Rock and Soil Mechanics ›› 2020, Vol. 41 ›› Issue (8): 2805-2813.doi: 10.16285/j.rsm.2019.1611

• Numerical Analysis • Previous Articles     Next Articles

Stability analysis of single pile base on efficient finite-element method

WAN Jian-hong, ZHENG Xiang-zhi, OUYANG Wei-hang, LIU Si-wei, LI Xue-you   

  1. School of Civil Engineering, Sun Yat-Sen University, Zhuhai, Guangdong 519082, China
  • Received:2019-09-17 Revised:2019-12-13 Online:2020-08-14 Published:2020-10-18
  • Supported by:
    This work was supported by Early Research Career Scheme Grant of Sun Yat-sen University (76140-18831105) and the 2019 Laboratory Open Fund Project of Sun Yat-sen University (201902146).

Abstract: Currently, the semi-empirical design method based on the linear elastic analysis assumption is commonly employed, which is incapable of examining the stability of the long pile embedded in complex ground mediums accurately. To this, this research adopts the nonlinear finite element method to establish an efficient pile element model for nonlinear analysis of piles. This approach can be utilized in nonlinear buckling stability analysis without assuming effective length factors. This paper elaborates the basic theory of the pile element. It’s worth noting that, the continuous springs along the element are integrated into the pile element formulations for considering the soil structure interaction (SSI) responses, which can significantly improve the computing efficiency. The element tangent stiffness matrixes are accordingly formulated for predicting displacement, and the secant relations are developed for eliminating accumulative errors in a Newton-Raphson incremental-iterative numerical procedure. The Updated- Lagrangian (UL) approach is developed for simulating large deflections of piles. Finally, several benchmark examples are provided for verifying the accuracy and efficiency of the proposed pile element model in analysis and design of piles with nonlinear surrounding soil.

Key words: single pile, finite-element, soil structure interactions, pile element, p-y curve

CLC Number: 

  • TU 473.1
[1] YANG Ming-hui, CAI Ming-hui, CHEN Bo, YANG Han, . A method for calculating horizontal impedance of a single pile considering wave-induced seabed dynamic response [J]. Rock and Soil Mechanics, 2025, 46(5): 1563-1572.
[2] TIAN Shu-ping, WANG Zhen-yu, ZHANG Chen-rong, . Nonlinear resonance characteristics of offshore wind turbines with large diameter monopile foundation [J]. Rock and Soil Mechanics, 2025, 46(1): 156-164.
[3] LEI Guo-ping, SU Dong, CHENG Ma-yao, LIU Hui-fen, ZHANG Wei, . Incremental calculation method of foundation pit enclosure structure and softening p-y curves based on stiffness reduction process of the soil springs in the passive zone [J]. Rock and Soil Mechanics, 2024, 45(3): 797-808.
[4] ZHANG Cong, FENG Zhong-ju, LIN Lu-yu, ZHOU Gui-mei, CHEN Lu, . Dynamic characteristics and damage evaluation of variable-section single pile in a seismic subsidence site [J]. Rock and Soil Mechanics, 2024, 45(10): 3037-3046.
[5] WU Xiao-feng, ZHANG Di, LI Xing, WANG Yu-bing, WEN Kai, . Lateral deformation prediction model of pile foundation in liquefiable site [J]. Rock and Soil Mechanics, 2024, 45(1): 77-86.
[6] JIANG Jie, FU Chen-zhi, CHAI Wen-cheng, OU Xiao-duo , . Analysis of lateral bearing capacity of flexible single pile under vertical-horizontal loading path in sand foundation [J]. Rock and Soil Mechanics, 2023, 44(5): 1375-1384.
[7] ZHU Yan-peng, WU Lin-ping, SHI Duo-bang, ZHAO Zhuang-fu, LÜ Xiang-xiang, DUAN Xin-guo, . Application of nonlinear soil resistance-pile lateral displacement curve based on Pasternak foundation model in foundation pit retaining piles [J]. Rock and Soil Mechanics, 2022, 43(9): 2581-2591.
[8] MA Jian-jun, HAN Shu-juan, GAO Xiao-juan, LI Da, GUO Ying, . Dynamic response analysis of the partially-embedded single pile affected by scour in layered soils [J]. Rock and Soil Mechanics, 2022, 43(6): 1705-1716.
[9] FENG Zhong-ju, MENG Ying-ying, ZHANG Cong, LAI De-jin, ZHU Ji-xin, LIN Lu-yu, . Dynamic response and p-y curve of pile groups in liquefaction site under strong earthquake [J]. Rock and Soil Mechanics, 2022, 43(5): 1289-1298.
[10] SHARAFUTDINOV Rafael. Statistical and regression analyses of sands stiffness in triaxial tests and application of the results [J]. Rock and Soil Mechanics, 2022, 43(10): 2873-2886.
[11] ZHANG Zhi-guo, SHEN An-xin, ZHANG Cheng-ping, PAN Y. T., WU Zhong-ten, . Analytical solution to initial intrusion static equilibrium of steel catenary riser in touchdown zone on seabed based on nonlinear Pasternak foundation model [J]. Rock and Soil Mechanics, 2021, 42(9): 2355-2374.
[12] ZHAO Hai-peng, LI Xue-you, WAN Jian-hong, ZHENG Xiang-zhi, LIU Si-wei, . Analysis of laterally-loaded piles embedded in multi-layered soils using efficient finite-element method [J]. Rock and Soil Mechanics, 2021, 42(7): 1995-2003.
[13] ZHANG Ji-meng, ZHANG Chen-rong, ZHANG Kai, . Model tests of large-diameter single pile under horizontal cyclic loading in sand [J]. Rock and Soil Mechanics, 2021, 42(3): 783-789.
[14] ZHANG Xiao-ling, ZHU Dong-zhi, XU Cheng-shun, DU Xiu-li, . Research on p-y curves of soil-pile interaction in saturated sand foundation in weakened state [J]. Rock and Soil Mechanics, 2020, 41(7): 2252-2260.
[15] ZOU Xin-jun, CAO Xiong, ZHOU Chang-lin, . Model study on the bearing behavior of V-H combined loaded pile in sand considering the current effects [J]. Rock and Soil Mechanics, 2020, 41(6): 1855-1864.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!