Influence of layer orientation and interlayer bonding force on the mechanical behavior of shale under Brazilian test conditions

被引:61
作者
He, Jianming [1 ,2 ]
Afolagboye, Lekan Olatayo [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Geol & Geophys, Key Lab Shale Gas & Geoengn, Beijing 100029, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Anisotropy; Interlayer bonding force; Layer orientation; Mechanical behavior; Shale; ANISOTROPIC ROCK; TENSILE-STRENGTH; MODEL;
D O I
10.1007/s10409-017-0666-7
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The mechanical behavior of inherently anisotropic shale rocks under Brazilian test conditions are investigated in this study based on experimental studies and numerical simulations. The effects of the weak lamination planes and interlayer bonding force of these layers on the failure strength and fracture patterns are studied systematically. Numerical simulations using particle flow code in two dimensions based on the discrete element method showed a good agreement with the experimental results in the failure strength and fracture patterns. The shale revealed strong anisotropic behavior with the failure strength perpendicular to the lamination plane greater than failure strength parallel to lamination plane. The failure strength of the different interlayer bonding force against the layer orientations changed significantly. Four types of fracture patterns were observed: curved fracture, broken-linear fracture, layer-activated fracture, and central-linear fracture. The observed fracture patterns are either or a combination of tensile and/or shear fractures. Increase in interlayer bonding strength decreased the quantity of micro cracks and this directly led to reduction in the anisotropic behavior. Overall the layer orientation and interlayer bonding force of the shale thus play a very important role in the anisotropic behavior of the shale.
引用
收藏
页码:349 / 358
页数:10
相关论文
共 24 条
[1]  
Amadei B., 1983, 5 ISRM C MELB AUSTR
[2]  
Andreev G.E., 1991, Min Sci Technol, V13, P445, DOI DOI 10.1016/0167-9031(91)91006-4
[3]  
Andreev G.E., 1991, Mining Science and Technology, V13, P457, DOI [10.1016/0167-9031(91)91035-G, DOI 10.1016/0167-9031(91)91035-G]
[4]  
BIENIAWSKI ZT, 1978, INT J ROCK MECH MIN, V15, P99
[5]  
Boggs S., 1987, Principles of sedimentology and stratigraphy
[6]   Determination of deformability and tensile strength of anisotropic rock using Brazilian tests [J].
Chen, CS ;
Pan, E ;
Amadei, B .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 1998, 35 (01) :43-61
[7]   A discontinuous future for numerical modelling in geomechanics? [J].
Cundall, PA .
PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-GEOTECHNICAL ENGINEERING, 2001, 149 (01) :41-47
[8]   Discrete element modeling of anisotropic rock under Brazilian test conditions [J].
Duan, K. ;
Kwok, C. Y. .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2015, 78 :46-56
[9]   Microcrack modelling of Brazilian tensile tests with the boundary element method [J].
Lanaro, Flavio ;
Sato, Toshinori ;
Stephansson, Ove .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2009, 46 (03) :450-461
[10]  
Lekhnitskii S.J., 1968, Anisotropic plates