Failure design of jointed rock structures by means of a homogenization approach

Samir Maghous, Patrick de Buhan, Arnaud Bekaert
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引用次数: 46

Abstract

Conceived as a potential alternative to the methods usually employed for evaluating the stability of jointed rock masses, the homogenization approach developed in this paper stems from the intuitive idea that, from a macroscopic point of view, a rock mass intersected by a regular network of joint surfaces may be perceived as a homogeneous continuum. The failure criterion of such an equivalent medium is theoretically determined from the knowledge of the failure conditions of the individual constituents, namely the intact rock matrix and joint interfaces. Owing to the existence of privileged material directions associated with the joint orientation distribution, this criterion turns out to be of the anisotropic frictional type, as shown by the closed-form expression obtained in the particular case of two mutually orthogonal joint sets. This criterion is then applied to the investigation of two illustrative engineering problems: the calculation of the load-bearing capacity of a shallow foundation on a jointed rock half-space and the stability analysis of an excavation. Both problems are handled by means of the kinematic method of yield design, making use of the previously determined macroscopic failure condition. The upper bound estimates thus derived appear to be significantly better than those obtained from a direct analysis in which the intact rock matrix and joints are considered separately. In spite of some limitations regarding its range of applicability, which are underlined throughout the paper, the homogenization approach may constitute an appropriate general framework for the design of densely jointed rock structures. © 1998 John Wiley & Sons, Ltd.

基于均匀化方法的节理岩体结构破坏设计
本文提出的均质化方法被认为是用来评估节理岩体稳定性的一种潜在的替代方法,它源于一个直观的想法,即从宏观的角度来看,由节理表面的规则网络相交的岩体可以被视为一个均质连续体。这种等效介质的破坏准则在理论上是根据单个组成部分(即完整的岩石基质和节理界面)的破坏条件来确定的。由于节理取向分布中存在特殊的材料方向,该准则为各向异性摩擦型,在两个相互正交的节理集的特殊情况下得到了封闭表达式。然后将该准则应用于两个说明性工程问题的研究:节理岩石半空间上浅基础的承载力计算和开挖的稳定性分析。利用先前确定的宏观破坏条件,用屈服设计的运动学方法来处理这两个问题。由此得出的上限估计似乎比单独考虑完整岩石基质和节理的直接分析得到的估计要好得多。尽管在适用范围上存在一些局限性,但均匀化方法可以为密集节理岩石结构的设计提供一个适当的总体框架。©1998 John Wiley &儿子,有限公司
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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