Ice flow relations for stress and strain-rate components from combined shear and compression laboratory experiments

被引:41
作者
Budd, William F. [1 ,2 ]
Warner, Roland C. [1 ,3 ]
Jacka, T. H. [1 ,3 ]
Li, Jun [3 ,4 ]
Treverrow, Adam [1 ]
机构
[1] Univ Tasmania, Antarctic Climate & Ecosyst Cooperat Res Ctr, Hobart, Tas, Australia
[2] Univ Tasmania, Inst Marine & Antarctic Studies, Hobart, Tas, Australia
[3] Australian Antarctic Div, Dept Sustainabil Environm Water Populat & Communi, Kingston, Tas, Australia
[4] NASA, Goddard Space Flight Ctr, SGT Inc, Greenbelt, MD 20771 USA
关键词
POLYCRYSTALLINE ICE; CRYSTAL SIZE; POLAR ICE; CREEP; DOME; DEFORMATION; EVOLUTION; RHEOLOGY; FABRICS; MODEL;
D O I
10.3189/2013JoG12J106
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
The generalized (Glen) flow relation for ice, involving the second invariants of the stress deviator and strain-rate tensors, is only expected to hold for isotropic polycrystalline ice. Previous single-stress experiments have shown that for the steady-state flow, which develops at large strains, the tertiary strain rate is greater than the minimum (secondary creep) value by an enhancement factor which is larger for shear than compression. Previous experiments combining shear with compression normal to the shear plane have shown that enhancement of the tertiary octahedral strain rate increases monotonically from compression alone to shear alone. Additional experiments and analyses presented here were conducted to further investigate how the separate tertiary shear and compression strain-rate components are related in combined stress situations. It is found that tertiary compression rates are more strongly influenced by the addition of shear than is given by a Glen-type flow relation, whereas shear is less influenced by additional compression. A scalar function formulation of the flow relation is proposed, which fits the tertiary creep data well and is readily adapted to a generalized form that can be extended to other stress configurations and applied in ice mass modelling.
引用
收藏
页码:374 / 392
页数:19
相关论文
共 50 条
[1]  
Azuma N., 1996, ANN GLACIOL, V23, P202, DOI [10.3189/s0260305500013458, DOI 10.3189/S0260305500013458]
[2]  
Batchelor GK, 1967, An introduction to fluid dynamics
[3]   THE FABRIC OF POLYCRYSTALLINE ICE DEFORMED IN SIMPLE SHEAR - EXPERIMENTS IN TORSION, NATURAL DEFORMATION AND GEOMETRICAL INTERPRETATION [J].
BOUCHEZ, JL ;
DUVAL, P .
TEXTURES AND MICROSTRUCTURES, 1982, 5 (03) :171-190
[4]   Crystal orientation fabrics within the Antarctic ice sheet revealed by a multipolarization plane and dual-frequency radar survey [J].
Matsuoka, K ;
Furukawa, T ;
Fujita, S ;
Maeno, H ;
Uratsuka, S ;
Naruse, R ;
Watanabe, O .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2003, 108 (B10)
[5]   A REVIEW OF ICE RHEOLOGY FOR ICE-SHEET MODELING [J].
BUDD, WF ;
JACKA, TH .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1989, 16 (02) :107-144
[6]   Change in ice rheology during climate variations - implications for ice flow modelling and dating of the EPICA Dome C core [J].
Durand, G. ;
Gillet-Chaulet, F. ;
Svensson, A. ;
Gagliardini, O. ;
Kipfstuhl, S. ;
Meyssonnier, J. ;
Parrenin, F. ;
Duval, P. ;
Dahl-Jensen, D. .
CLIMATE OF THE PAST, 2007, 3 (01) :155-167
[7]   CREEP AND FABRICS OF POLYCRYSTALLINE ICE UNDER SHEAR AND COMPRESSION [J].
DUVAL, P .
JOURNAL OF GLACIOLOGY, 1981, 27 (95) :129-140
[8]   Simulation of anisotropic ice flow and fabric evolution along the GRIP-GISP2 flowline, central Greenland [J].
Gagliardini, O ;
Meyssonnier, J .
ANNALS OF GLACIOLOGY, VOL 30, 2000, 2000, 30 :217-223
[9]  
Gagliardini O., 2009, Low Tempurature Science, V68, P149
[10]  
Gao XQ, 1989, P INT S ANT RES, P32