution since ∼130 ka at 500 m resolution across nine mountain ranges in North America, South America, Eurasia, and Africa. We perform 707 parameter-calibration simulations by varying paleoclimate and ice-dynamic parameters, and validate model performance by assessing glacier extent and ice thickness. The model outputs are evaluated using a spatial frequency map approach, which identifies a set of acceptable model results rather than a single best-fit simulation. As a result, we identify areas of robust agreement and those sensitive to parameter choices, providing a systematic way to visualise spatial uncertainty and glacier–climate-topography interactions. Together, our framework is a scalable foundation for next-generation, uncertainty-aware reconstructions turning glacier modelling at orbital-timescales into a reproducible, expandable workflow that can be deployed across mountain ranges worldwide. All data are publicly available at https://archive.sigma2.no/dataset/evolution-of-mountain-glaciers-since-the-last-interglacial (Barndon et al., 2026b) and the animations at https://av.tib.eu/series/2022 (Barndon et al., 2026a).

Earth System Science Data Discussions
Bjerknes Centre for Climate Research (NO), NORCE Research AS (NO), University of Bergen (NO), Universitat de Barcelona (ES), University of Lausanne (CH)
Climate action
Geology and Paleoclimatology Research
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