JRMGE / Vol 17 / Issue 4

Article

True triaxial modeling test of high-sidewall underground caverns subjected to dynamic disturbances

Chuanqing Zhang, Jinping Ye, Ning Liu, Qiming Xie, Mingming Hu, Lingyu Li

Show More

a State Key Laboratory of Geomechanics and Geotechnical Engineering, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan, 430071,
China
b University of Chinese Academy of Sciences, Beijing, 100049, China
c PowerChina Huadong Engineering Corporation Limited, Hangzhou, 310014, China


2025, 17(4): 2109-2132. doi:10.1016/j.jrmge.2024.04.034


Received: 2024-01-16 / Revised: 2024-03-17 / Accepted: 2024-04-14 / Available online: 2024-09-10

2025, 17(4): 2109-2132.

doi:10.1016/j.jrmge.2024.04.034


Received: 2024-01-16

Revised: 2024-03-17

Accepted: 2024-04-14

Available online: 2024-09-10


Abstract:

Seismicity resulting from the near- or in-field fault activation significantly affects the stability of large-scale underground caverns that are operating under high-stress conditions. A comprehensive scientific assessment of the operational safety of such caverns requires an in-depth understanding of the response characteristics of the rock mass subjected to dynamic disturbances. To address this issue, we conducted true triaxial modeling tests and dynamic numerical simulations on large underground caverns to investigate the impact of static stress levels, dynamic load parameters, and input directions on the response characteristics of the surrounding rock mass. The findings reveal that: (1) When subjected to identical incident stress waves and static loads, the surrounding rock mass exhibits the greatest stress response during horizontal incidence. When the incident direction is fixed, the mechanical response is more pronounced at the cavern wall parallel to the direction of dynamic loading. (2) A high initial static stress level specifically enhances the impact of dynamic loading. (3) The response of the surrounding rock mass is directly linked to the amplitude of the incident stress wave. High amplitude results in tensile damage in regions experiencing tensile stress concentration under static loading and shear damage in regions experiencing compressive stress concentration. These results have significant implications for the evaluation and prevention of dynamic disasters in the surrounding rock of underground caverns experiencing dynamic disturbances.

Download PDF:


Keywords: High-sidewall underground cavern, Modeling test, Coupling effect of dynamic and static loads, Incident wave, Response characteristics, Risk coefficient

Show Figure(s)


Share and Cite

Chuanqing Zhang, Jinping Ye, Ning Liu, Qiming Xie, Mingming Hu, Lingyu Li, 2025. True triaxial modeling test of high-sidewall underground caverns subjected to dynamic disturbances. J. Rock Mech. Geotech. Eng. 17 (4), 2109-2132.

Author(s) Information

Chuanqing Zhang

Dr. Chuanqing Zhang is a professor at Institute of Rock and Soil Mechanics, Chinese Academy of Sciences (CAS). He is a member of editorial board of Rock and Soil Mechanics, and a member of Chinese Society for Rock Mechanics and Engineering (CSRME) and International Society for Rock Mechanics and Rock Engineering (ISRM). He is one of the first group members and outstanding members of Youth Innovation Promotion Association, CAS, and is the winner of the 9th Youth Science and Technology Gold Award of CSRME. His research interests focus on the rock mechanics theory, testing and prevention technology related to high stress disasters in deep underground engineering. In recent years, Dr. Zhang has chaired one of the Key Projects of the Yalong River Joint Fund of the National Natural Science Foundation of China, hosted and participated in 11 projects funded by national, provincial and ministerial projects, and managed more than 20 national major engineering research projects. The research results have been successfully applied to many large hydropower stations in China.