Cheng Yun, Li Changwei, Sun Yinhao, Chen Lingyi, Lu Xingan, Qian Wenjun, Wang Tong, Zhi Bin, Liu Zhi, Song Zhanping P
School of Civil Engineering, Yancheng Institute of Technology, Yancheng, 224051, Jiangsu, China.
School of Civil Engineering, Xi'an University of Architecture and Technology, Xi'an, 710055, Shaanxi, China.
Sci Rep. 2024 Oct 10;14(1):23657. doi: 10.1038/s41598-024-73190-5.
The deterioration and deformation of brittle rock generally appear in railway tunnels with the operation of large buried deep tunnel. To investigate the macro-micro fracture and acoustic emission evolution characteristics of brittle rock, this paper conducted the uniaxial compression, scanning electron microscope (SEM), and acoustic emission (AE) signal monitoring under different loading rates. The results showed that the loading rate has an obvious enhancement effect on mechanical parameters. The increased loading rate extends the elastic deformation and improves the bearing strength, elastic modulus and deformation modulus. The fracture patterns include shear fracture, composite fracture, and tension fracture. The oblique shear fracture is transformed into composite fracture and tension fracture with the loading rate increasing. The microscopic fracture shows that increasing loading rate inhibits the evolution of oblique shear fractures and promotes the expansion of tensile fractures. The roughness level of tensile fractures is significantly lower than that of oblique shear fracture and composite fracture. The AE parameters and deformation behavior are characterized by simultaneous evolution. The AE amplitude changes from low-level and low-density distribution to high-level and high-density distribution as the loading rate increases. The AE activity intensity of tensile fracture is significantly greater than that of oblique shear fracture and composite fracture. The warning timeliness of cumulative AE events and cumulative AE energy is generally earlier than the AE b-value under the same loading rate, and the early warning timeliness of cumulative AE events is similar to that of cumulative AE energy.
随着深埋长大隧道的运营,脆性岩石的劣化变形现象普遍出现在铁路隧道中。为研究脆性岩石的宏观-微观断裂及声发射演化特性,本文开展了不同加载速率下的单轴压缩、扫描电子显微镜(SEM)及声发射(AE)信号监测试验。结果表明,加载速率对力学参数有显著增强作用。加载速率的提高延长了弹性变形阶段,提高了抗压强度、弹性模量及变形模量。断裂模式包括剪切断裂、复合断裂和拉伸断裂。随着加载速率的增加,斜剪断裂向复合断裂和拉伸断裂转变。微观断裂表明,加载速率的增加抑制了斜剪断裂的演化,促进了拉伸断裂的扩展。拉伸断裂的粗糙度明显低于斜剪断裂和复合断裂。声发射参数与变形行为呈现同步演化特征。随着加载速率的增加,声发射幅值由低水平、低密度分布转变为高水平、高密度分布。拉伸断裂的声发射活动强度明显大于斜剪断裂和复合断裂。在相同加载速率下,累积声发射事件和累积声发射能量的预警及时性总体早于声发射b值,累积声发射事件的预警及时性与累积声发射能量相近。