Study on meso-crack evolution mechanism and local mechanical properties of fractured rock mass
Diao Yanglong1, Luo Feng1, 2, 3, Li Meng1, 2, 3, LV Zhen1, Xu Peidong1, Guo Yijun1
1. Hebei University of Engineering , Handan 056038, China; 2. Technology Innovation Center of Mine Construction of Hebei Province, Handan 056038, China; 3. Handan Key Laboratory for Ground Control and Disaster Prevention of Deep Roadways, Handan 056038, China
Abstract:In order to study mesoscopic mechanics characteristics and the internal crack development of the fractured sandstone, a uniaxial compression experiment and PFC2D numerical simulation analysis of different angles fractured red sandstone specimens were performed. And evolution of mesoscopic crack simulation and surrounding stress of the fracture were obtained in different angles fractured red sandstone. The results showed that the macro failure mode of complete specimen would be significantly affected by the prefabricated single fracture. Within a certain angle range, the initial crack originated at the prefabricated fracture, and with the increase of the fracture angles, the range of the initiation location increased, also the aggregation effect of the mesoscopic crack at the crack tip became less obvious. The difference of stress peak between the two fractured tips and the upper (lower) part decreased with the increase of fractured angles.
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