Ice Shelf Rift Propagation and the Mechanics of Wave-Induced Fracture

被引:33
作者
Lipovsky, Bradley Paul [1 ]
机构
[1] Harvard Univ, Dept Earth & Planetary Sci, 20 Oxford St, Cambridge, MA 02138 USA
关键词
ice shelf; ice-ocean interaction; calving; wave propagation; seismology; CRACK-PROPAGATION; EAST ANTARCTICA; SURFACE; GLACIERS; DYNAMICS; DEFORMATION; STABILITY; CREVASSES; TSUNAMI; FRONT;
D O I
10.1029/2017JC013664
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Distant storms, tsunamis, and earthquakes generate waves on floating ice shelves. Previous studies, however, have disagreed about whether the resulting wave-induced stresses may cause ice shelf rift propagation. Most ice shelf rifts show long periods of dormancy suggesting that they have low background stress concentrations and may therefore be susceptible to wave-induced stresses. Here I quantify wave-induced stresses on the Ross Ice Shelf Nascent Rift and the Amery Ice Shelf Loose Tooth T2 Rift using passive seismology. I then relate these stresses to a fracture mechanical model of rift propagation that accounts for rift cohesive strength due to refrozen melange, ice inertia, and spatial heterogeneity in fracture toughness due to the presence of high toughness suture zones. I infer wave-induced stresses using the wave impedance tensor, a rank three tensor that relates seismically observable particle velocities to components of the stress tensor. I find that wave-induced stresses are an order of magnitude larger on the Ross Ice Shelf as compared to the Amery Ice Shelf. In the absence of additional rift strength, my model predicts that the Nascent Rift should have experienced extensive rift propagation. The observation that no such propagation occurred during this time therefore suggests that the Nascent Rift experiences strengthening from either refrozen melange or rift tip processes zone dynamics. This study illustrates one way in which passive seismology may illuminate glacier calving physics.
引用
收藏
页码:4014 / 4033
页数:20
相关论文
共 94 条
[1]   Access of surface meltwater to beds of sub-freezing glaciers: preliminary insights [J].
Alley, RB ;
Dupont, TK ;
Parizek, BR ;
Anandakrishnan, S .
ANNALS OF GLACIOLOGY, VOL 40, 2005, 2005, 40 :8-14
[2]   Calving and rifting on the McMurdo Ice Shelf, Antarctica [J].
Banwell, Alison F. ;
Willis, Ian C. ;
Macdonald, Grant J. ;
Goodsell, Becky ;
Mayer, David P. ;
Powell, Anthony ;
Macayeal, Douglas R. .
ANNALS OF GLACIOLOGY, 2017, 58 (75) :78-87
[3]  
Barenblatt G.I., 1962, Adv. Appl. Mech, V7, P55, DOI DOI 10.1016/S0065-2156
[4]   An investigation into the forces that drive ice-shelf rift propagation on the Amery Ice Shelf, East Antarctica [J].
Bassis, Jeremy N. ;
Fricker, Helen A. ;
Coleman, Richard ;
Minster, Jean-Bernard .
JOURNAL OF GLACIOLOGY, 2008, 54 (184) :17-27
[5]   Seismicity and deformation associated with ice-shelf rift propagation [J].
Bassis, Jeremy N. ;
Fricker, Helen A. ;
Coleman, Richard ;
Bock, Yehuda ;
Behrens, James ;
Darnell, Dennis ;
Okal, Marianne ;
Minster, Jean-Bernard .
JOURNAL OF GLACIOLOGY, 2007, 53 (183) :523-536
[6]   Episodic propagation of a rift on the Amery Ice Shelf, East Antarctica [J].
Bassis, JN ;
Coleman, R ;
Fricker, HA ;
Minster, JB .
GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (06) :1-5
[7]  
BAZANT ZP, 1993, J ENG MECH-ASCE, V119, P1828
[8]   LARGE-SCALE THERMAL BENDING FRACTURE OF SEA ICE PLATES [J].
BAZANT, ZP .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1992, 97 (C11) :17739-17751
[9]   Calving processes and the dynamics of calving glaciers [J].
Benn, Douglas I. ;
Warren, Charles R. ;
Mottram, Ruth H. .
EARTH-SCIENCE REVIEWS, 2007, 82 (3-4) :143-179
[10]   Creep deformation and buttressing capacity of damaged ice shelves: theory and application to Larsen C ice shelf [J].
Borstad, C. P. ;
Rignot, E. ;
Mouginot, J. ;
Schodlok, M. P. .
CRYOSPHERE, 2013, 7 (06) :1931-1947