From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model

>Here we report on a cyclic, physical ice-discharge instability in the Parallel Ice Sheet Model, simulating the flow of a three-dimensional, inherently buttressed ice-sheet-shelf system which periodically surges on a millennial timescale. The thermomechanically coupled model on 1 km horizonta...

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Main Authors: J. Feldmann, A. Levermann
Format: Article
Language:English
Published: Copernicus Publications 2017-08-01
Series:The Cryosphere
Online Access:https://www.the-cryosphere.net/11/1913/2017/tc-11-1913-2017.pdf
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spelling doaj-e0055a6fad764186be7cda35a1e230c72020-11-24T22:28:07ZengCopernicus PublicationsThe Cryosphere1994-04161994-04242017-08-01111913193210.5194/tc-11-1913-2017From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet ModelJ. Feldmann0A. Levermann1A. Levermann2A. Levermann3Potsdam Institute for Climate Impact Research (PIK), Potsdam, GermanyPotsdam Institute for Climate Impact Research (PIK), Potsdam, GermanyInstitute of Physics, University of Potsdam, Potsdam, GermanyLDEO, Columbia University, New York, USA>Here we report on a cyclic, physical ice-discharge instability in the Parallel Ice Sheet Model, simulating the flow of a three-dimensional, inherently buttressed ice-sheet-shelf system which periodically surges on a millennial timescale. The thermomechanically coupled model on 1 km horizontal resolution includes an enthalpy-based formulation of the thermodynamics, a nonlinear stress-balance-based sliding law and a very simple subglacial hydrology. The simulated unforced surging is characterized by rapid ice streaming through a bed trough, resulting in abrupt discharge of ice across the grounding line which is eventually calved into the ocean. We visualize the central feedbacks that dominate the subsequent phases of ice buildup, surge and stabilization which emerge from the interaction between ice dynamics, thermodynamics and the subglacial till layer. Results from the variation of surface mass balance and basal roughness suggest that ice sheets of medium thickness may be more susceptible to surging than relatively thin or thick ones for which the surge feedback loop is damped. We also investigate the influence of different basal sliding laws (ranging from purely plastic to nonlinear to linear) on possible surging. The presented mechanisms underlying our simulations of self-maintained, periodic ice growth and destabilization may play a role in large-scale ice-sheet surging, such as the surging of the Laurentide Ice Sheet, which is associated with Heinrich events, and ice-stream shutdown and reactivation, such as observed in the Siple Coast region of West Antarctica.https://www.the-cryosphere.net/11/1913/2017/tc-11-1913-2017.pdf
collection DOAJ
language English
format Article
sources DOAJ
author J. Feldmann
A. Levermann
A. Levermann
A. Levermann
spellingShingle J. Feldmann
A. Levermann
A. Levermann
A. Levermann
From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
The Cryosphere
author_facet J. Feldmann
A. Levermann
A. Levermann
A. Levermann
author_sort J. Feldmann
title From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
title_short From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
title_full From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
title_fullStr From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
title_full_unstemmed From cyclic ice streaming to Heinrich-like events: the grow-and-surge instability in the Parallel Ice Sheet Model
title_sort from cyclic ice streaming to heinrich-like events: the grow-and-surge instability in the parallel ice sheet model
publisher Copernicus Publications
series The Cryosphere
issn 1994-0416
1994-0424
publishDate 2017-08-01
description >Here we report on a cyclic, physical ice-discharge instability in the Parallel Ice Sheet Model, simulating the flow of a three-dimensional, inherently buttressed ice-sheet-shelf system which periodically surges on a millennial timescale. The thermomechanically coupled model on 1 km horizontal resolution includes an enthalpy-based formulation of the thermodynamics, a nonlinear stress-balance-based sliding law and a very simple subglacial hydrology. The simulated unforced surging is characterized by rapid ice streaming through a bed trough, resulting in abrupt discharge of ice across the grounding line which is eventually calved into the ocean. We visualize the central feedbacks that dominate the subsequent phases of ice buildup, surge and stabilization which emerge from the interaction between ice dynamics, thermodynamics and the subglacial till layer. Results from the variation of surface mass balance and basal roughness suggest that ice sheets of medium thickness may be more susceptible to surging than relatively thin or thick ones for which the surge feedback loop is damped. We also investigate the influence of different basal sliding laws (ranging from purely plastic to nonlinear to linear) on possible surging. The presented mechanisms underlying our simulations of self-maintained, periodic ice growth and destabilization may play a role in large-scale ice-sheet surging, such as the surging of the Laurentide Ice Sheet, which is associated with Heinrich events, and ice-stream shutdown and reactivation, such as observed in the Siple Coast region of West Antarctica.
url https://www.the-cryosphere.net/11/1913/2017/tc-11-1913-2017.pdf
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