堆
岩土工程
地震振动台
刚度
结构工程
主管(地质)
基础(证据)
上部结构
参数统计
桩帽
流离失所(心理学)
地质学
工程类
材料科学
考古
心理学
心理治疗师
地貌学
统计
历史
数学
作者
Tang,Liang Liang,Baydaa,Hussain,Maula,Ling,Xianzhang,Su,Lei
出处
期刊:地震工程与工程振动:英文版
日期:2014-01-01
卷期号: (1): 171-180
被引量:1
摘要
A shake-table experiment on pile foundations in liquefi able soils composed of liquefi able sand and overlying soft clay is studied. A three-dimensional(3D) effective stress fi nite element(FE) analysis is employed to simulate the experiment. A recently developed multi-surface elasto-plastic constitutive model and a fully coupled dynamic inelastic FE formulation(u-p) are used to model the liquefaction behavior of the sand. The soil domains are discretized using a solid-fl uid fully coupled(u-p) 20-8 noded brick element. The pile is simulated using beam-column elements. Upon careful calibration, very good agreement is obtained between the computed and the measured dynamic behavior of the ground and the pile. A parametric analysis is also conducted on the model to investigate the effect of pile-pinning, pile diameter, pile stiffness, ground inclination angle, superstructure mass and pile head restraints on the ground improvement. It is found that the pile foundation has a noticeable pinning effect that reduces the lateral soil displacement. It is observed that a larger pile diameter and fi xed pile head restraints contribute to decreasing the lateral pile deformation; however, a higher ground inclination angle tends to increase the lateral pile head displacements and pile stiffness, and superstructure mass seems to effectively infl uence the lateral pile displacements.
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