Peak punch-through capacity of spudcan in sand with interbedded clay: numerical and analytical modelling

被引:16
作者
Ullah, Shah Neyamat [1 ,2 ]
Hu, Yuxia [3 ]
机构
[1] Natl Univ Singapore, Dept Civil & Environm Engn, 1 Engn Dr 2, Singapore 117576, Singapore
[2] Univ Western Australia, COFS, Perth, WA 6009, Australia
[3] Univ Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
关键词
finite element modelling; centrifuge testing; peak bearing capacity; punch-through failure; sand with interbedded clay; spudcan; BEARING CAPACITY; OVERLYING CLAY; PENETRATING SPUDCAN; LIMIT ANALYSIS; FOOTINGS; FOUNDATIONS; MECHANISMS; STRENGTH; SOIL;
D O I
10.1139/cgj-2016-0597
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The presence of a thin soft clay layer inside a bed of sand may significantly reduce the bearing capacity of the sand layer, imposing a risk of punch-through failure. In this paper, finite element (FE) simulations are reported using a hardening soil (HS) model for sand. The FE model has been verified against centrifuge tests involving loose and dense sand layers overlying clay soil. The effects of sand stiffness, foundation roughness, sand friction angle, undrained clay strength, clay strength nonhomogeneity, and sand and clay layer geometries on the foundation peak capacities have been studied. Punch-through failure is initiated with an inclined sand plug being sheared and pushed into the underlying soft clay. During punch-through, the clay layer fails due to significant radial squeezing. Existing analytical models do not capture the combined failure mechanism of sand shearing and clay radial squeezing. A new analytical model is developed to estimate the peak punch-through capacity of a spudcan in sand with an interbedded clay layer, showing improved performance over the current industry guidelines.
引用
收藏
页码:1071 / 1088
页数:18
相关论文
共 41 条
[31]   Bearing capacity of a sand layer on clay by finite element limit analysis [J].
Shiau, JS ;
Lyamin, AV ;
Sloan, SW .
CANADIAN GEOTECHNICAL JOURNAL, 2003, 40 (05) :900-915
[32]   Stiffness and strength parameters for hardening soil model of soft and stiff Bangkok clays [J].
Surarak, Chanaton ;
Likitlersuang, Suched ;
Wanatowski, Dariusz ;
Balasubramaniam, Arumugam ;
Oh, Erwin ;
Guan, Hong .
SOILS AND FOUNDATIONS, 2012, 52 (04) :682-697
[33]   Numerical derivation of CPT-based p-y curves for piles in sand [J].
Suryasentana, S. K. ;
Lehane, B. M. .
GEOTECHNIQUE, 2014, 64 (03) :186-194
[34]   Revealing the bearing capacity mechanisms of a penetrating spudcan through sand overlying clay [J].
Teh, K. L. ;
Cassidy, M. J. ;
Leung, C. F. ;
Chow, Y. K. ;
Randolph, M. F. ;
Quah, C. K. .
GEOTECHNIQUE, 2008, 58 (10) :793-804
[35]  
Teh K. L., 2007, THESIS
[36]  
Teh K. L., 2009, P OFFSH TECHN C HOUS, P1
[37]   Foundation punch-through in clay with sand: centrifuge modelling [J].
Ullah, S. N. ;
Stanier, S. ;
Hu, Y. ;
White, D. .
GEOTECHNIQUE, 2017, 67 (10) :870-889
[38]   Foundation punch-through in clay with sand: analytical modelling [J].
Ullah, S. N. ;
Stanier, S. ;
Hu, Y. ;
White, D. .
GEOTECHNIQUE, 2017, 67 (08) :672-690
[39]   Lateral boundary effects in centrifuge foundation tests [J].
Ullah, Shah Neyamat ;
Hu, Yuxia ;
Stanier, Samuel ;
White, David .
INTERNATIONAL JOURNAL OF PHYSICAL MODELLING IN GEOTECHNICS, 2017, 17 (03) :144-160
[40]  
Vesic A.S., 1975, Foundation Engineering Handbook, P121