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Coupled pore pressure analysis of cone penetration test in two-layered clay.

Authors :
Li, Zhuofeng
Mo, Shide
Yang, Kaiwen
Chen, Yunmin
Source :
Engineering Computations. 2024, Vol. 41 Issue 3, p682-709. 28p.
Publication Year :
2024

Abstract

Purpose: The paper aims to clarify the distribution of excess pore pressure during cone penetration in two-layered clay and its influence on penetrometer resistance. Design/methodology/approach: An arbitrary Lagrangian–Eulerian scheme is adopted to preserve the quality of mesh throughout the numerical simulation. Simplified methods of layered penetration and coupled pore pressure analysis of cone penetration have been proposed and verified by previous studies. The investigation is then extended by the present work to study the cone penetration test in a two-layered clay profile assumed to be homogeneous with the modified Cam clay model. Findings: The reduction of the range of pore pressure with decreasing PF will cause a decrease of the sensing distance. The PF of the underlying soil is one of the factors that determine the development distance. The interface can be obtained by taking the position of the maximum curvature of the penetrometer resistance curve in the case of stiff clay overlying soft clay. In the case of soft clay overlying stiff clay, the interface locates at the maximum curvature of the penetrometer resistance curve above about 1.6D. Research limitations/implications: The cone penetration analyses in this paper are conducted assuming smooth soil-cone contact. Originality/value: A simplified method based on ALE in Abaqus/Explicit is proposed for layered penetration, which solves the problem of mesh distortion at the interface between two materials. The stiffness equivalent method is also proposed to couple pore pressure during cone penetration, which achieves efficient coupling of pore water pressure in large deformations. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02644401
Volume :
41
Issue :
3
Database :
Academic Search Index
Journal :
Engineering Computations
Publication Type :
Academic Journal
Accession number :
177166500
Full Text :
https://doi.org/10.1108/EC-10-2023-0721