Viscoelastic modelling of grounding line migration

In this thesis we investigate the influence of tides to the dynamics of ice sheet – ice shelf systems with numerical modelling. Tides play an important role in these systems by moving ice shelves and modulating the flow velocities of ice streams even far upstream. The grounding line as the boundary...

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Main Author: Beyer, Sebastian
Format: Thesis
Language:unknown
Published: 2014
Subjects:
Online Access:https://epic.awi.de/id/eprint/37163/
https://epic.awi.de/id/eprint/37163/1/masterthesis_sebastian_beyer_viscoelastic_modelling_of_grounding_line_migration.pdf
https://hdl.handle.net/10013/epic.44879
https://hdl.handle.net/10013/epic.44879.d001
id ftawi:oai:epic.awi.de:37163
record_format openpolar
spelling ftawi:oai:epic.awi.de:37163 2024-09-15T18:12:19+00:00 Viscoelastic modelling of grounding line migration Beyer, Sebastian 2014-09-29 application/pdf https://epic.awi.de/id/eprint/37163/ https://epic.awi.de/id/eprint/37163/1/masterthesis_sebastian_beyer_viscoelastic_modelling_of_grounding_line_migration.pdf https://hdl.handle.net/10013/epic.44879 https://hdl.handle.net/10013/epic.44879.d001 unknown https://epic.awi.de/id/eprint/37163/1/masterthesis_sebastian_beyer_viscoelastic_modelling_of_grounding_line_migration.pdf https://hdl.handle.net/10013/epic.44879.d001 Beyer, S. orcid:0000-0002-3731-0278 (2014) Viscoelastic modelling of grounding line migration Master thesis, hdl:10013/epic.44879 EPIC3 Thesis notRev 2014 ftawi 2024-06-24T04:11:05Z In this thesis we investigate the influence of tides to the dynamics of ice sheet – ice shelf systems with numerical modelling. Tides play an important role in these systems by moving ice shelves and modulating the flow velocities of ice streams even far upstream. The grounding line as the boundary between the shelf and the ice sheet plays a crucial role in the mass balance and general stability of an ice sheet. It has been observed to migrate in response to tidal forcing, but the exact mechanisms and consequences are not yet understood in detail. On short timescales, as present in tidal forcing, we need to account for the viscoelastic character of glacier ice and choose a Maxwell model as an appropriate rheological representation. We develop and implement a viscoelastic full stokes ice flow model and implement it in the finite element software COMSOL Multiphysics. Two different test setups are used to verify our flow model and show good agreement. In our model we are able to identify two processes, which control ice flow variations with tides. Uplifting of the ice shelf leads to retreat of the grounding line and therefore less area of the ice base is in contact with the bedrock. This leads to smaller basal shear stress, resulting in an increase in flow velocity. Additionally high tide causes increased normal stress at the ice – water boundary, which slows the ice flow. When forced with the S2 (12 h) and M2 (12.42 h) tidal constituents, we observe a non-linear interaction, which leads to a perturbation of the horizontal flow velocity close to the Msf (14.76 d) constituent. By not including tides and viscoelasticity into ice models we commit significant errors for the estimation of the flux across the grounding line and the resulting mass balance. For our experimental setup this error depends on the elastic parameter and we obtain a maximal error of 3.75 %. We also observe a general retreat of the grounding line due to tidal forcing. This implies that tides possibly lead to a different equilibrium of the ... Thesis Ice Sheet Ice Shelf Ice Shelves Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center)
institution Open Polar
collection Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center)
op_collection_id ftawi
language unknown
description In this thesis we investigate the influence of tides to the dynamics of ice sheet – ice shelf systems with numerical modelling. Tides play an important role in these systems by moving ice shelves and modulating the flow velocities of ice streams even far upstream. The grounding line as the boundary between the shelf and the ice sheet plays a crucial role in the mass balance and general stability of an ice sheet. It has been observed to migrate in response to tidal forcing, but the exact mechanisms and consequences are not yet understood in detail. On short timescales, as present in tidal forcing, we need to account for the viscoelastic character of glacier ice and choose a Maxwell model as an appropriate rheological representation. We develop and implement a viscoelastic full stokes ice flow model and implement it in the finite element software COMSOL Multiphysics. Two different test setups are used to verify our flow model and show good agreement. In our model we are able to identify two processes, which control ice flow variations with tides. Uplifting of the ice shelf leads to retreat of the grounding line and therefore less area of the ice base is in contact with the bedrock. This leads to smaller basal shear stress, resulting in an increase in flow velocity. Additionally high tide causes increased normal stress at the ice – water boundary, which slows the ice flow. When forced with the S2 (12 h) and M2 (12.42 h) tidal constituents, we observe a non-linear interaction, which leads to a perturbation of the horizontal flow velocity close to the Msf (14.76 d) constituent. By not including tides and viscoelasticity into ice models we commit significant errors for the estimation of the flux across the grounding line and the resulting mass balance. For our experimental setup this error depends on the elastic parameter and we obtain a maximal error of 3.75 %. We also observe a general retreat of the grounding line due to tidal forcing. This implies that tides possibly lead to a different equilibrium of the ...
format Thesis
author Beyer, Sebastian
spellingShingle Beyer, Sebastian
Viscoelastic modelling of grounding line migration
author_facet Beyer, Sebastian
author_sort Beyer, Sebastian
title Viscoelastic modelling of grounding line migration
title_short Viscoelastic modelling of grounding line migration
title_full Viscoelastic modelling of grounding line migration
title_fullStr Viscoelastic modelling of grounding line migration
title_full_unstemmed Viscoelastic modelling of grounding line migration
title_sort viscoelastic modelling of grounding line migration
publishDate 2014
url https://epic.awi.de/id/eprint/37163/
https://epic.awi.de/id/eprint/37163/1/masterthesis_sebastian_beyer_viscoelastic_modelling_of_grounding_line_migration.pdf
https://hdl.handle.net/10013/epic.44879
https://hdl.handle.net/10013/epic.44879.d001
genre Ice Sheet
Ice Shelf
Ice Shelves
genre_facet Ice Sheet
Ice Shelf
Ice Shelves
op_source EPIC3
op_relation https://epic.awi.de/id/eprint/37163/1/masterthesis_sebastian_beyer_viscoelastic_modelling_of_grounding_line_migration.pdf
https://hdl.handle.net/10013/epic.44879.d001
Beyer, S. orcid:0000-0002-3731-0278 (2014) Viscoelastic modelling of grounding line migration Master thesis, hdl:10013/epic.44879
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