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dc.date.accessioned2020-12-04T20:09:37Z
dc.date.available2020-12-04T20:09:37Z
dc.date.created2020-11-16T09:31:28Z
dc.date.issued2020
dc.identifier.citationFettweis, Xavier Hofer, Stefan Krebs-Kanzow, Uta Amory, Charles Aoki, Teruo Berends, Constantijn J. Born, Andreas Box, Jason E. Delhasse, Alison Fujita, Koji Gierz, Paul Goelzer, Heiko Hanna, Edward Hashimoto, Akihiro Huybrechts, Philippe Kapsch, Marie-Luise King, Michaela D. Kittel, Christoph Lang, Charlotte Langen, Peter L. Lenaerts, Jan T.M. Liston, Glen E. Lohmann, Gerrit Mernild, Jacob Sebastian Haugaard Mikolajewicz, Uwe Modali, Kameswarrao Mottram, Ruth H. Niwano, Masashi Noël, Brice Ryan, Jonathan C. Smith, Amy Streffing, Jan Tedesco, Marco Van de Berg, Willem Jan Van den Broeke, Michiel Van de Wal, Rodecrick S. Von Kampenhout, Leo Wilton, David Wouters, Bert Ziemen, Florian Zolles, Tobias . GrSMBMIP: intercomparison of the modelled 1980-2012 surface mass balance over the Greenland Ice Sheet. The Cryosphere. 2020, 14, 3935-3958
dc.identifier.urihttp://hdl.handle.net/10852/81412
dc.description.abstractObservations and models agree that the Greenland Ice Sheet (GrIS) surface mass balance (SMB) has decreased since the end of the 1990s due to an increase in meltwater runoff and that this trend will accelerate in the future. However, large uncertainties remain, partly due to different approaches for modelling the GrIS SMB, which have to weigh physical complexity or low computing time, different spatial and temporal resolutions, different forcing fields, and different ice sheet topographies and extents, which collectively make an inter-comparison difficult. Our GrIS SMB model intercomparison project (GrSMBMIP) aims to refine these uncertainties by intercomparing 13 models of four types which were forced with the same ERA-Interim reanalysis forcing fields, except for two global models. We interpolate all modelled SMB fields onto a common ice sheet mask at 1 km horizontal resolution for the period 1980–2012 and score the outputs against (1) SMB estimates from a combination of gravimetric remote sensing data from GRACE and measured ice discharge; (2) ice cores, snow pits and in situ SMB observations; and (3) remotely sensed bare ice extent from MODerate-resolution Imaging Spectroradiometer (MODIS). Spatially, the largest spread among models can be found around the margins of the ice sheet, highlighting model deficiencies in an accurate representation of the GrIS ablation zone extent and processes related to surface melt and runoff. Overall, polar regional climate models (RCMs) perform the best compared to observations, in particular for simulating precipitation patterns. However, other simpler and faster models have biases of the same order as RCMs compared with observations and therefore remain useful tools for long-term simulations or coupling with ice sheet models. Finally, it is interesting to note that the ensemble mean of the 13 models produces the best estimate of the present-day SMB relative to observations, suggesting that biases are not systematic among models and that this ensemble estimate can be used as a reference for current climate when carrying out future model developments. However, a higher density of in situ SMB observations is required, especially in the south-east accumulation zone, where the model spread can reach 2 m w.e. yr−1 due to large discrepancies in modelled snowfall accumulation.
dc.languageEN
dc.publisherCopernicus Publications under license by EGU – European Geosciences Union GmbH
dc.rightsAttribution 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.titleGrSMBMIP: intercomparison of the modelled 1980-2012 surface mass balance over the Greenland Ice Sheet
dc.typeJournal article
dc.creator.authorFettweis, Xavier
dc.creator.authorHofer, Stefan
dc.creator.authorKrebs-Kanzow, Uta
dc.creator.authorAmory, Charles
dc.creator.authorAoki, Teruo
dc.creator.authorBerends, Constantijn J.
dc.creator.authorBorn, Andreas
dc.creator.authorBox, Jason E.
dc.creator.authorDelhasse, Alison
dc.creator.authorFujita, Koji
dc.creator.authorGierz, Paul
dc.creator.authorGoelzer, Heiko
dc.creator.authorHanna, Edward
dc.creator.authorHashimoto, Akihiro
dc.creator.authorHuybrechts, Philippe
dc.creator.authorKapsch, Marie-Luise
dc.creator.authorKing, Michaela D.
dc.creator.authorKittel, Christoph
dc.creator.authorLang, Charlotte
dc.creator.authorLangen, Peter L.
dc.creator.authorLenaerts, Jan T.M.
dc.creator.authorListon, Glen E.
dc.creator.authorLohmann, Gerrit
dc.creator.authorMernild, Jacob Sebastian Haugaard
dc.creator.authorMikolajewicz, Uwe
dc.creator.authorModali, Kameswarrao
dc.creator.authorMottram, Ruth H.
dc.creator.authorNiwano, Masashi
dc.creator.authorNoël, Brice
dc.creator.authorRyan, Jonathan C.
dc.creator.authorSmith, Amy
dc.creator.authorStreffing, Jan
dc.creator.authorTedesco, Marco
dc.creator.authorVan de Berg, Willem Jan
dc.creator.authorVan den Broeke, Michiel
dc.creator.authorVan de Wal, Rodecrick S.
dc.creator.authorVon Kampenhout, Leo
dc.creator.authorWilton, David
dc.creator.authorWouters, Bert
dc.creator.authorZiemen, Florian
dc.creator.authorZolles, Tobias
cristin.unitcode185,15,22,70
cristin.unitnameMeteorologi og oseanografi
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2
dc.identifier.cristin1848186
dc.identifier.bibliographiccitationinfo:ofi/fmt:kev:mtx:ctx&ctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=The Cryosphere&rft.volume=14&rft.spage=3935&rft.date=2020
dc.identifier.jtitleThe Cryosphere
dc.identifier.volume14
dc.identifier.issue11
dc.identifier.startpage3935
dc.identifier.endpage3958
dc.identifier.doihttps://doi.org/10.5194/tc-14-3935-2020
dc.identifier.urnURN:NBN:no-84500
dc.type.documentTidsskriftartikkel
dc.type.peerreviewedPeer reviewed
dc.source.issn1994-0416
dc.identifier.fulltextFulltext https://www.duo.uio.no/bitstream/handle/10852/81412/2/tc-14-3935-2020.pdf
dc.type.versionPublishedVersion


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