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Centennial response of Greenland's three largest outlet glaciers

Earth Sciences

Centennial response of Greenland's three largest outlet glaciers

S. A. Khan, A. A. Bjørk, et al.

This study explores the dramatic transformation of Greenland's largest outlet glaciers in response to climate forces, based on historical photographs and models. The research, conducted by a team of experts, reveals that current predictions may be underestimating the glaciers' potential mass loss, raising concerns for future sea level impacts.... show more
Abstract
The Greenland Ice Sheet is the largest land ice contributor to sea level rise. This will continue in the future but at an uncertain rate and observational estimates are limited to the last few decades. Understanding the long-term glacier response to external forcing is key to improving projections. Here we use historical photographs to calculate ice loss from 1880–2012 for Jakobshavn, Helheim, and Kangerlussuaq glacier. We estimate ice loss corresponding to a sea level rise of 8.1 ± 1.1 millimetres from these three glaciers. Projections of mass loss for these glaciers, using the worst-case scenario, Representative Concentration Pathways 8.5, suggest a sea level contribution of 9.1–14.9 mm by 2100. RCP8.5 implies an additional global temperature increase of 3.7 °C by 2100, approximately four times larger than that which has taken place since 1880. We infer that projections forced by RCP8.5 underestimate glacier mass loss which could exceed this worst-case scenario.
Publisher
Nature Communications
Published On
Nov 17, 2020
Authors
Shfaqat A. Khan, Anders A. Bjørk, Jonathan L. Bamber, Mathieu Morlighem, Michael Bevis, Kurt H. Kjær, Jérémie Mouginot, Anja Løkkegaard, David M. Holland, Andy Aschwanden, Bao Zhang, Veit Helm, Niels J. Korsgaard, William Colgan, Nicolaj K. Larsen, Lin Liu, Karina Hansen, Valentina Barletta, Trine S. Dahl-Jensen, Anne Sofie Søndergaard, Beata M. Csatho, Ingo Sasgen, Jason Box, Toni Schenk
Tags
Greenland
outlet glaciers
climate forcing
ice loss
sea level
mass loss
glaciology
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