Bathymetric controls on calving processes at Pine Island Glacier

被引:30
作者
Arndt, Jan Erik [1 ]
Larter, Robert D. [2 ]
Friedl, Peter [3 ]
Gohl, Karsten [1 ]
Hoeppner, Kathrin [3 ]
机构
[1] Helmholtz Ctr Polar & Marine Res, Alfred Wegener Inst, Handelshafen 12, D-27570 Bremerhaven, Germany
[2] British Antarctic Survey, High Cross Madingley Rd, Cambridge CB3 0ET, England
[3] German Remote Sensing Data Ctr, German Aerosp Ctr DLR, Oberpfaffenhofen, Munchener Str 20, D-82234 Wessling, Germany
关键词
AMUNDSEN SEA EMBAYMENT; ANTARCTIC ICE-SHEET; GROUNDING-LINE RETREAT; CIRCUMPOLAR DEEP-WATER; WEST ANTARCTICA; STABILITY; WIDESPREAD; THICKNESS; THWAITES; MARGINS;
D O I
10.5194/tc-12-2039-2018
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Pine Island Glacier is the largest current Antarctic contributor to sea-level rise. Its ice loss has substantially increased over the last 25 years through thinning, acceleration and grounding line retreat. However, the calving line positions of the stabilising ice shelf did not show any trend within the observational record (last 70 years) until calving in 2015 led to unprecedented retreat and changed the alignment of the calving front. Bathymetric surveying revealed a ridge below the former ice shelf and two shallower highs to the north. Satellite imagery shows that ice contact on the ridge was likely lost in 2006 but was followed by intermittent contact resulting in back stress fluctuations on the ice shelf. Continuing ice-shelf flow also led to occasional ice-shelf contact with the northern bathymetric highs, which initiated rift formation that led to calving. The observations show that bathymetry is an important factor in initiating calving events.
引用
收藏
页码:2039 / 2050
页数:12
相关论文
共 48 条
[1]  
Arndt J. E., 2017, PANGAEA, DOI [10.1594/PANGAEA.881546, DOI 10.1594/PANGAEA.881546]
[2]  
Bassis JN, 2013, NAT GEOSCI, V6, P833, DOI [10.1038/ngeo1887, 10.1038/NGEO1887]
[3]   Upper and lower limits on the stability of calving glaciers from the yield strength envelope of ice [J].
Bassis, J. N. ;
Walker, C. C. .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2012, 468 (2140) :913-931
[4]  
BIGG G.R., 2014, OCEAN CHALLENGE, V20, P32
[5]   History of lower Pine Island Glacier, West Antarctica, from Landsat imagery [J].
Bindschadler, RA .
JOURNAL OF GLACIOLOGY, 2002, 48 (163) :536-544
[6]   Seabed topography beneath Larsen C Ice Shelf from seismic soundings [J].
Brisbourne, A. M. ;
Smith, A. M. ;
King, E. C. ;
Nicholls, K. W. ;
Holland, P. R. ;
Makinson, K. .
CRYOSPHERE, 2014, 8 (01) :1-13
[7]   Antarctic ice shelf thickness from CryoSat-2 radar altimetry [J].
Chuter, S. J. ;
Bamber, J. L. .
GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (24) :10721-10729
[8]   High-resolution sub-ice-shelf seafloor records of twentieth century ungrounding and retreat of Pine Island Glacier, West Antarctica [J].
Davies, D. ;
Bingham, R. G. ;
Graham, A. G. C. ;
Spagnolo, M. ;
Dutrieux, P. ;
Vaughan, D. G. ;
Jenkins, A. ;
Nitsche, F. O. .
JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2017, 122 (09) :1698-1714
[9]   Geometric and oceanographic controls on melting beneath Pine Island Glacier [J].
De Rydt, J. ;
Holland, P. R. ;
Dutrieux, P. ;
Jenkins, A. .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2014, 119 (04) :2420-2438
[10]   Modelling iceberg trajectories, sedimentation rates and meltwater input to the ocean from the Eurasian Ice Sheet at the Last Glacial Maximum [J].
Death, R ;
Siegert, MJ ;
Bigg, GR ;
Wadley, MR .
PALAEOGEOGRAPHY PALAEOCLIMATOLOGY PALAEOECOLOGY, 2006, 236 (1-2) :135-150