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A multi-model CMIP6-PMIP4 study of Arctic sea ice at 127 ka: sea ice data compilation and model differencesThe Last Interglacial period (LIG) is a period with increased summer insolation at high northern latitudes, which results in strong changes in the terrestrial and marine cryosphere. Understanding the mechanisms for this response via climate modelling and comparing the models' representation of climate reconstructions is one of the objectives set up by the Paleoclimate Modelling Intercomparison Project for its contribution to the sixth phase of the Coupled Model Intercomparison Project. Here we analyse the results from 16 climate models in terms of Arctic sea ice. The multi-model mean reduction in minimum sea ice area from the pre industrial period (PI) to the LIG reaches 50 % (multi-model mean LIG area is 3.20×10^6 sq.km, compared to 6.46×10^6 sq.km for the PI). On the other hand, there is little change for the maximum sea ice area (which is 15–16×10^6 sq.km for both the PI and the LIG. To evaluate the model results we synthesise LIG sea ice data from marine cores collected in the Arctic Ocean, Nordic Seas and northern North Atlantic. The reconstructions for the northern North Atlantic show year-round ice-free conditions, and most models yield results in agreement with these reconstructions. Model–data disagreement appear for the sites in the Nordic Seas close to Greenland and at the edge of the Arctic Ocean. The northernmost site with good chronology, for which a sea ice concentration larger than 75 % is reconstructed even in summer, discriminates those models which simulate too little sea ice. However, the remaining models appear to simulate too much sea ice over the two sites south of the northernmost one, for which the reconstructed sea ice cover is seasonal. Hence models either underestimate or overestimate sea ice cover for the LIG, and their bias does not appear to be related to their bias for the pre-industrial period. Drivers for the inter-model differences are different phasing of the up and down short-wave anomalies over the Arctic Ocean, which are associated with differences in model albedo; possible cloud property differences, in terms of optical depth; and LIG ocean circulation changes which occur for some, but not all, LIG simulations. Finally, we note that inter-comparisons between the LIG simulations and simulations for future climate with moderate (1 %/yr) CO2 increase show a relationship between LIG sea ice and sea ice simulated under CO2 increase around the years of doubling CO2. The LIG may therefore yield insight into likely 21st century Arctic sea ice changes using these LIG simulations.
Document ID
20210010035
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Masa Kageyama
(University of Paris-Saclay Gif-sur-Yvette, France)
Louise C. Sime ORCID
(British Antarctic Survey Cambridge, United Kingdom)
Marie Sicard
(University of Paris-Saclay Gif-sur-Yvette, France)
Maria Vittoria Guarino ORCID
(British Antarctic Survey Cambridge, United Kingdom)
Anne de Vernal
(University of Quebec at Montreal Montreal, Quebec, Canada)
Ruediger Stein ORCID
(Alfred Wegener Institute for Polar and Marine Research Bremerhaven, Germany)
David Schroeder ORCID
(University of Reading Reading, United Kingdom)
Irene Malmierca-Vallet ORCID
(British Antarctic Survey Cambridge, United Kingdom)
Ayako Abe-Ouchi ORCID
(University of Tokyo Tokyo, Japan)
Cecilia Bitz
(University of Washington Seattle, Washington, United States)
Pascale Braconnot
(University of Paris-Saclay Gif-sur-Yvette, France)
Esther C. Brady ORCID
(National Center for Atmospheric Research Boulder, Colorado, United States)
Jian Cao
(Nanjing University of Information Science and Technology Nanjing, China)
Matthew A. Chamberlain ORCID
(CSIRO Ocean and Atmosphere Canberra, Australian Capital Territory, Australia)
Danny Feltham
(University of Reading Reading, United Kingdom)
Chuncheng Guo ORCID
(Norwegian Centre for Research Data Bergen, Norway)
Allegra N. LeGrande
(Goddard Institute for Space Studies New York, New York, United States)
Gerrit Lohmann ORCID
(Alfred Wegener Institute for Polar and Marine Research Bremerhaven, Germany)
Katrin J. Meissner
(UNSW Sydney Sydney, New South Wales, Australia)
Laurie Menviel ORCID
(UNSW Sydney Sydney, New South Wales, Australia)
Polina Morozova ORCID
(Institute of Geography Moscow, Russia)
Kerim H. Nisancioglu ORCID
(University of Bergen Bergen, Hordaland, Norway)
Bette L. Otto-Bliesner ORCID
(National Center for Atmospheric Research Boulder, Colorado, United States)
Ryouta O'ishi ORCID
(University of Tokyo Tokyo, Japan)
Silvana Ramos Buarque ORCID
(Centre National de Recherches Météorologiques Toulouse, France)
David Salas y Melia
(Centre National de Recherches Météorologiques Toulouse, France)
Sam Sherriff-Tadano ORCID
(University of Tokyo Tokyo, Japan)
Julienne Stroeve
(University of Manitoba Winnipeg, Manitoba, Canada)
Xiaoxu Shi
(Alfred Wegener Institute for Polar and Marine Research Bremerhaven, Germany)
Bo Sun
(Nanjing University of Information Science and Technology Nanjing, China)
Robert A. Tomas
(Climate and Global Dynamics Laboratory Boulder, Colorado, United States)
Evgeny Volodin
(Institute of Numerical Mathematics Moscow, Russia)
Nicholas K. H. Yeung ORCID
(UNSW Sydney Sydney, New South Wales, Australia)
Qiong Zhang ORCID
(Bolin Centre for Climate Research Stockholm, Sweden)
Zhongshi Zhang ORCID
(Norwegian Centre for Research Data Bergen, Norway)
Weipeng Zheng ORCID
(Chinese Academy of Sciences Beijing, Beijing, China)
Tilo Ziehn ORCID
(CSIRO Ocean and Atmosphere Canberra, Australian Capital Territory, Australia)
Date Acquired
February 11, 2021
Publication Date
January 11, 2021
Publication Information
Publication: Climate of the Past
Publisher: European Geosciences Union / Copernicus Publications
Volume: 17
Issue: 1
Issue Publication Date: January 1, 2021
ISSN: 1814-9324
e-ISSN: 1814-9332
URL: https://cp.copernicus.org/articles/17/37/2021/
Subject Category
Meteorology And Climatology
Funding Number(s)
WBS: 509496.02.80.01.15
PROJECT: PACMEDY 01LP1607A
CONTRACT_GRANT: BMBF PalMod II 01LP1924B
PROJECT: NE/P013279/1
PROJECT: NE/P009271/1
CONTRACT_GRANT: EUH 2020 820970
PROJECT: 0148-2019-0009
CONTRACT_GRANT: RSF 20-17-00190
CONTRACT_GRANT: NSF 1852977
CONTRACT_GRANT: ARC FT180100606
CONTRACT_GRANT: ARC DP180100048
CONTRACT_GRANT: ArCS JPMXD1300000000
CONTRACT_GRANT: ArCS II JPMXD1420318865
CONTRACT_GRANT: JSPS KAKENHI 17H06104
CONTRACT_GRANT: MEXT KAKENHI 17H06323
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
Arctic sea ice
data compilation
model differences
multi-model CMIP6-PMIP4 study
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