Numerical analyses of pile performance in laterally spreading frozen ground crust overlying liquefiable soils

被引:0
作者
Xiaoyu Ryan Zhang
Zhaohui Joey Yang
机构
[1] Mueser Rutledge Consulting Engineers,College of Engineering
[2] University of Alaska,College of Engineering
[3] University of Alaska,undefined
来源
Earthquake Engineering and Engineering Vibration | 2018年 / 17卷
关键词
frozen ground crust; lateral spread; Finite Element (FE) modeling; BNWF method;
D O I
暂无
中图分类号
学科分类号
摘要
Lateral spread of frozen ground crust over liquefied soil has caused extensive bridge foundation damage in the past winter earthquakes. A shake table experiment was conducted to investigate the performance of a model pile in this scenario and revealed unique pile failure mechanisms. The modelling results provided valuable data for validating numerical models. This paper presents analyses and results of this experiment using two numerical modeling approaches: solid-fluid coupled finite element (FE) modeling and the beam-on-nonlinear-Winkler-foundation (BNWF) method. A FE model was constructed based on the experiment configuration and subjected to earthquake loading. Soil and pile response results were presented and compared with experimental results to validate this model. The BNWF method was used to predict the pile response and failure mechanism. A p-y curve was presented for modelling the frozen ground crust with the free-field displacement from the experiment as loading. Pile responses were presented and compared with those of the experiment and FE model. It was concluded that the coupled FE model was effective in predicting formation of three plastic hinges at ground surface, ground crust-liquefiable soil interface and within the medium dense sand layer, while the BNWF method was only able to predict the latter two.
引用
收藏
页码:491 / 499
页数:8
相关论文
共 51 条
  • [1] Boulanger RW(1997)Soil-Pile-Superstructure Interaction in Liquefiable Sand Transportation Research Record, No. 1569 TRB, NRC, National Academy Press 1569 55-64
  • [2] Wilson DW(2007)Static Pushover Analyses of Pile Groups in Liquefied and Laterally Spreading Ground in Centrifuge Tests ASCE Journal of Geotechnical and Geoenviron. Engineering 133 1055-1066
  • [3] Kutter BL(1990)Analysis of Laterally Loaded Piles Embedded in Layered Frozen Soil ASCE J. Geotechnical Engineering 1167 1137-1152
  • [4] Brandenberg SJ(2008)Prediction of Pile Response to Lateral Spreading by 3-D Soil–Water Coupled Dynamic Analysis: Shaking in the Direction of Ground Flow Soil Dynamics and Earthquake Engineering 28 421-435
  • [5] Boulanger RW(1995)Centrifuge Modeling of Liquefaction Effects During Earthquakes Proc., 1st Int. Conf. on Earthquake Geotechnical Engineering, K. Ishihara, ed., Balkema/Rotterdam/The Netherlands, Tokyo 3 1291-1324
  • [6] Crowther SG(2008)Three-Dimensional Seismic Response of Bridge Foundation-Ground System ASCE Journal of Structural Engineering 134 1165-1176
  • [7] Cubrinovski M(2002)Computational Modeling of Cyclic Mobility and Post-Liquefaction Site Response Soil Dynamics and Earthquake Engineering 22 259-271
  • [8] Uzuoka R(2003)Modeling of Cyclic Mobility in Saturated Cohesionless Soils Int. J. Plasticity 19 883-905
  • [9] Sugita H(2002)Piles in Liquefiable Soils: Seismic Analysis and Design Issues Soil Dynamics and Earthquake Engineering 22 731-742
  • [10] Dobry R(1998)Analyses of Damaged and Undamaged Pile Foundations in Liquefied Soils during the 1995 Kobe Earthquake. Geotechnical Earthquake Engineering and Soil Dynamics III, Geotechnical Special Publication No. 75. ASCE 2 1187-1198