Remapping of Greenland ice sheet surface mass balance anomalies for large ensemble sea-level change projections

Publication date

2020-06-02

Authors

Goelzer, HeikoISNI 0000000350827711
Noël, B.P.Y.ISNI 0000000492916939
Edwards, Tamsin L.
Fettweis, Xavier
Gregory, Jonathan M.
Lipscomb, William H.
van de Wal, Roderik S.W.ISNI 0000000388217396
van den Broeke, MichielORCID 0000-0003-4662-7565ISNI 0000000389564445

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Article
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Abstract

Future sea-level change projections with process-based stand-alone ice sheet models are typically driven with surface mass balance (SMB) forcing derived from climate models. In this work we address the problems arising from a mismatch of the modelled ice sheet geometry with the geometry used by the climate model. We present a method for applying SMB forcing from climate models to a wide range of Greenland ice sheet models with varying and temporally evolving geometries. In order to achieve that, we translate a given SMB anomaly field as a function of absolute location to a function of surface elevation for 25 regional drainage basins, which can then be applied to different modelled ice sheet geometries. The key feature of the approach is the non-locality of this remapping process. The method reproduces the original forcing data closely when remapped to the original geometry. When remapped to different modelled geometries it produces a physically meaningful forcing with smooth and continuous SMB anomalies across basin divides. The method considerably reduces non-physical biases that would arise by applying the SMB anomaly derived for the climate model geometry directly to a large range of modelled ice sheet model geometries.

Keywords

Water Science and Technology, Earth-Surface Processes

Citation

Goelzer, H, Noël, B P Y, Edwards, T L, Fettweis, X, Gregory, J M, Lipscomb, W H, Van De Wal, R S W & Van Den Broeke, M R 2020, 'Remapping of Greenland ice sheet surface mass balance anomalies for large ensemble sea-level change projections', Cryosphere, vol. 14, no. 6, pp. 1747-1762. https://doi.org/10.5194/tc-14-1747-2020