基于矿坑开发的抽水蓄能电站下水库围岩稳定性分析

Stability analysis of surrounding rock of underground reservoir of pumped-storage hrdropower based on mine pit development

  • 摘要: 在矿井改建抽水蓄能电站中,下水库开挖后引起地下渗流场改变,将导致应力场重新调整,易引起围岩的失稳和变形,因此围岩稳定性成为石砀山铜矿地下空间改建的关键。基于此建立考虑流−固耦合的地下水渗流和地应力数学模型,利用COMSOL Multiphysics软件和有限元方法构建数值模型,采用三维地质模型与二维剖面模型相结合的方式,开展石砀山拟建抽水蓄能电站中下水库围岩稳定性分析。结果表明:在下水库开挖后地下渗流场发生变化,渗流方向改变,水位呈漏斗状;下水库附近及顶部的孔隙水压力减小,高孔隙压力区分布在下水库两侧的模型底部。对比不考虑流−固耦合作用情况下,考虑流−固耦合后围岩应力、位移及塑性区发生变化,最大等效应力减小了0.9 MPa,最小等效应力增加了0.3 MPa,洞室两侧等效应力均呈减小趋势,边界洞室受孔隙水压力影响更大;整体洞室围岩的变形减小,边界洞室变形大于内部洞室;流−固耦合作用一定程度上减小了塑性区的分布。进一步基于流−固耦合数值模型,设计下水库在充/放水条件下围岩应力分布状态和稳定性,结果表明所设计的3种工况对围岩施加的静水压力、水位变化引起的孔隙水压力变化和软化效应引起的稳定性变化较小;软化效应在一定程度上减弱围岩稳定性,在下水库支护时需重视对洞室的衬砌,在设计工况下下水库围岩稳定性仍可以得到保证。综上在矿井改建抽水蓄能电站中运用数值模拟评价下水库的围岩稳定性,以提供数据支撑和保障工程的安全性。

     

    Abstract: In the reconstruction of pumped-storage hydropower in the mine, the change of seepage field caused by the excavation of the underground reservoir leads to the readjustment of the stress field, which will easily cause the instability and deformation of the surrounding rock. Therefore, the stability of surrounding rock has become the key to the reconstruction of the underground space in Shidangshan Copper Mine. Based on this, a mathematical model of groundwater seepage and geostress that takes into account the fluid-soild coupling is established, and a numerical model is constructed by using the COMSOL Multiphysics software and finite-element method, and the three-dimensional geological model and two-dimensional sectional model are combined to carry out the stability analysis of the surrounding rocks in underground reservoir of the proposed pumped-storage hydropower in Shidangshan. The results show that the underground seepage field changes after the excavation of the underground reservoir, the direction of groundwater seepage changes, and the water level is funnel-shaped. The pore water pressure near and on top of the underground reservoir decreases, and the high pore pressure area is distributed at the bottom of the model on both sides of the underground reservoir. Compared with the case without considering the fluid-solid coupling, the stress, displacement and plastic zone of the surrounding rock are changed after considering the fluid-solid coupling, the maximum equivalent force decreased by 0.9 MPa, and the minimum equivalent force is increased by 0.3 MPa. The equivalent stress on both sides of the cavern shows a decreasing trend, and the boundary cavern is more affected by pore water pressure. The deformation of the surrounding rock of the whole cavern is decreased, and the deformation of the boundary cavern is larger than that of the inner cavern. The fluid-solid coupling reduce the distribution of the plastic zone to a certain extent. Further based on the numerical model of fluid-solid coupling, the stress distribution state and stability of the surrounding rock under filling and releasing water conditions of the underground reservoir are designed. Simulation results show that the designed three conditions of hydrostatic pressure exerted on the surrounding rock, pore water pressure changes caused by water level changes and the stability of the softening effect caused by the change is small, the softening effect to a certain extent weaken the stability of the surrounding rock, in the underground reservoir support need to pay attention to the lining of the cave, the stability of the surrounding rock under the designed conditions of the lower reservoir can still be guaranteed. In summary, numerical simulation is used to evaluate the stability of the surrounding rocks of the underground reservoir in the mine reconstruction pumped-storage hydropower to provide data support and ensure the safety of the project.

     

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