Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland

<p>On glaciers and ice sheets, identifying the relationship between velocity and traction is critical to constrain the bed physics that controls ice flow. Yet in Greenland, these relationships remain unquantified. We determine the spatial relationship between velocity and traction in all eight...

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Main Authors: N. Maier, F. Gimbert, F. Gillet-Chaulet, A. Gilbert
Format: Article
Language:English
Published: Copernicus Publications 2021-03-01
Series:The Cryosphere
Online Access:https://tc.copernicus.org/articles/15/1435/2021/tc-15-1435-2021.pdf
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spelling doaj-9affff21b7da49a59776d4019d5f11e02021-03-22T11:29:10ZengCopernicus PublicationsThe Cryosphere1994-04161994-04242021-03-01151435145110.5194/tc-15-1435-2021Basal traction mainly dictated by hard-bed physics over grounded regions of GreenlandN. MaierF. GimbertF. Gillet-ChauletA. Gilbert<p>On glaciers and ice sheets, identifying the relationship between velocity and traction is critical to constrain the bed physics that controls ice flow. Yet in Greenland, these relationships remain unquantified. We determine the spatial relationship between velocity and traction in all eight major drainage catchments of Greenland. The basal traction is estimated using three different methods over large grid cells to minimize interpretation biases associated with unconstrained rheologic parameters used in numerical inversions. We find the relationships are consistent with our current understanding of basal physics in each catchment. We identify catchments that predominantly show Mohr–Coulomb-like behavior typical of deforming beds or significant cavitation, as well as catchments that predominantly show rate-strengthening behavior typical of Weertman-type hard-bed physics. Overall, the traction relationships suggest that the flow field and surface geometry of the grounded regions in Greenland is mainly dictated by Weertman-type hard-bed physics up to velocities of approximately 450 m yr<span class="inline-formula"><sup>−1</sup></span>, except within the Northeast Greenland Ice Stream and areas near floatation. Depending on the catchment, behavior of the fastest-flowing ice (<span class="inline-formula">∼</span> 1000 m yr<span class="inline-formula"><sup>−1</sup></span>) directly inland from marine-terminating outlets exhibits Weertman-type rate strengthening, Mohr–Coulomb-like behavior, or is not confidently resolved given our methodology. Given the complex basal boundary across Greenland, the relationships are captured reasonably well by simple traction laws which provide a parameterization that can be used to model ice dynamics at large scales. The results and analysis serve as a first constraint on the physics of basal motion over the grounded regions of Greenland and provide unique insight into future dynamics and vulnerabilities in a warming climate.</p>https://tc.copernicus.org/articles/15/1435/2021/tc-15-1435-2021.pdf
collection DOAJ
language English
format Article
sources DOAJ
author N. Maier
F. Gimbert
F. Gillet-Chaulet
A. Gilbert
spellingShingle N. Maier
F. Gimbert
F. Gillet-Chaulet
A. Gilbert
Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
The Cryosphere
author_facet N. Maier
F. Gimbert
F. Gillet-Chaulet
A. Gilbert
author_sort N. Maier
title Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
title_short Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
title_full Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
title_fullStr Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
title_full_unstemmed Basal traction mainly dictated by hard-bed physics over grounded regions of Greenland
title_sort basal traction mainly dictated by hard-bed physics over grounded regions of greenland
publisher Copernicus Publications
series The Cryosphere
issn 1994-0416
1994-0424
publishDate 2021-03-01
description <p>On glaciers and ice sheets, identifying the relationship between velocity and traction is critical to constrain the bed physics that controls ice flow. Yet in Greenland, these relationships remain unquantified. We determine the spatial relationship between velocity and traction in all eight major drainage catchments of Greenland. The basal traction is estimated using three different methods over large grid cells to minimize interpretation biases associated with unconstrained rheologic parameters used in numerical inversions. We find the relationships are consistent with our current understanding of basal physics in each catchment. We identify catchments that predominantly show Mohr–Coulomb-like behavior typical of deforming beds or significant cavitation, as well as catchments that predominantly show rate-strengthening behavior typical of Weertman-type hard-bed physics. Overall, the traction relationships suggest that the flow field and surface geometry of the grounded regions in Greenland is mainly dictated by Weertman-type hard-bed physics up to velocities of approximately 450 m yr<span class="inline-formula"><sup>−1</sup></span>, except within the Northeast Greenland Ice Stream and areas near floatation. Depending on the catchment, behavior of the fastest-flowing ice (<span class="inline-formula">∼</span> 1000 m yr<span class="inline-formula"><sup>−1</sup></span>) directly inland from marine-terminating outlets exhibits Weertman-type rate strengthening, Mohr–Coulomb-like behavior, or is not confidently resolved given our methodology. Given the complex basal boundary across Greenland, the relationships are captured reasonably well by simple traction laws which provide a parameterization that can be used to model ice dynamics at large scales. The results and analysis serve as a first constraint on the physics of basal motion over the grounded regions of Greenland and provide unique insight into future dynamics and vulnerabilities in a warming climate.</p>
url https://tc.copernicus.org/articles/15/1435/2021/tc-15-1435-2021.pdf
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