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裂隙砂岩在中间主应力与孔隙压力耦合作用下的响应试验研究

Experimental Study on the Response of Cracked Sandstone to the Intermediate Principal Stress Coupled with Pore Pressure.

作者信息

Liang Qinming, Huang Gun, Zheng Jie, Geng Weile, Huang Jinyong, Sun Guowen

机构信息

State Key Laboratory of Coal Mine Disaster Dynamics and Control, Chongqing University, Chongqing 400044, China.

School of Resources and Safety Engineering, Chongqing University, Chongqing 400044, China.

出版信息

ACS Omega. 2024 May 2;9(19):21528-21537. doi: 10.1021/acsomega.4c02233. eCollection 2024 May 14.

Abstract

Underground fractured rock masses are susceptible to failure under the combined influence of true triaxial stresses and pore pressure, posing severe threats to personnel and production safety of underground engineering. To investigate the influence of intermediate principal stress (σ) on the mechanical and water diffusion volume change (Δ) characteristics during the failure process of cracked rocks under stable pore pressure, this study conducted true triaxial strength experiments on cracked sandstone with stable pore pressure. The results demonstrated that with the increase of σ, crack initiation stress (σ), crack damage stress (σ) and the peak stress (σ) of cracked sandstone initially increase and then decrease. Conversely, Δ tends to decrease first and then increase with the increase of σ. This inverse relationship indicates that under elevated σ, the decreased strength of cracked rock could lead to an increase in Δ, which may increase the probability of water inrush disasters. The findings of this study provide a theoretical reference for the stability of rock mass engineering and the prevention of water inrush disasters.

摘要

地下裂隙岩体在真三轴应力和孔隙压力的共同作用下容易发生破坏,对地下工程的人员和生产安全构成严重威胁。为了研究中间主应力(σ)对稳定孔隙压力下裂隙岩石破坏过程中力学及水扩散体积变化(Δ)特性的影响,本研究对具有稳定孔隙压力的裂隙砂岩进行了真三轴强度试验。结果表明,随着σ的增加,裂隙砂岩的裂纹起裂应力(σ)、裂纹损伤应力(σ)和峰值应力(σ)最初增加,然后减小。相反,Δ随σ的增加先减小后增大。这种反比关系表明,在较高的σ作用下,裂隙岩石强度的降低可能导致Δ增大,这可能增加突水灾害发生的概率。本研究结果为岩体工程稳定性及突水灾害防治提供了理论参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a37f/11097356/09daa60e0e31/ao4c02233_0001.jpg

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