Influx of meltwater subglacial Lake Concordia, East Antarctica

被引:26
作者
Tikku, AA [1 ]
Bell, RE
Studinger, M
Clarke, GKC
Tabacco, I
Ferraccioli, F
机构
[1] Rensselaer Polytech Inst, Dept Earth & Environm Sci, Troy, NY 12180 USA
[2] Columbia Univ, Lamont Doherty Earth Observ, Palisades, NY 10964 USA
[3] Univ British Columbia, Dept Earth & Ocean Sci, Vancouver, BC V6T 1Z4, Canada
[4] Univ Milan, Dept Earth Sci, I-20129 Milan, Italy
[5] British Antarctic Survey, NERC, Cambridge CB3 0ET, England
基金
英国自然环境研究理事会;
关键词
D O I
10.3189/172756505781829494
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
We present evidence for melting at the base of the ice that overlies Lake Concordia, an 800 km(2) subglacial lake near Dome Concordia, East Antarctica, via a combination of glaciohydraulic melting (associated with the tilted ice ceiling and its influence on lake circulation/melting temperature) and melting by extreme strain heating (where the ice sheet is grounded). An influx of water is necessary to provide nutrients, material and biota to support subglacial lake ecosystems but has not been detected previously. Freezing is the dominant observed basal process at over 60% of the surface area above the lake. The total volume of accreted ice above the lake surface is estimated as 50-60 km(3), roughly 25-30% of the 200 +/- 40 km(3) estimated lake volume. Estimated rates of melting and freezing are very similar, +/- 2-6 mm a(-1). The apparent net freezing may reflect the present-day response of Lake Concordia to cooling associated with the Last Glacial Maximum, or a large influx of water either via a subglacial hydrological system or from additional melting of the ice sheet. Lake Concordia is an excellent candidate for subglacial exploration given active basal processes, proximity to the Dome Concordia ice core and traverse resupply route.
引用
收藏
页码:96 / 104
页数:9
相关论文
共 30 条
[1]   Glaciohydraulic supercooling: a freeze-on mechanism to create stratified, debris-rich basal ice: II. Theory [J].
Alley, RB ;
Lawson, DE ;
Evenson, EB ;
Strasser, JC ;
Larson, GJ .
JOURNAL OF GLACIOLOGY, 1998, 44 (148) :563-569
[2]   An improved elevation dataset for climate and ice-sheet modelling: validation with satellite imagery [J].
Bamber, JL ;
Bindschadler, RA .
ANNALS OF GLACIOLOGY, VOL 25, 1997: PAPERS FROM THE INTERNATIONAL SYMPOSIUM ON REPRESENTATION OF THE CRYOSPHERE IN CLIMATE AND HYDROLOGICAL MODELS HELD AT VICTORIA, BRITISH COLUMBIA, CANADA, 12-15 AUGUST 1996, 1997, 25 :439-444
[3]   Origin and fate of Lake Vostok water frozen to the base of the East Antarctic ice sheet [J].
Bell, RE ;
Studinger, M ;
Tikku, AA ;
Clarke, GKC ;
Gutner, MM ;
Meertens, C .
NATURE, 2002, 416 (6878) :307-310
[4]   STRAIN HEATING AND CREEP INSTABILITY IN GLACIERS AND ICE SHEETS [J].
CLARKE, GKC ;
NITSAN, U ;
PATERSON, WSB .
REVIEWS OF GEOPHYSICS, 1977, 15 (02) :235-247
[5]   Constraints on hydrothermal processes and water exchange in Lake Vostok from helium isotopes [J].
Jean-Baptiste, P ;
Petit, JR ;
Lipenkov, VY ;
Raynaud, D ;
Barkov, NI .
NATURE, 2001, 411 (6836) :460-462
[6]   MODELING THE EFFECTS OF FRAZIL ICE CRYSTALS ON THE DYNAMICS AND THERMODYNAMICS OF ICE SHELF WATER PLUMES [J].
JENKINS, A ;
BOMBOSCH, A .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1995, 100 (C4) :6967-6981
[7]   More than 200 meters of lake ice above subglacial lake Vostok, Antarctica [J].
Jouzel, J ;
Petit, JR ;
Souchez, R ;
Barkov, NI ;
Lipenkov, VY ;
Raynaud, D ;
Stievenard, M ;
Vassiliev, NI ;
Verbeke, V ;
Vimeux, F .
SCIENCE, 1999, 286 (5447) :2138-2141
[8]  
JOUZEL J, 1996, TERRA ANTARCTICA, V3, P49
[9]   Microorganisms in the accreted ice of Lake Vostok, Antarctica [J].
Karl, DM ;
Bird, DF ;
Björkman, K ;
Houlihan, T ;
Shackelford, R ;
Tupas, L .
SCIENCE, 1999, 286 (5447) :2144-2147
[10]   Constraining ice dynamics at Dome C, Antarctica, using remotely sensed measurements [J].
Legresy, B ;
Rignot, E ;
Tabacco, IE .
GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (21) :3493-3496