Ground response curves for rock masses exhibiting strain-softening behaviour

被引:282
作者
Alonso, E
Alejano, LR
Varas, F
Fdez-Manín, G
Carranza-Torres, C
机构
[1] Univ Vigo, Nat Resources & Environm Engn Dept, E-36280 Vigo, Spain
[2] Univ Vigo, Appl Math Dept, E-36280 Vigo, Spain
[3] Intasca Consulting Grp Inc, Minneapolis, MN 55401 USA
关键词
ground response curves; tunnels; strain-softening; self-similarity;
D O I
10.1002/nag.315
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
A literature review has shown that there exist adequate techniques to obtain ground reaction curves for tunnels excavated in elastic-brittle and perfectly plastic materials. However, for strain-softening materials it seems that the problem has not been sufficiently analysed. In this paper, a one-dimensional numerical solution to obtain the ground reaction curve (GRC) for circular tunnels excavated in strain-softening materials is presented. The problem is formulated in a very general form and leads to a system of ordinary differential equations. By adequately defining a fictitious 'time' variable and re-scaling some variables the problem is converted into an initial value one, which can be solved numerically by a Runge-Kutta-Fehlberg method, which is implemented in MATLAB environment. The method has been developed for various common particular behaviour models including Tresca, Mohr-Coulomb and Hoek-Brown failure criteria, in all cases with non-associative flow rules and two-segment piecewise linear functions related to a principal strain-dependent plastic parameter to model the transition between peak and residual failure criteria. Some particular examples for the different failure criteria have been run, which agree well with closed-form solutions-if existing-or with FDM-based code results. Parametric studies and specific charts are created to highlight the influence of different parameters. The proposed methodology intends to be a wider and general numerical basis where standard and newly featured behaviour modes focusing on obtaining GRC for tunnels excavated in strain-softening materials can be implemented. This way of solving such problems has proved to be more efficient and less time consuming than using FEM- or FDM-based numerical 2D codes. Copyright (C) 2003 John Wiley Sons, Ltd.
引用
收藏
页码:1153 / 1185
页数:33
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