Corrected ICESat altimetry data, surface mass balance, and firn elevation change on Antarctic ice shelves

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Main Authors: Pritchard, Hamish D, Ligtenberg, Stefan R M, Fricker, Helen, van den Broeke, Michiel R, Vaughan, David G, Padman, Laurie
Format: Dataset Open Access
Language:en
Published: PANGAEA 2012
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author Pritchard, Hamish D
Ligtenberg, Stefan R M
Fricker, Helen
van den Broeke, Michiel R
Vaughan, David G
Padman, Laurie
author_facet Pritchard, Hamish D
Ligtenberg, Stefan R M
Fricker, Helen
van den Broeke, Michiel R
Vaughan, David G
Padman, Laurie
collection Datos científicos de ciencias marinas y ambientales
contents Accurate prediction of global sea-level rise requires that we understand the cause of recent, widespread and intensifying glacier acceleration along Antarctic ice-sheet coastal margins. Floating ice shelves buttress the flow of grounded tributary glaciers and their thickness and extent are particularly susceptible to changes in both climate and ocean forcing. Recent ice-shelf collapse led to retreat and acceleration of several glaciers on the Antarctic Peninsula. However, the extent and magnitude of ice-shelf thickness change, its causes and its link to glacier flow rate are so poorly understood that its influence on the future of the ice sheets cannot yet be predicted. Here we use satellite laser altimetry and modelling of the surface firn layer to reveal for the first time the circum-Antarctic pattern of ice-shelf thinning through increased basal melt. We deduce that this increased melt is the primary driver of Antarctic ice-sheet loss, through a reduction in buttressing of the adjacent ice sheet that has led to accelerated glacier flow. The highest thinning rates (~7 m/a) occur where warm water at depth can access thick ice shelves via submarine troughs crossing the continental shelf. Wind forcing could explain the dominant patterns of both basal melting and the surface melting and collapse of Antarctic ice shelves, through ocean upwelling in the Amundsen and Bellingshausen Seas and atmospheric warming on the Antarctic Peninsula. This implies that climate forcing through changing winds influences Antarctic Ice Sheet mass balance, and hence global sea-level, on annual to decadal timescales.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_775984
institution PANGAEA
language en
publishDate 2012
publisher PANGAEA
record_format pangaea
spellingShingle Corrected ICESat altimetry data, surface mass balance, and firn elevation change on Antarctic ice shelves
Pritchard, Hamish D
Ligtenberg, Stefan R M
Fricker, Helen
van den Broeke, Michiel R
Vaughan, David G
Padman, Laurie
ice2sea
Accurate prediction of global sea-level rise requires that we understand the cause of recent, widespread and intensifying glacier acceleration along Antarctic ice-sheet coastal margins. Floating ice shelves buttress the flow of grounded tributary glaciers and their thickness and extent are particularly susceptible to changes in both climate and ocean forcing. Recent ice-shelf collapse led to retreat and acceleration of several glaciers on the Antarctic Peninsula. However, the extent and magnitude of ice-shelf thickness change, its causes and its link to glacier flow rate are so poorly understood that its influence on the future of the ice sheets cannot yet be predicted. Here we use satellite laser altimetry and modelling of the surface firn layer to reveal for the first time the circum-Antarctic pattern of ice-shelf thinning through increased basal melt. We deduce that this increased melt is the primary driver of Antarctic ice-sheet loss, through a reduction in buttressing of the adjacent ice sheet that has led to accelerated glacier flow. The highest thinning rates (~7 m/a) occur where warm water at depth can access thick ice shelves via submarine troughs crossing the continental shelf. Wind forcing could explain the dominant patterns of both basal melting and the surface melting and collapse of Antarctic ice shelves, through ocean upwelling in the Amundsen and Bellingshausen Seas and atmospheric warming on the Antarctic Peninsula. This implies that climate forcing through changing winds influences Antarctic Ice Sheet mass balance, and hence global sea-level, on annual to decadal timescales.
title Corrected ICESat altimetry data, surface mass balance, and firn elevation change on Antarctic ice shelves
topic ice2sea
url https://doi.org/10.1594/PANGAEA.775984