Simulated retreat of Jakobshavn Isbræ during the 21st century

<p>The early 21st century retreat of Jakobshavn Isbræ into its overdeepened bedrock trough was accompanied by acceleration to unprecedented ice stream speeds. Such dramatic changes suggested the possibility of substantial mass loss over the rest of this century. Here we use a three-dimensional...

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Main Authors: X. Guo, L. Zhao, R. M. Gladstone, S. Sun, J. C. Moore
Format: Article
Language:English
Published: Copernicus Publications 2019-11-01
Series:The Cryosphere
Online Access:https://www.the-cryosphere.net/13/3139/2019/tc-13-3139-2019.pdf
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author X. Guo
L. Zhao
L. Zhao
R. M. Gladstone
S. Sun
J. C. Moore
J. C. Moore
J. C. Moore
author_facet X. Guo
L. Zhao
L. Zhao
R. M. Gladstone
S. Sun
J. C. Moore
J. C. Moore
J. C. Moore
author_sort X. Guo
collection DOAJ
description <p>The early 21st century retreat of Jakobshavn Isbræ into its overdeepened bedrock trough was accompanied by acceleration to unprecedented ice stream speeds. Such dramatic changes suggested the possibility of substantial mass loss over the rest of this century. Here we use a three-dimensional ice sheet model with parameterizations to represent the effects of ice mélange buttressing, crevasse-depth-based calving and submarine melting to adequately reproduce its recent evolution. We are the first study on Jakobshavn Isbræ that solves for three-dimensional ice flow coupled with representations of hydro-fracturing-induced calving and mélange buttressing. Additionally, the model can accurately replicate interannual variations in grounding line and terminus position, including seasonal fluctuations that emerged after arriving at the overdeepened basin and the disappearance of its floating ice shelf. Our simulated ice viscosity variability due to shear margin evolution is particularly important in reproducing the large observed interannual changes in terminus velocity. We use this model to project Jakobshavn's evolution over this century, forced by ocean temperatures from seven Earth system models and surface runoff derived from RACMO, all under the IPCC RCP4.5 climate scenario. In our simulations, Jakobshavn's grounding line continues to retreat <span class="inline-formula">∼18.5</span>&thinsp;km by the end of this century, leading to a total mass loss of <span class="inline-formula">∼2068</span>&thinsp;Gt (5.7&thinsp;mm sea level rise equivalent). Despite the relative success of the model in simulating the recent behavior of the glacier, the model does not simulate winter calving events that have become relatively more important.</p>
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spelling doaj.art-fc5ffce884bc4a5d8eb269d825e67ede2022-12-22T01:03:50ZengCopernicus PublicationsThe Cryosphere1994-04161994-04242019-11-01133139315310.5194/tc-13-3139-2019Simulated retreat of Jakobshavn Isbræ during the 21st centuryX. Guo0L. Zhao1L. Zhao2R. M. Gladstone3S. Sun4J. C. Moore5J. C. Moore6J. C. Moore7College of Global Change and Earth System Science, Beijing Normal University, Beijing 100875, ChinaCollege of Global Change and Earth System Science, Beijing Normal University, Beijing 100875, ChinaSouthern Marine Science and Engineering Guangdong Laboratory, Zhuhai 519000, ChinaArctic Centre, University of Lapland, P.O. Box 122, 96101 Rovaniemi, FinlandLaboratoire de Glaciologie, Université libre de Bruxelles, Brussels, BelgiumCollege of Global Change and Earth System Science, Beijing Normal University, Beijing 100875, ChinaArctic Centre, University of Lapland, P.O. Box 122, 96101 Rovaniemi, FinlandCAS Center for Excellence in Tibetan Plateau Earth Sciences, Beijing 100101, China<p>The early 21st century retreat of Jakobshavn Isbræ into its overdeepened bedrock trough was accompanied by acceleration to unprecedented ice stream speeds. Such dramatic changes suggested the possibility of substantial mass loss over the rest of this century. Here we use a three-dimensional ice sheet model with parameterizations to represent the effects of ice mélange buttressing, crevasse-depth-based calving and submarine melting to adequately reproduce its recent evolution. We are the first study on Jakobshavn Isbræ that solves for three-dimensional ice flow coupled with representations of hydro-fracturing-induced calving and mélange buttressing. Additionally, the model can accurately replicate interannual variations in grounding line and terminus position, including seasonal fluctuations that emerged after arriving at the overdeepened basin and the disappearance of its floating ice shelf. Our simulated ice viscosity variability due to shear margin evolution is particularly important in reproducing the large observed interannual changes in terminus velocity. We use this model to project Jakobshavn's evolution over this century, forced by ocean temperatures from seven Earth system models and surface runoff derived from RACMO, all under the IPCC RCP4.5 climate scenario. In our simulations, Jakobshavn's grounding line continues to retreat <span class="inline-formula">∼18.5</span>&thinsp;km by the end of this century, leading to a total mass loss of <span class="inline-formula">∼2068</span>&thinsp;Gt (5.7&thinsp;mm sea level rise equivalent). Despite the relative success of the model in simulating the recent behavior of the glacier, the model does not simulate winter calving events that have become relatively more important.</p>https://www.the-cryosphere.net/13/3139/2019/tc-13-3139-2019.pdf
spellingShingle X. Guo
L. Zhao
L. Zhao
R. M. Gladstone
S. Sun
J. C. Moore
J. C. Moore
J. C. Moore
Simulated retreat of Jakobshavn Isbræ during the 21st century
The Cryosphere
title Simulated retreat of Jakobshavn Isbræ during the 21st century
title_full Simulated retreat of Jakobshavn Isbræ during the 21st century
title_fullStr Simulated retreat of Jakobshavn Isbræ during the 21st century
title_full_unstemmed Simulated retreat of Jakobshavn Isbræ during the 21st century
title_short Simulated retreat of Jakobshavn Isbræ during the 21st century
title_sort simulated retreat of jakobshavn isbrae during the 21st century
url https://www.the-cryosphere.net/13/3139/2019/tc-13-3139-2019.pdf
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