An edge‐based strain smoothing particle finite element method for large deformation problems in geotechnical engineering
Метод частично-элементных частиц с осреднением деформаций по рёбрам для задач больших деформаций в геотехнической инженерии
2020-01-29
SCID: 54.1/numkh567
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edge-based strain smoothinglarge deformation geotechnical problemsparticle finite element methodprogressive slope failurevolumetric locking
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Abstract (AI)
Summary To solve large deformation geotechnical problems, a novel strain‐smoothed particle finite element method (SPFEM) is proposed that incorporates a simple and effective edge‐based strain smoothing method within the framework of original PFEM. Compared with the original PFEM, the proposed novel SPFEM can solve the volumetric locking problem like previously developed node‐based smoothed PFEM when lower‐order triangular element is used. Compared with the node‐based smoothed PFEM known as “overly soft” or underestimation property, the proposed SPFEM offers super‐convergent and very accurate solutions due to the implementation of edge‐based strain smoothing method. To guarantee the computational stability, the proposed SPFEM uses an explicit time integration scheme and adopts an adaptive updating time step. Performance of the proposed SPFEM for geotechnical problems is first examined by four benchmark numerical examples: (a) bar vibrations, (b) large settlement of strip footing, (c) collapse of aluminium bars column, and (d) failure of a homogeneous soil slope. Finally, the progressive failure of slope of sensitive clay is simulated using the proposed SPFEM to show its outstanding performance in solving large deformation geotechnical problems. All results demonstrate that the novel SPFEM is a powerful and easily extensible numerical method for analysing large deformation problems in geotechnical engineering.
Key Findings
1
A novel edge-based strain-smoothed particle finite element method (SPFEM) is developed within the original particle finite element method framework for large-deformation geotechnical problems.
2
An explicit time-integration scheme with an adaptively updated time step is used to maintain computational stability.
3
Benchmark tests and a sensitive-clay slope progressive-failure simulation demonstrate the method’s effectiveness for large-deformation geotechnical analyses.
4
Edge-based strain smoothing provides super-convergent and highly accurate solutions, avoiding the overly soft response associated with node-based smoothed PFEM.
5
The method alleviates volumetric locking in lower-order triangular elements, similarly to node-based smoothed PFEM.
Research Object
large-deformation geotechnical systems, including strip footings, soil slopes, sensitive clay slopes, and deformable columns
Research Subject
their deformation, settlement, vibration, collapse, and progressive failure behavior, including volumetric-locking and numerical-accuracy characteristics
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2020-01-29
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