A general method for two-dimensional finite strain elastoplastic consolidation analysis of high-water-content soft soils in irregular soil domains: from theory to applications
Aug 2026· Canadian geotechnical journal (Print)· 0 citations
Abstract
This paper presents a general computational method for two-dimensional (2D) elastoplastic finite strain consolidation analysis of soft soils with high-water-contents. A modified compressibility relationship capable of accounting for zero initial effective stress is embedded into Gibson’s 2D large strain consolidation theory. Using the finite volume method (FVM), the solving procedure is described in detail, including the reconstruction of data structures, the treatment of diffusive and transient terms, matrix assembly, and a calculation flowchart. A parameter calibration strategy for the consolidation model is subsequently provided. The accuracy of the FVM-based computational framework is verified through two verification cases. The proposed FVM-based method and modified compressibility relationship are then applied to simulate an existing geotextile-tube dewatering field test. In addition, a physical model test was conducted and successfully simulated using the method. Results show that the proposed FVM-based method with modified 2D consolidation equations captures nonlinear compressibility, nonlinear permeability, and finite-strain effects, explicitly accounts for the zero initial effective stress of high-water-content soft soils, and, more importantly, is applicable to arbitrary 2D-shaped soil domains. Compared with commercial software, a large language model (LLM) assisted preprocessing and model setup workflow improves modeling efficiency.
Large‐deformation problems in granular soils are of central importance in geotechnical engineering, as they govern the performance of foundations, retaining structures, and earthworks under extreme loading conditions. Reliable prediction of such phenomena remains challenging due to the complex material behavior and t...
Chao-Fa Zhao, Qi-Sen Niu, Ze-Yong Liu et al.· International journal for nu...· 0 citations
This study introduces an application of the Method of Manufactured Solutions (MMS) to verify high‐order compact finite‐difference schemes for solving two‐dimensional incompressible viscoelastic flows in the vorticity–stream function formulation. Using the lid‐driven cavity flow as a benchmark, the MMS generates artif...
Juniormar Organista, L. Souza, C. Fernandes et al.· International Journal for Nu...· 0 citations
This study presents a computational verification of three-dimensional (3D) elastic-plastic crack-tip fields, emphasizing the dual-parameter fracture mechanics framework (J–Q) through finite element analysis (FEA) in Ansys Mechanical. While single-parameter fracture mechanics (K or J dominance) adequately describes high...
Mustapha Ali Alibe, I. M. Alibe· Journal of Systematic, Evalu...· 0 citations
Abstract This study evaluates and improves models for predicting the high-velocity penetration response of ultra-high-performance concrete (UHPC) used in protective structures. The research scope involves systematically comparing three common concrete constitutive models: Holmquist–Johnson–Cook (HJC), Riedel–Hiermaier–...
Ya-Long Wang, Wen-Bin Li, Gui-Xiang Yin et al.· Latin American Journal of So...· 0 citations
In this contribution, Part I, we present a coupled thermo-hydro-mechanical formulation for modeling and analyzing water-to-ice phase change in a deformable fully-saturated porous medium. It is implemented in the multi-physics computational platform OpenGeoSys-6. We compute a series of carefully designed benchmark probl...
T. Gerasimov, Christian B. Silbermann, D. Naumov et al.· 0 citations