Antarctic subglacial conditions inferred from a hybrid ice sheet/ice stream model

被引:250
作者
Pattyn, Frank [1 ]
机构
[1] Univ Libre Bruxelles, Lab Glaciol, Dept Sci Terre & Environm, B-1050 Brussels, Belgium
关键词
Antarctic ice sheet; numerical modeling; subglacial temperature; geothermal heat-flow; basal melting; ice sheet age; DIGITAL ELEVATION MODEL; EAST ANTARCTICA; GLACIER FLOW; DOME FUJI; LAW DOME; TEMPERATURE; VOSTOK; BASAL; LAKES; SENSITIVITY;
D O I
10.1016/j.epsl.2010.04.025
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Subglacial conditions of large polar ice sheets remain poorly understood, despite recent advances in satellite observation. Major uncertainties related to basal conditions, such as the temperature field, are due to an insufficient knowledge of geothermal heat flow. Here, a hybrid method is presented that combines numerical modeling of the ice sheet thermodynamics with a priori information using a simple assimilation technique. Additional data are essentially vertical temperature profiles measured in the ice sheet at selected spots, as well as the distribution of subglacial lakes. In this way, geothermal heat-flow datasets are improved to yield calculated temperatures in accord with observations in areas where information is available. Results of the sensitivity experiments show that 55% of the grounded part of the Antarctic ice sheet is at pressure melting point. Calculated basal melt rates are approximately 65 Gt year(-1), which is 3% of the total surface accumulation. Although these sensitivity experiments exhibit small variations in basal melt rates, the impact on the ice age of basal layers is quite important. In areas that are characterized by relatively low melt rates, this may lead to standard deviations up to 50% (in a model run over a period of 10(6) years). Subglacial water flow is concentrated underneath the large outlet glaciers of Antarctica. The larger subglacial lakes are perched at the head of these subglacial water systems. An exception, however, is the lake system of the Recovery Ice Stream Catchment, that receives a substantial amount of subglacial melt water from the upstream catchment. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:451 / 461
页数:11
相关论文
共 77 条
[1]   CLIMATE CHANGE Understanding Glacier Flow in Changing Times [J].
Alley, Richard B. ;
Fahnestock, Mark ;
Joughin, Ian .
SCIENCE, 2008, 322 (5904) :1061-1062
[2]  
[Anonymous], GLACIER SCI ENV CHAN
[3]  
[Anonymous], 1984, J APPL MECH, DOI DOI 10.1115/1.3167761
[4]  
[Anonymous], 1965, The physics of ice
[5]   Drilling comparison in 'warm ice' and drill design comparison [J].
Augustin, L. ;
Motoyama, H. ;
Wilhelms, F. ;
Johnsen, S. ;
Hansen, S. B. ;
Talalay, P. ;
Vasiliev, N. .
ANNALS OF GLACIOLOGY, VOL 47, 2007, 2007, 47 :73-+
[6]   A new 1 km digital elevation model of the Antarctic derived from combined satellite radar and laser data - Part 1: Data and methods [J].
Bamber, J. L. ;
Gomez-Dans, J. L. ;
Griggs, J. A. .
CRYOSPHERE, 2009, 3 (01) :101-111
[7]   Tectonically controlled subglacial lakes on the flanks of the Gamburtsev Subglacial Mountains, East Antarctica [J].
Bell, RE ;
Studinger, M ;
Fahnestock, MA ;
Shuman, CA .
GEOPHYSICAL RESEARCH LETTERS, 2006, 33 (02)
[8]   The role of subglacial water in ice-sheet mass balance [J].
Bell, Robin E. .
NATURE GEOSCIENCE, 2008, 1 (05) :297-304
[9]   Large subglacial lakes in East Antarctica at the onset of fast-flowing ice streams [J].
Bell, Robin E. ;
Studinger, Michael ;
Shuman, Christopher A. ;
Fahnestock, Mark A. ;
Joughin, Ian .
NATURE, 2007, 445 (7130) :904-907
[10]  
BINDSCHADLER R, 2001, ANTARCT RES SER, V77, P123