Experimental study of mechanical properties of artificial dam for coal mine underground reservoir under cyclic loading and unloading

IF 3.9 2区 工程技术 Q3 ENERGY & FUELS Geomechanics and Geophysics for Geo-Energy and Geo-Resources Pub Date : 2024-05-14 DOI:10.1007/s40948-024-00815-4
Xin Lyu, Ke Yang, Chaoshui Xu, Juejing Fang, Minke Duan, Zhainan Zhang
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Abstract

This study investigates the stability of an artificial dam used in an underground reservoir in a coal mine under periodic weighting imposed by overlying rock strata. For this purpose, cyclic loading and unloading tests with different stress amplitudes were designed. Differences in the mechanical performance of the artificial dam with and without overlying strata were analyzed using a uniaxial compression test. The mechanical properties of the structure under constant-amplitude cyclic loading and unloading were characterized. Further, the law of influence of stress amplitude on stability was discussed. A formula for predicting the mechanical performance of the artificial dam with its overlying rocks (hereafter referred to as the complex) was finally derived and was suitable for clarifying the law of damage in the complex under cyclic loading and unloading. The results showed that the complex had changed the internal structure of rocks. The strength and deformation of the complex were intermediate to that of either single structure. All three underwent brittle failure. During the constant-amplitude loading and unloading tests, the hysteresis loop could be divided into three phases, namely, sparse, dense, and sparse again, with a shift in the turning point in rock deformation memory effect. As the stress amplitude increased during the test, the damping ratio of the specimens decreased, and the area of the hysteresis loop increased non-linearly. The dynamic elastic modulus decreased first and then increased. The confidence interval for the formula fitted based on the test results was above 97%. Damage to the complex caused by constant-amplitude loading and unloading could be divided into three stages. An increase in peak stress served as a catalyst for the evolution of small cracks within the specimens into median and large cracks, thereby accelerating the damage process.

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循环加载和卸载条件下煤矿地下水库人工大坝力学性能的试验研究
本研究探讨了煤矿地下水库中使用的人工大坝在上覆岩层周期性加权作用下的稳定性。为此,设计了不同应力振幅的循环加载和卸载试验。通过单轴压缩试验分析了有上覆岩层和无上覆岩层人工大坝的机械性能差异。分析了结构在恒定振幅循环加载和卸载下的力学性能。此外,还讨论了应力振幅对稳定性的影响规律。最终得出了人工大坝及其上覆岩石(以下简称 "复合体")的力学性能预测公式,该公式适用于阐明复合体在循环加载和卸载下的破坏规律。结果表明,复合体改变了岩石的内部结构。复合结构的强度和变形介于单一结构和复合结构之间。三种结构都发生了脆性破坏。在恒定振幅加载和卸载试验过程中,滞环可分为三个阶段,即稀疏、致密和再稀疏阶段,岩石变形记忆效应的转折点发生了变化。试验过程中,随着应力振幅的增大,试样的阻尼比减小,滞环面积非线性增大。动态弹性模量先减小后增大。根据试验结果拟合的公式的置信区间在 97% 以上。恒定振幅加载和卸载对复合材料造成的破坏可分为三个阶段。峰值应力的增加是试样内部小裂纹演变为中裂纹和大裂纹的催化剂,从而加速了破坏过程。
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来源期刊
Geomechanics and Geophysics for Geo-Energy and Geo-Resources
Geomechanics and Geophysics for Geo-Energy and Geo-Resources Earth and Planetary Sciences-Geophysics
CiteScore
6.40
自引率
16.00%
发文量
163
期刊介绍: This journal offers original research, new developments, and case studies in geomechanics and geophysics, focused on energy and resources in Earth’s subsurface. Covers theory, experimental results, numerical methods, modeling, engineering, technology and more.
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