Affiliation:
1. Anhui Provincial Key Laboratory of Building Structure and Underground Engineering Anhui Jianzhu University Hefei China
2. College of Civil Engineering Anhui Jianzhu University Hefei China
3. State Key Laboratory of Intelligent Construction and Healthy Operation & Maintenance of Deep Underground Engineering China University of Mining and Technology Xuzhou China
4. Department of Earth and Environmental Sciences The University of Manchester Manchester UK
Abstract
AbstractTo study the energy evolution and failure characteristics of saturated sandstone under unloading conditions, rock unloading tests under different stress paths were conducted. The energy evolution mechanism of the unloading failure of saturated sandstone was systematically explored from the perspectives of the stress path, the initial confining pressure, and the energy conversion rate. The results show that (1) before the peak stress, the elastic energy increases with an increase in deviatoric stress, while the dissipated energy slowly increases first. After the peak stress, the elastic energy decreases with the decrease of deviatoric stress, and the dissipated energy suddenly increases. The energy release intensity during rock failure is positively correlated with the axial stress. (2) When the initial confining pressure is below a certain threshold, the stress path is the main factor influencing the total energy difference. When the axial stress remains constant and the confining pressure is unloading, the total energy is more sensitive to changes in the confining pressure. When the axial stress remains constant, the compressive deformation ability of the rock cannot be significantly improved by the increase in the initial confining pressure. The initial confining pressure is positively correlated with the rock's energy storage limit. (3) The initial confining pressure increases the energy conversion rate of the rock; the initial confining pressure is positively correlated with the energy conversion rate; and the energy conversion rate has a high confining pressure effect. The increase in the axial stress has a much greater impact on the elastic energy than the confining pressure. (4) When the deviatoric stress is small, the confining pressure mainly plays a protective role. Compared with the case of triaxial compression paths, the rock damage is more severe under unloading paths, and compared with the case of constant axial stress, the rock damage is more severe under increasing axial stress.
Reference40 articles.
1. Dilation in granite during servo-controlled triaxial strength tests
2. Strength and dilation of jointed granite specimens in servo-controlled triaxial tests
3. The Effect of Machine Behaviour and Mechanical Properties of Intact Sandstone Under Static and Dynamic Uniaxial Cyclic Loading
4. Study on the external load of a single layer wall of the vertical shaft in the pore type water‐bearing bedrock section in western China;Cheng H;Chin J Rock Mech Eng,2019
5. Energy evolution law of rocks in process of unloading failure under different paths;Dai B;J Min Saf Eng,2016
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献