Cyclic behavior of laterally loaded concrete piles embedded into cohesive soil

2007 ◽  
Vol 37 (1) ◽  
pp. 43-59 ◽  
Author(s):  
Rabin Tuladhar ◽  
Takeshi Maki ◽  
Hiroshi Mutsuyoshi
2014 ◽  
Vol 51 (2) ◽  
pp. 129-143 ◽  
Author(s):  
Mehdi Heidari ◽  
Mojtaba Jahanandish ◽  
Hesham El Naggar ◽  
Arsalan Ghahramani

Pile foundations may be subjected to lateral dynamic loads due to different hazards, such as impact of ships on bridge piers or jetties during berthing, wave and wind actions on offshore structures, and seismic wave motion on different buildings. The beam on nonlinear Winkler foundation (BNWF) approach is widely employed for predicting the response of piles under lateral loading because of its simplicity and practical accuracy. p–y curves are employed to represent the nonlinear soil reactions within the framework of the BNWF approach. However, they are empirically obtained from limited full-scale field tests and are not unique, accounting only for the pile width and not its mechanical properties. On the other hand, the strain wedge (SW) method allows the assessment of three-dimensional (3-D) soil–pile interaction of laterally loaded piles by incorporating soil continuity and pile properties as well as soil properties. In this study, the nonlinear p–y curves generated by the SW model are implemented as the backbone curve of developed BNWF model to effectively account for different response features of the pile–soil system. These features include the soil and pile nonlinear behavior, cyclic degradation of soil stiffness and strength, formation of soil–pile gap, and radiation damping. Two case studies of cyclic lateral load tests for single piles are investigated to examine the effects of soil degradation and gap formation on the response of laterally loaded piles embedded in cohesive soil. The developed model is shown to be capable of representing different soil–pile interaction features observed in experiments. The predictions of the developed BNWF model are in good agreement with experimental results. Finally, a comprehensive parametric study is performed to compare the predictions of the SWM-based model of the pile response under cyclic loading with that obtained from the conventional p–y curve–based model for different pile cross-section configurations, mechanical properties (strength and stiffness), and soil strength–stiffness.


2017 ◽  
Vol 36 (1) ◽  
pp. 2-9 ◽  
Author(s):  
Lu Ma ◽  
Yuke Wang ◽  
Wei Wang ◽  
Xiaoyang Xu ◽  
Songtao Li

2009 ◽  
Vol 33 (4) ◽  
pp. 529-537 ◽  
Author(s):  
Gokhan Imancli ◽  
M. Rifat Kahyaoglu ◽  
Gurkan Ozden ◽  
Arif S. Kayalar

Mathematics ◽  
2021 ◽  
Vol 9 (16) ◽  
pp. 1961
Author(s):  
Ayman Abd-Elhamed

This research study presents a closed form solution of responses of laterally loaded long piles embedded on cohesive soils with a constant subgrade modulus. The surrounding soil medium is modelled as elastic-perfectly plastic. The closed form solution is derived by solving the governing differential equation of the pile–soil system. The most popular numerical computation software package MATLAB is utilized for the implementation of solutions. The provided analytical method reliably calculates the pile head deflection and bending moment required for engineering design purposes. Results are discussed and verified with solutions of an equivalent three-dimensional finite element (FE) model developed using ANSYS software. It was concluded that the proposed analytical model could efficiently provide the exact solution of embedded piles in elasto-plastic cohesive soil under lateral loads.


2020 ◽  
Vol 0 (6) ◽  
pp. 64-71
Author(s):  
Bohdan Demchyna ◽  
Yurii Kunanets ◽  
Mykhailo Surmai ◽  
Yevhen Hlavatskyi
Keyword(s):  

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