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| Analysis of large deformation characteristics of soft rock tunnel surrounding rock under high geo-stresses based on microseismic monitoring and #br#
numerical simulation |
| LI Zhuang1,XU Nuwen1,SUN Zhiqiang2,LIU Jun2,LI Biao3,SUN Yuepeng1,ZHU Jianlin4 |
(1. State Key Laboratory of Hydraulics and Mountain River Engineering,Sichuan University,Chengdu,Sichuan 610065,China;2. PowerChina Sinohydro Bureau 7 Co.,Ltd.,Chengdu,Sichuan 610213,China;3. School of Geoscience and Technology,
Southwest Petroleum University,Chengdu,Sichuan 610500,China;4. China Railway Southwest Research
Institute Co.,Ltd.,Chengdu,Sichuan 611731,China)
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Abstract The deterioration,fragmentation and dilation effects in high-stress soft rock tunnel surrounding rock are significant,making large deformation disasters in soft rock,a critical issue in the construction of long and deep tunnels. To clarify the process and mechanism of large deformation disasters in soft rock tunnels under high-stress conditions,a microseismic monitoring system(MS) was established in a soft rock tunnel. The deformation and failure processes of the surrounding rock under different support strengths were analyzed. Combining convergence monitoring and numerical simulation,the study examined the evolution of cracks and large deformation characteristics of the surrounding rock,revealing the mechanisms of internal fracturing and damage zone evolution under high-stress and strong unloading conditions. The results show that tunnel convergence in high-stress soft rock is closely related to geological conditions and support conditions. Due to nearly vertical joint development in the surrounding rock,deformation at the sidewalls of the tunnel exceeds that at the crown and floor under strong unloading. Different support forms exhibit distinct characteristics in tunnel convergence and MS parameters. Strong support reduces tunnel convergence,decreases daily MS frequency,reduces cumulative apparent volume,and lowers MS event energy and cumulative released energy. Numerical simulation studied the deformation and failure characteristics of the surrounding rock,and a comparative analysis between numerical simulation results and field tests indicated that the damage zone of the tunnel surrounding rock is approximately 8 meters. The study demonstrates that MS monitoring can reflect the large deformation and failure process of soft rock tunnels,providing a scientific basis for the design of support measures and timing in tunnel construction.
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MAO Yuting1, 2, HE Manchao1, 2, LIU Fangzhou3, BAI Xing4, YANG Xiaojie1, 2, TAO Zhigang1, 2*. Development and application of a large-scale physical model system for tunnel creep testing[J]. , 2026, 45(6): 1627-1638. |
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