期刊文献+

Coupled pile soil interaction analysis in undrained condition

Coupled pile soil interaction analysis in undrained condition
下载PDF
导出
摘要 The effective stress method is developed to predict the axial capacity of piles in clay. The effective stress state changes due to the resulting pore pressure change and therefore, the strength and stiffness of the soil will change. In this work, the finite element method is utilized as a tool for the analysis of pile-soil systems in undrained condition. The computer program CRISP was developed to suit the problem requirements. CRISP uses the finite element technique and allows predictions to be made of ground deformation using critical state theories. Eight-node isoparametric element was added to the program in addition to the slip element. A pile loading problem was solved in which the pile-soil system is analyzed in undrained condition. The pile is modelled as elastic-plastic material, while the soil is assumed to follow the modified Cam clay model. During undrained loading condition, the settlement values increase by 22% when slip elements are used. The surface settlement increases by about three times when the load is doubled and the surface settlement at all points increases when using slip elements due to the mode of motion which allows smooth movement of the adjacent soil with respect to the pile. The vertical displacement increases as the distance decreases from the pile and negligible values are obtained beyond 10D (where D is the pile diameter) from the center of the pile and these values are slightly increased when slip elements are used. The vertical effective stress along a section at a distance D from the pile center is approximately the same for all load increments and lower values of effective vertical stress can be obtained when slip elements are used. The effective stress method is developed to predict the axial capacity of piles in clay. The effective stress state changes due to the resulting pore pressure change and therefore, the strength and stiffness of the soil will change. In this work, the finite element method is utilized as a tool for the analysis of pile-soil systems in undrained condition. The computer program CRISP was developed to suit the problem requirements. CRISP uses the finite element technique and allows predictions to be made of ground deformation using critical state theories. Eight-node isoparametric element was added to the program in addition to the slip element. A pile loading problem was solved in which the pile-soil system is analyzed in undrained condition. The pile is modelled as elastic-plastic material, while the soil is assumed to follow the modified Cam clay model. During undrained loading condition, the settlement values increase by 22% when slip elements are used. The surface settlement increases by about three times when the load is doubled and the surface settlement at all points increases when using slip elements due to the mode of motion which allows smooth movement of the adjacent soil with respect to the pile. The vertical displacement increases as the distance decreases from the pile and negligible values are obtained beyond 10D (where D is the pile diameter) from the center of the pile and these values are slightly increased when slip elements are used. The vertical effective stress along a section at a distance D from the pile center is approximately the same for all load increments and lower values of effective vertical stress can be obtained when slip elements are used.
出处 《Journal of Central South University》 SCIE EI CAS 2013年第5期1376-1383,共8页 中南大学学报(英文版)
基金 Project(RG086/10AET) supported by the Institute of Research Management and Monitoring (IPPP),University of Malaya (UM) under UMRG grant number,Malaysia
关键词 PILE finite element coupled analysis undrained condition 桩土相互作用 排水条件 计算机程序 耦合 有限元法分析 垂直有效应力 平滑移动 轴向承载力
  • 相关文献

参考文献17

  • 1ESRIG M I, KIRBY R C, BEA R G Initial development of a general effective stress method for the prediction of axial capacity for driven piles in clay [Cl// Proc 9th Offshore Technology Conference. Huston, 1977: 495-501.
  • 2KIRBY R C, ESRIG M I. Further development of a general effective stress method for prediction of axial capacity for driven piles in clay. Recent developments in the design and construction of piles [R]. London: ICE, 1979.
  • 3WROTH C P, CARTER J P, RANDOLPH M F. Stress changes around a pile driven into cohesion soil, Recent developments in the design and construction of piles [R]. London: ICE, 1979.
  • 4GRANDE L, NORDAL S. Pile-soil interaction analysis on effective stress basis. Recent developments in the design and construction of piles [R]. London: ICE, 1979.
  • 5RANDOLPH M F, WROTH C P. Application of the failure state in undrained simple shear to the shaft capacity of driven piles [J]. Geotechnique, 1981,31(1): 143-157.
  • 6KRAFT L M. Effective stress capacity model for piles in clay. ASCE [J]. Journal of the Geotechnical Engineering Division, 1982,108(11): 1387-1404.
  • 7BOWEN H, CUBRINOVSKI M, JACKA M E. Effective stress analysis of pile foundations in liquefiable soil [Cl// Proceedings of the 2007 Annual NZSEE Technical Conference. Palmerston North. New Zealand: New Zealand Society of Earthquake Engineering. 2007: 1-8.
  • 8SHAFIQU Q S M. Consolidation behaviour of piles under pure lateral loadings [J]. ARPN Journal of Engineering and Applied Sciences. Asian Research Publishing Network (ARPN), 2008, 3(6): 51-57.
  • 9CHEN R P, ZHOU W H, CHEN Y M. Influences of soil consolidation and pile load on the development of negative skin friction of a pile [J]. Computers and Geotechnics, 2009, 36(8): 1265-127L.
  • 10JEONG S, SEO D, KIM Y. Numerical analysis of passive pile groups in offshore soft deposits [J]. Computers and Geotechnics, 2009,36(7): 1164-1175.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部