Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model

Based on the results of our studies of the physical conditions beneath Ice Stream B, we formulate a new analytical ice stream model, the undrained plastic bed model (henceforth the UPB model). Mathematically, the UPB model is represented by a non-linear system of four coupled equations which express...

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Published in:Journal of Geophysical Research: Solid Earth
Main Authors: Tulaczyk, Slawek, Kamb, W. Barclay, Engelhardt, Hermann F.
Format: Article in Journal/Newspaper
Language:English
Published: American Geophysical Union 2000
Subjects:
Online Access:https://authors.library.caltech.edu/45877/
https://authors.library.caltech.edu/45877/1/jgrb12084.pdf
https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522
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spelling ftcaltechauth:oai:authors.library.caltech.edu:45877 2023-05-15T14:04:55+02:00 Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model Tulaczyk, Slawek Kamb, W. Barclay Engelhardt, Hermann F. 2000-01-10 application/pdf https://authors.library.caltech.edu/45877/ https://authors.library.caltech.edu/45877/1/jgrb12084.pdf https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522 en eng American Geophysical Union https://authors.library.caltech.edu/45877/1/jgrb12084.pdf Tulaczyk, Slawek and Kamb, W. Barclay and Engelhardt, Hermann F. (2000) Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model. Journal of Geophysical Research B, 105 (B1). pp. 483-494. ISSN 0148-0227. doi:10.1029/1999JB900328. https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522 <https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522> other Article PeerReviewed 2000 ftcaltechauth https://doi.org/10.1029/1999JB900328 2021-11-11T18:57:51Z Based on the results of our studies of the physical conditions beneath Ice Stream B, we formulate a new analytical ice stream model, the undrained plastic bed model (henceforth the UPB model). Mathematically, the UPB model is represented by a non-linear system of four coupled equations which express the relationships among ice sliding velocity, till strength, water storage in till, and basal melt rate. We examine this system of equations for conditions of ice stream stability over short timescales that permit holding ice stream geometry constant (less than hundreds of years). Temporal variability is introduced into the UPB model only by the direct dependence of till void ratio changes (ė = ∂e/∂t) on the basal melting rate m_r. Since till strength τ_b{e} and ice stream velocity U_b{τ_b} change as long as till void ratio varies, the first condition for ice stream stability is that of constant till water storage ė = 0. The second condition for ice stream stability arises from the feedback between ice stream velocity, till strength, and the basal melting rate which depends on shear heating m_r{ U_b τ_b}. This is the “weak till” condition which requires that in a steady state till strength is a small fraction of the gravitational driving stress τ_b < (n + 1)^(−1) τ_d. The salient feature of the UPB model is its ability to produce two thermo mechanically controlled equilibrium states, one with a strong bed and slow ice velocities (“ice sheet” mode) and one with a weak bed and fast ice velocities (“ice-stream” mode). This bimodality of basal conditions is consistent with the available observations of subglacial conditions beneath slow and fast moving ice in West Antarctica. Basal conditions that do not correspond to these two steady states may occur transiently during switches between the two stable modes. The UPB model demonstrates that ice streams may be prone to thermally triggered instabilities, during which small perturbations in the basal thermal energy balance grow, leading to generation or elimination of the basal conditions which cause ice streaming. Article in Journal/Newspaper Antarc* Antarctica Ice Sheet Ice Stream B West Antarctica Caltech Authors (California Institute of Technology) West Antarctica Journal of Geophysical Research: Solid Earth 105 B1 483 494
institution Open Polar
collection Caltech Authors (California Institute of Technology)
op_collection_id ftcaltechauth
language English
description Based on the results of our studies of the physical conditions beneath Ice Stream B, we formulate a new analytical ice stream model, the undrained plastic bed model (henceforth the UPB model). Mathematically, the UPB model is represented by a non-linear system of four coupled equations which express the relationships among ice sliding velocity, till strength, water storage in till, and basal melt rate. We examine this system of equations for conditions of ice stream stability over short timescales that permit holding ice stream geometry constant (less than hundreds of years). Temporal variability is introduced into the UPB model only by the direct dependence of till void ratio changes (ė = ∂e/∂t) on the basal melting rate m_r. Since till strength τ_b{e} and ice stream velocity U_b{τ_b} change as long as till void ratio varies, the first condition for ice stream stability is that of constant till water storage ė = 0. The second condition for ice stream stability arises from the feedback between ice stream velocity, till strength, and the basal melting rate which depends on shear heating m_r{ U_b τ_b}. This is the “weak till” condition which requires that in a steady state till strength is a small fraction of the gravitational driving stress τ_b < (n + 1)^(−1) τ_d. The salient feature of the UPB model is its ability to produce two thermo mechanically controlled equilibrium states, one with a strong bed and slow ice velocities (“ice sheet” mode) and one with a weak bed and fast ice velocities (“ice-stream” mode). This bimodality of basal conditions is consistent with the available observations of subglacial conditions beneath slow and fast moving ice in West Antarctica. Basal conditions that do not correspond to these two steady states may occur transiently during switches between the two stable modes. The UPB model demonstrates that ice streams may be prone to thermally triggered instabilities, during which small perturbations in the basal thermal energy balance grow, leading to generation or elimination of the basal conditions which cause ice streaming.
format Article in Journal/Newspaper
author Tulaczyk, Slawek
Kamb, W. Barclay
Engelhardt, Hermann F.
spellingShingle Tulaczyk, Slawek
Kamb, W. Barclay
Engelhardt, Hermann F.
Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
author_facet Tulaczyk, Slawek
Kamb, W. Barclay
Engelhardt, Hermann F.
author_sort Tulaczyk, Slawek
title Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
title_short Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
title_full Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
title_fullStr Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
title_full_unstemmed Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model
title_sort basal mechanics of ice stream b, west antarctica: 2. undrained plastic bed model
publisher American Geophysical Union
publishDate 2000
url https://authors.library.caltech.edu/45877/
https://authors.library.caltech.edu/45877/1/jgrb12084.pdf
https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522
geographic West Antarctica
geographic_facet West Antarctica
genre Antarc*
Antarctica
Ice Sheet
Ice Stream B
West Antarctica
genre_facet Antarc*
Antarctica
Ice Sheet
Ice Stream B
West Antarctica
op_relation https://authors.library.caltech.edu/45877/1/jgrb12084.pdf
Tulaczyk, Slawek and Kamb, W. Barclay and Engelhardt, Hermann F. (2000) Basal mechanics of Ice Stream B, west Antarctica: 2. Undrained plastic bed model. Journal of Geophysical Research B, 105 (B1). pp. 483-494. ISSN 0148-0227. doi:10.1029/1999JB900328. https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522 <https://resolver.caltech.edu/CaltechAUTHORS:20140522-073224522>
op_rights other
op_doi https://doi.org/10.1029/1999JB900328
container_title Journal of Geophysical Research: Solid Earth
container_volume 105
container_issue B1
container_start_page 483
op_container_end_page 494
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