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Erschienen in: Rock Mechanics and Rock Engineering 4/2018

29.12.2017 | Original Paper

Experimental Investigation of the Peak Shear Strength Criterion Based on Three-Dimensional Surface Description

verfasst von: Quansheng Liu, Yongchao Tian, Peiqi Ji, Hao Ma

Erschienen in: Rock Mechanics and Rock Engineering | Ausgabe 4/2018

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Abstract

The three-dimensional (3D) morphology of joints is enormously important for the shear mechanical properties of rock. In this study, three-dimensional morphology scanning tests and direct shear tests are conducted to establish a new peak shear strength criterion. The test results show that (1) surface morphology and normal stress exert significant effects on peak shear strength and distribution of the damage area. (2) The damage area is located at the steepest zone facing the shear direction; as the normal stress increases, it extends from the steepest zone toward a less steep zone. Via mechanical analysis, a new formula for the apparent dip angle is developed. The influence of the apparent dip angle and the average joint height on the potential contact area is discussed, respectively. A new peak shear strength criterion, mainly applicable to specimens under compression, is established by using new roughness parameters and taking the effects of normal stress and the rock mechanical properties into account. A comparison of this newly established model with the JRC–JCS model and the Grasselli’s model shows that the new one could apparently improve the fitting effect. Compared with earlier models, the new model is simpler and more precise. All the parameters in the new model have clear physical meanings and can be directly determined from the scanned data. In addition, the indexes used in the new model are more rational.

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Metadaten
Titel
Experimental Investigation of the Peak Shear Strength Criterion Based on Three-Dimensional Surface Description
verfasst von
Quansheng Liu
Yongchao Tian
Peiqi Ji
Hao Ma
Publikationsdatum
29.12.2017
Verlag
Springer Vienna
Erschienen in
Rock Mechanics and Rock Engineering / Ausgabe 4/2018
Print ISSN: 0723-2632
Elektronische ISSN: 1434-453X
DOI
https://doi.org/10.1007/s00603-017-1390-0

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