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http://dx.doi.org/10.12989/gae.2019.18.3.225

A numerical stepwise approach for cavity expansion problem in strain-softening rock or soil mass  

Zou, Jin-Feng (School of Civil Engineering, Central South University)
Yang, Tao (School of Civil Engineering, Central South University)
Ling, Wang (School of Civil Engineering, Central South University)
Guo, Wujun (Guizhou Zhongjiao Tonghuai Expressway Co., Ltd.)
Huang, Faling (Guizhou Expressway Group Co., Ltd.)
Publication Information
Geomechanics and Engineering / v.18, no.3, 2019 , pp. 225-234 More about this Journal
Abstract
A numerical stepwise approach for cavity expansion problem in strain-softening rock or soil mass is investigated, which is compatible with Mohr-Coulomb and generalized Hoek-Brown failure criteria. Based on finite difference method, plastic region is divided into a finite number of concentric rings whose thicknesses are determined internally to satisfy the equilibrium and compatibility equations, the material parameters of the rock or soil mass are assumed to be the same in each ring. For the strain-softening behavior, the strength parameters are assumed to be a linear function of deviatoric plastic strain (${\gamma}p^*$) for each ring. Increments of stress and strain for each ring are calculated with the finite difference method. Assumptions of large-strain for soil mass and small-strain for rock mass are adopted, respectively. A new numerical stepwise approach for limited pressure and plastic radius are obtained. Comparisons are conducted to validate the correctness of the proposed approach with Vesic's solution (1972). The results show that the perfectly elasto-plastic model may underestimate the displacement and stresses in cavity expansion than strain-softening coefficient considered. The results of limit expansion pressure based on the generalised H-B failure criterion are less than those obtained based on the M-C failure criterion.
Keywords
cavity expansion; strain-softening; numerical stepwise approach; undrained condition; rock or soil mass;
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