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Journal ArticleDOI

Strength of a Model of Jointed Rock

Edwin T. Brown, +1 more
- 01 Mar 1970 - 
- Vol. 96, Iss: 2, pp 685-704
TLDR
In this paper, triaxial compression tests were carried out on idealized samples containing sets of preformed discontinuities inclined at various angles to the sample axes, and four major modes of failure were: axial cleavage fractures at low confining pressures, shear failure through the plaster and across joint planes, slip on joint planes and ductile failure.
Abstract
In an attempt to extend the presently limited state of knowledge of the strength of jointed rock masses, triaxial compression tests were carried out on idealized samples containing sets of preformed discontinuities inclined at various angles to the sample axes The 4 in by 4 in by 8 in samples were built up from one in cubes of a high strength gypsum plaster Triaxial tests were carried out on 5 sample types at each of 5 confining pressures in the range of 0 to 2000 psi The four major modes of failure were: (1) axial cleavage fractures at low confining pressures, (2) shear failure through the plaster and across joint planes, (3) slip on joint planes, and (4) ductile failure The strengths of block-jointed samples failing by mode (2) were less than those of the corresponding unjointed samples At the higher confining pressures of mode (4), the strengths were higher than those of the unjointed samples and were unaffected by joint orientation Friction parameters determined from tests in which mode (3) applied were the same as those determined for the plaster in direct shear tests Mohr's circle envelopes were curved, and could be described by a power law in which the normal stress index varied with joint orientation

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Citations
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Journal ArticleDOI

Numerical analysis of Shiobara hydropower cavern using practical equivalent approach

TL;DR: In this article, a 3D numerical simulation of Shiobara hydropower cavern was attempted with the developed practical equivalent approach, which integrates the effect of joints and corresponding nonlinearity in the rock and predicts its deformation behavior.

Stress-Strain Prediction of Jointed Rocks using Artificial Neural Networks

TL;DR: In this paper, the applicability of Artificial Neural Networks for predicting the stress-strain response of jointed rocks at varied confining pressures, strength properties and joint properties (frequency, orientation and strength of joints) has been studied.
Book ChapterDOI

Failure Mechanism of Jointed Rock

TL;DR: The structural geologist knew for a long time that the earth's crust is highly fractured, cracked and jointed and not, as the engineers for too long a time liked to assume, continuous, homogeneous, and isotropic and therefore the ideal solid material as mentioned in this paper.
Dissertation

A Study on Strength and Deformation Behaviour of Jointed Rock Mass

TL;DR: In this paper, an effort has been made to establish empirical relations to define the properties of jointed rock mass as a function of intact rock properties and joint factor, which is taken into account by the joint factor.