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Numerical simulations of shake-table experiment for dynamic soil-pile-structure interaction in liquefi able soils 被引量:15

Numerical simulations of shake-table experiment for dynamic soil-pile-structure interaction in liquefi able soils
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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. 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.
出处 《Earthquake Engineering and Engineering Vibration》 SCIE EI CSCD 2014年第1期171-180,共10页 地震工程与工程振动(英文刊)
基金 Major Research Plan of National Natural Science Foundation of China under Grant No.90815009 the National Natural Science Foundation of China under Grant Nos.51108134,50378031 and 50178027
关键词 LIQUEFACTION pile pinning soil improvement pile deformation EARTHQUAKE nonlinear fi nite element method shake-table experiment liquefaction pile pinning soil improvement pile deformation earthquake nonlinear fi nite element method shake-table experiment
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参考文献8

  • 1袁晓铭,李雨润,孙锐.地面横向往返运动下可液化土层中桩基响应机理[J].土木工程学报,2008,41(9):103-110. 被引量:23
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