Open Access
Open access
volume 14 issue 9 pages 3033-3070

ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century

Helene Seroussi 1
S. Nowicki 2
Tony Payne 3
H. Goelzer 4, 5
William H. Lipscomb 6
Ayako Abe-Ouchi 7
C. Agosta 8
Torsten Albrecht 9
Xylar Asay-Davis 10
Alice Barthel 10
Reinhard Calov 9
Richard I. Cullather 11
Christophe Dumas 8
Rupert Gladstone 13
Nick Golledge 14
J P GREGORY 15, 16
Ralf Greve 17, 18
Tore Hattermann 19, 20
M. Hoffman 10
Angelika Humbert 21, 22
P. Huybrechts 23
N. C. Jourdain 24
T. Kleiner 25
E. Larour 1
G. R. Leguy 6
Daniel Lowry 26, 27
Chistopher M. Little 28
Mathieu Morlighem 29
Frank Pattyn 30
Tyler Pelle 29
S. Price 10
Aurélien Quiquet 8
Ronja Reese 9
Nicole-Jeanne Schlegel 1
A. M. M. SHEPHERD 31
Erika Simon 11
Robin Smith 32
Fiammetta Straneo 33
S. Sun 30
Luke D. Trusel 34
Jonas Van Breedam 23
Roderik van de Wal 4
Ricarda Winkelmann 35, 36
Chen Zhao 37
Tong Zhang 10
Thomas Zwinger 38
18
 
Sapporo Japan
20
 
Norwegian Polar Institute, Tromsø, Norway
26
 
27
 
Lower Hutt New Zealand
28
 
Atmospheric and Environmental Research, Inc., Lexington, MA, USA
37
 
Inst. for Marine and Antarctic Studies, Univ. of Tasmania, Hobart, Australia
38
 
CSC IT Center for Science, Espoo, Finland
Publication typeJournal Article
Publication date2020-09-17
scimago Q1
wos Q1
SJR1.984
CiteScore8.0
Impact factor4.2
ISSN19940416, 19940424
Water Science and Technology
Earth-Surface Processes
Abstract

Abstract. Ice flow models of the Antarctic ice sheet are commonly used to simulate its future evolution in response to different climate scenarios and assess the mass loss that would contribute to future sea level rise. However, there is currently no consensus on estimates of the future mass balance of the ice sheet, primarily because of differences in the representation of physical processes, forcings employed and initial states of ice sheet models. This study presents results from ice flow model simulations from 13 international groups focusing on the evolution of the Antarctic ice sheet during the period 2015–2100 as part of the Ice Sheet Model Intercomparison for CMIP6 (ISMIP6). They are forced with outputs from a subset of models from the Coupled Model Intercomparison Project Phase 5 (CMIP5), representative of the spread in climate model results. Simulations of the Antarctic ice sheet contribution to sea level rise in response to increased warming during this period varies between −7.8 and 30.0 cm of sea level equivalent (SLE) under Representative Concentration Pathway (RCP) 8.5 scenario forcing. These numbers are relative to a control experiment with constant climate conditions and should therefore be added to the mass loss contribution under climate conditions similar to present-day conditions over the same period. The simulated evolution of the West Antarctic ice sheet varies widely among models, with an overall mass loss, up to 18.0 cm SLE, in response to changes in oceanic conditions. East Antarctica mass change varies between −6.1 and 8.3 cm SLE in the simulations, with a significant increase in surface mass balance outweighing the increased ice discharge under most RCP 8.5 scenario forcings. The inclusion of ice shelf collapse, here assumed to be caused by large amounts of liquid water ponding at the surface of ice shelves, yields an additional simulated mass loss of 28 mm compared to simulations without ice shelf collapse. The largest sources of uncertainty come from the climate forcing, the ocean-induced melt rates, the calibration of these melt rates based on oceanic conditions taken outside of ice shelf cavities and the ice sheet dynamic response to these oceanic changes. Results under RCP 2.6 scenario based on two CMIP5 climate models show an additional mass loss of 0 and 3 cm of SLE on average compared to simulations done under present-day conditions for the two CMIP5 forcings used and display limited mass gain in East Antarctica.

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GOST Copy
Seroussi H. et al. ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century // Cryosphere. 2020. Vol. 14. No. 9. pp. 3033-3070.
GOST all authors (up to 50) Copy
Seroussi H. et al. ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century // Cryosphere. 2020. Vol. 14. No. 9. pp. 3033-3070.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.5194/tc-14-3033-2020
UR - https://doi.org/10.5194/tc-14-3033-2020
TI - ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century
T2 - Cryosphere
AU - Seroussi, Helene
AU - Nowicki, S.
AU - Payne, Tony
AU - Goelzer, H.
AU - Lipscomb, William H.
AU - Abe-Ouchi, Ayako
AU - Agosta, C.
AU - Albrecht, Torsten
AU - Asay-Davis, Xylar
AU - Barthel, Alice
AU - Calov, Reinhard
AU - Cullather, Richard I.
AU - Dumas, Christophe
AU - Galton-Fenzi, Benjamin K.
AU - Gladstone, Rupert
AU - Golledge, Nick
AU - GREGORY, J P
AU - Greve, Ralf
AU - Hattermann, Tore
AU - Hoffman, M.
AU - Humbert, Angelika
AU - Huybrechts, P.
AU - Jourdain, N. C.
AU - Kleiner, T.
AU - Larour, E.
AU - Leguy, G. R.
AU - Lowry, Daniel
AU - Little, Chistopher M.
AU - Morlighem, Mathieu
AU - Pattyn, Frank
AU - Pelle, Tyler
AU - Price, S.
AU - Quiquet, Aurélien
AU - Reese, Ronja
AU - Schlegel, Nicole-Jeanne
AU - SHEPHERD, A. M. M.
AU - Simon, Erika
AU - Smith, Robin
AU - Straneo, Fiammetta
AU - Sun, S.
AU - Trusel, Luke D.
AU - Van Breedam, Jonas
AU - van de Wal, Roderik
AU - Winkelmann, Ricarda
AU - Zhao, Chen
AU - Zhang, Tong
AU - Zwinger, Thomas
PY - 2020
DA - 2020/09/17
PB - Copernicus
SP - 3033-3070
IS - 9
VL - 14
SN - 1994-0416
SN - 1994-0424
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2020_Seroussi,
author = {Helene Seroussi and S. Nowicki and Tony Payne and H. Goelzer and William H. Lipscomb and Ayako Abe-Ouchi and C. Agosta and Torsten Albrecht and Xylar Asay-Davis and Alice Barthel and Reinhard Calov and Richard I. Cullather and Christophe Dumas and Benjamin K. Galton-Fenzi and Rupert Gladstone and Nick Golledge and J P GREGORY and Ralf Greve and Tore Hattermann and M. Hoffman and Angelika Humbert and P. Huybrechts and N. C. Jourdain and T. Kleiner and E. Larour and G. R. Leguy and Daniel Lowry and Chistopher M. Little and Mathieu Morlighem and Frank Pattyn and Tyler Pelle and S. Price and Aurélien Quiquet and Ronja Reese and Nicole-Jeanne Schlegel and A. M. M. SHEPHERD and Erika Simon and Robin Smith and Fiammetta Straneo and S. Sun and Luke D. Trusel and Jonas Van Breedam and Roderik van de Wal and Ricarda Winkelmann and Chen Zhao and Tong Zhang and Thomas Zwinger and others},
title = {ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century},
journal = {Cryosphere},
year = {2020},
volume = {14},
publisher = {Copernicus},
month = {sep},
url = {https://doi.org/10.5194/tc-14-3033-2020},
number = {9},
pages = {3033--3070},
doi = {10.5194/tc-14-3033-2020}
}
MLA
Cite this
MLA Copy
Seroussi, Helene, et al. “ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century.” Cryosphere, vol. 14, no. 9, Sep. 2020, pp. 3033-3070. https://doi.org/10.5194/tc-14-3033-2020.