Shear strength of rock, rock joints and rock masses - Problems and some solutions

被引:0
作者
Barton, N. R. [1 ]
机构
[1] Nick Barton & Associates, Oslo, Norway
来源
ROCK ENGINEERING AND ROCK MECHANICS: STRUCTURES IN AND ON ROCK MASSES | 2014年
关键词
DEFORMATION; CRITERION;
D O I
暂无
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
These three important topics, each deserving separate volumes, even when summarized, can only be treated in a single article by linking them. The all-encompassing shear strength of rock masses cannot be described with advanced algebra as in Hoek-Brown, nor as linear Mohr-Coulomb, each of which are a priori estimates rather than the desirable a posteriori based on experience. The highly non-linear shear strength of intact rock, which has finally been defined as strongly deviated from Mohr-Coulomb, and with more curvature than Hoek-Brown, is the component which fails at small strain. Deep in the crust rocks may be ductile or at their critical state. The very different and weaker joints or fractures provide stability problems in civil and mining engineering, and help maintain some permeability in fractured reservoirs. Joints are highly anisotropic features. They exhibit large differences between their high normal stiffness, and their low, scale-dependent shear stiffness. Joints obviously reach their peak shear strength at larger shear strain than intact rock, and their frictional strength 'remains' after cohesion is lost, as in the words of Muller 1966. It is not correct to add the cohesive strength of the intact rock and the shear resistance of the joints, as in c plus sigma-n tan-phi, nor as in the non-linear form of Hoek-Brown. A third shear strength component may kick-in at larger shear strain: the lower frictional strength of clay-filled discontinuities, such as in the neighbourhood of faults. Finally there is the wide-reaching problem of stress transformation, from principal stresses to normal and shear stress components on a plane. Dilation, shearing and the very presence of the plane violates the theoretical assumptions.
引用
收藏
页码:3 / 16
页数:14
相关论文
共 50 条
[21]   A novel micropolar peridynamic model for rock masses with arbitrary joints [J].
Chen, Xizhuo ;
Yu, Haitao .
ENGINEERING FRACTURE MECHANICS, 2023, 281
[22]   Assessing the Shear Strength of Rock Discontinuities at Laboratory and Field Scales [J].
Hencher, S. R. ;
Richards, L. R. .
ROCK MECHANICS AND ROCK ENGINEERING, 2015, 48 (03) :883-905
[23]   Evaluation Models for the Peak Shear-Strength and Shear-Resistance Components of Rough Rock Joints [J].
Zhang, X. B. ;
Yi, B. ;
Jiang, Q. H. ;
Feng, X. X. ;
Chen, N. .
JOURNAL OF TESTING AND EVALUATION, 2017, 45 (06) :2128-2138
[24]   A roughness parameter considering joint material properties and peak shear strength model for rock joints [J].
Ban, Liren ;
Du, Weisheng ;
Jin, Tianwei ;
Qi, Chengzhi ;
Li, Xiaozhao .
INTERNATIONAL JOURNAL OF MINING SCIENCE AND TECHNOLOGY, 2021, 31 (03) :413-420
[25]   A predictive model for the peak shear strength of infilled soft rock joints developed with a multilayer perceptron [J].
Sena Leite, Ana Raquel ;
Dantas Neto, Silvrano Adonias .
SOILS AND ROCKS, 2020, 43 (04) :575-589
[26]   Over-consolidation effect on shear behavior of rock joints [J].
Babanouri, Nima ;
Nasab, Saeed Karimi ;
Baghbanan, Alireza ;
Mohamadi, Hamid Reza .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2011, 48 (08) :1283-1291
[27]   Prediction of the transitional normal stress of rock joints under shear [J].
Li, Yingchun ;
Du, Xiaoyan ;
Ji, Yinlin .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2022, 159
[28]   Updates to JRC-JCS model for estimating the peak shear strength of rock joints based on quantified surface description [J].
Liu, Quansheng ;
Tian, Yongchao ;
Liu, Dongfeng ;
Jiang, Yalong .
ENGINEERING GEOLOGY, 2017, 228 :282-300
[29]   Prediction of Peak Shear Strength of Natural, Unfilled Rock Joints Accounting for Matedness Based on Measured Aperture [J].
Rios-Bayona, Francisco ;
Johansson, Fredrik ;
Mas-Ivars, Diego .
ROCK MECHANICS AND ROCK ENGINEERING, 2021, 54 (03) :1533-1550
[30]   Shear strength calculation model of rock joints based on three-dimensional morphology of joint surface [J].
Jin Lei-lei ;
Wei Yu-feng ;
Huang Xin ;
Wei Jie .
ROCK AND SOIL MECHANICS, 2020, 41 (10) :3355-3364