Jiang Chongyang, Wang Lianguo, Ding Ke, Wang Shuai, Ren Bo, Guo Jiaxing
State Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and Technology, Xuzhou 221116, China.
Materials (Basel). 2023 Mar 16;16(6):2384. doi: 10.3390/ma16062384.
Research on the mechanical properties and damage evolution of coal during true triaxial cyclic loading and unloading is of great significance for maintaining the long-term safety and stability of underground engineering structures in coal mines. In this paper, firstly, the deformation, strength and fracturing characteristics of coal during true triaxial loading and true triaxial cyclic loading and unloading were analyzed. Then, the residual strain characteristics, energy distribution and evolution of coal were systematically studied. Additionally, the damage evolution laws of coal during cyclic loading and unloading were quantitatively analyzed from the perspectives of residual strain and energy dissipation, respectively. The damage evolution law based on residual strain showed that when the intermediate principal stress was high, the damage to coal was directional. With the increase in cyclic load, the coal damage variables in the directions of σ1 and σ3 increased exponentially, while that in the direction of σ2 increased quadratically. The damage evolution law based on energy dissipation showed that the coal damage variable increased exponentially with the increase in cyclic load. With the increase in σ2, the increasing speed of coal damage variable decreased first and then increased. The damage variables established based on residual strain and energy dissipation can both reveal the damage deterioration mechanism of coal during true triaxial cyclic loading and unloading, which is of great theoretical and engineering significance for scientifically evaluating the stability of underground coal and rock engineering and preventing the occurrence of major geological disasters.
研究煤在真三轴循环加卸载过程中的力学特性及损伤演化,对于维持煤矿地下工程结构的长期安全与稳定具有重要意义。本文首先分析了煤在真三轴加载及真三轴循环加卸载过程中的变形、强度及破裂特性。然后,系统研究了煤的残余应变特性、能量分布及演化。此外,分别从残余应变和能量耗散的角度对煤在循环加卸载过程中的损伤演化规律进行了定量分析。基于残余应变的损伤演化规律表明,当中间主应力较高时,煤的损伤具有方向性。随着循环荷载的增加,σ1和σ3方向的煤损伤变量呈指数增长,而σ2方向的煤损伤变量呈二次增长。基于能量耗散的损伤演化规律表明,煤损伤变量随循环荷载的增加呈指数增长。随着σ2的增加,煤损伤变量的增长速度先减小后增大。基于残余应变和能量耗散建立的损伤变量均能揭示煤在真三轴循环加卸载过程中的损伤劣化机制,对科学评价煤矿地下岩土工程稳定性及预防重大地质灾害的发生具有重要的理论和工程意义。