Multi-surface failure criterion for saline ice in the brittle regime

2003 ◽  
Vol 36 (1-3) ◽  
pp. 47-70 ◽  
Author(s):  
Ahmed Derradji-Aouat
1999 ◽  
Vol 36 (5) ◽  
pp. 947-960 ◽  
Author(s):  
Michel Aubertin ◽  
Li Li ◽  
Richard Simon ◽  
Salah Khalfi

This paper deals with failure of low-porosity rocks and with a multiaxial representation of the corresponding surface in stress space. The proposed failure criterion is based on a mathematical modification of the MSDP function recently developed by the same group. This three-dimensional criterion has been reformulated so that it can be expressed in a unified manner, without having to resort to a transition condition between the curved portion (referred to as the Mises-Schleicher portion) and the linear portion (referred to as the Drucker-Prager portion). The new failure surface has the following characteristics: a forced passage through the uniaxial strength in tension (σt) and in compression (σc), a continuous influence of the minor principal stress for the entire range of behavior considered, a strength under high confining stress that is controlled by the basic friction angle ϕb and a loading-geometry effect expressed in the π plane. This new expression of the criterion is presented in the paper. Its main characteristics are also shown, together with its application to various low-porosity rocks using a number of testing results taken from the literature. In the discussion that follows, other attributes of the criterion are highlighted using a qualitative comparison with the Hoek-Brown criterion. Key words: rock mechanics, failure surface, failure criterion, laboratory testing.


1980 ◽  
Vol 41 (C9) ◽  
pp. C9-95-C9-100 ◽  
Author(s):  
R. W. MacPherson ◽  
J. C. Anctil
Keyword(s):  

2021 ◽  
Vol 288 ◽  
pp. 123050
Author(s):  
Bing Liu ◽  
Jingkai Zhou ◽  
Xiaoyan Wen ◽  
Jianhua Guo ◽  
Zhiheng Deng ◽  
...  

Materials ◽  
2021 ◽  
Vol 14 (5) ◽  
pp. 1099
Author(s):  
Qingqing Chen ◽  
Yuhang Zhang ◽  
Tingting Zhao ◽  
Zhiyong Wang ◽  
Zhihua Wang

The mechanical properties and fracture behaviour of concretes under different triaxial stress states were investigated based on a 3D mesoscale model. The quasistatic triaxial loadings, namely, compression–compression–compression (C–C–C), compression–tension–tension (C–T–T) and compression–compression–tension (C–C–T), were simulated using an implicit solver. The mesoscopic modelling with good robustness gave reliable and detailed damage evolution processes under different triaxial stress states. The lateral tensile stress significantly influenced the multiaxial mechanical behaviour of the concretes, accelerating the concrete failure. With low lateral pressures or tensile stress, axial cleavage was the main failure mode of the specimens. Furthermore, the concretes presented shear failures under medium lateral pressures. The concretes experienced a transition from brittle fracture to plastic failure under high lateral pressures. The Ottosen parameters were modified by the gradient descent method and then the failure criterion of the concretes in the principal stress space was given. The failure criterion could describe the strength characteristics of concrete materials well by being fitted with experimental data under different triaxial stress states.


Author(s):  
Joseph G. Monir ◽  
William K. Powers ◽  
Joseph J. King ◽  
Thomas W. Wright ◽  
Bradley S. Schoch

2021 ◽  
Vol 28 (1) ◽  
pp. 139-152
Author(s):  
Teng Huang ◽  
Dongdong Zhang ◽  
Yaxin Huang ◽  
Chengfei Fan ◽  
Yuan Lin ◽  
...  

Abstract In this study, the flexural bearing capacity and failure mechanism of carbon fiber-reinforced aluminum laminate (CARALL) beams with a double-channel cross-section and a 3/2 laminated configuration were experimentally and numerically studied. Two types of specimens using different carbon fiber layup configurations ([0°/90°/0°]3 and [45°/0°/−45°]3) were fabricated using the pressure molding thermal curing forming process. The double-channel CARALL beams were subjected to static three-point bending tests to determine their failure behaviors in terms of ultimate bearing capacity and failure modes. Owing to the shortcomings of the two-dimensional Hashin failure criterion, the user-defined FORTRAN subroutine VUMAT suitable for the ABAQUS/Explicit solver and an analysis algorithm were established to obtain a progressive damage prediction of the CFRP layer using the three-dimensional Hashin failure criterion. Various failure behaviors and mechanisms of the CARALL beams were numerically analyzed. The results indicated that the numerical simulation was consistent with the experimental results for the ultimate bearing capacity and final failure modes, and the failure process of the double-channel CARALL beams could be revealed. The ultimate failure modes of both types of double-channel CARALL beams were local buckling deformation at the intersection of the upper flange and web near the concentrated loading position, which was mainly caused by the delamination failure among different unidirectional plates, tension and compression failure of the matrix, and shear failure of the fiber layers. The ability of each fiber layer to resist damage decreased in the order of 90° fiber layer > 0° fiber layer > 45° fiber layer. Thus, it is suggested that 90°, 0°, and 45° fiber layers should be stacked for double-channel CARALL beams.


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