A three-dimensional full Stokes model of the grounding line dynamics: effect of a pinning point beneath the ice shelf

被引:78
作者
Favier, L. [1 ]
Gagliardini, O. [1 ,2 ]
Durand, G. [1 ]
Zwinger, T. [3 ]
机构
[1] UJF Grenoble, CNRS, Lab Glaciol & Geophys Environm, St Martin Dheres, France
[2] Inst Univ France, Paris, France
[3] CSC IT Ctr Sci Ltd, Espoo, Finland
关键词
SEA-LEVEL RISE; FINITE-ELEMENT; SHEET; FLOW; ZONE;
D O I
10.5194/tc-6-101-2012
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
The West Antarctic ice sheet is confined by a large area of ice shelves, fed by inland ice through fast flowing ice streams. The dynamics of the grounding line, which is the line-boundary between grounded ice and the downstream ice shelf, has a major influence on the dynamics of the whole ice sheet. However, most ice sheet models use simplifications of the flow equations, as they do not include all the stress components, and are known to fail in their representation of the grounding line dynamics. Here, we present a 3-D full Stokes model of a marine ice sheet, in which the flow problem is coupled with the evolution of the upper and lower free surfaces, and the position of the grounding line is determined by solving a contact problem between the shelf/sheet lower surface and the bedrock. Simulations are performed using the open-source finite-element code Elmer/Ice within a parallel environment. The model's ability to cope with a curved grounding line and the effect of a pinning point beneath the ice shelf are investigated through prognostic simulations. Starting from a steady state, the sea level is slightly decreased to create a contact point between a seamount and the ice shelf. The model predicts a dramatic decrease of the shelf velocities, leading to an advance of the grounding line until both grounded zones merge together, during which an ice rumple forms above the contact area at the pinning point. Finally, we show that once the contact is created, increasing the sea level to its initial value does not release the pinning point and has no effect on the ice dynamics, indicating a stabilising effect of pinning points.
引用
收藏
页码:101 / 112
页数:12
相关论文
共 30 条
[1]  
[Anonymous], 1984, J APPL MECH, DOI DOI 10.1115/1.3167761
[2]   VIRTUAL BUBBLES AND GALERKIN-LEAST-SQUARES TYPE METHODS (GA.L.S.) [J].
BAIOCCHI, C ;
BREZZI, F ;
FRANCA, LP .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1993, 105 (01) :125-141
[3]   Rapid sea-level rise and reef back-stepping at the close of the last interglacial highstand [J].
Blanchon, Paul ;
Eisenhauer, Anton ;
Fietzke, Jan ;
Liebetrau, Volker .
NATURE, 2009, 458 (7240) :881-U6
[5]   Marine ice sheet dynamics: Hysteresis and neutral equilibrium [J].
Durand, G. ;
Gagliardini, O. ;
de Fleurian, B. ;
Zwinger, T. ;
Le Meur, E. .
JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2009, 114
[6]   Full Stokes modeling of marine ice sheets: influence of the grid size [J].
Durand, Gael ;
Gagliardini, Olivier ;
Zwinger, Thomas ;
Le Meur, Emmanuel ;
Hindmarsh, Richard C. A. .
ANNALS OF GLACIOLOGY, 2009, 50 (52) :109-114
[7]   Mapping the grounding zone of the Amery Ice Shelf, East Antarctica using InSAR, MODIS and ICESat [J].
Fricker, Helen Amanda ;
Coleman, Richard ;
Padman, Laurie ;
Scambos, Ted A. ;
Bohlander, Jennifer ;
Brunt, Kelly M. .
ANTARCTIC SCIENCE, 2009, 21 (05) :515-532
[8]   Coupling of ice-shelf melting and buttressing is a key process in ice-sheets dynamics [J].
Gagliardini, O. ;
Durand, G. ;
Zwinger, T. ;
Hindmarsh, R. C. A. ;
Le Meur, E. .
GEOPHYSICAL RESEARCH LETTERS, 2010, 37
[9]   The ISMIP-HOM benchmark experiments performed using the Finite-Element code Elmer [J].
Gagliardini, O. ;
Zwinger, T. .
CRYOSPHERE, 2008, 2 (01) :67-76
[10]   Grounding line migration in an adaptive mesh ice sheet model [J].
Gladstone, R. M. ;
Lee, V. ;
Vieli, A. ;
Payne, A. J. .
JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2010, 115