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Investigation of a fluid-solid coupling model for a tailings dam with infiltration of suspended particles

机译:悬浮颗粒渗透的尾矿坝流固耦合模型研究

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The study of the migration and deposition characteristics of suspended particles in porous media is significant in petroleum exploitation, groundwater recharge, filter design, nuclear waste disposal, and migration of underground pollutants. In recent years, researchers have tended to neglect the influence of tailings particle movement on seepage action in stability analysis of tailings dams. They have focused on analyzing the influence of tailings particle movement and deposition on tailings dams' physical parameters. Based on the effective stress principle, the suspended-particle deposition equation is incorporated into the model of the fluid-solid coupling seepage field and combined with the stress field equation. Then, the particle deposition fluid-solid coupling model is established and gives the proper solution conditions for simplification. Based on a calculation program developed in-house, the stability of a tailings dam is analyzed while taking into account suspended particles. This approach aims to gradually reduce variation in percolation time growth of the coefficients of permeability and porosity. On this basis, we monitor the horizontal displacement and sedimentation values of the primary dam crest and of all levels of the sub-dam. We explore preliminarily the distribution law for tailings pore pressure to validate the correctness of the proposed mathematical model. Numerical analysis results show that in the process of deposition, the porosity, permeability coefficient, and flow rate become progressively smaller. The displacement of the primary dam is minimal and displacement of the third sub-dam is the largest, with displacement size displaying a relationship with dam height. The vertical displacement of the dam top gradually increases with increasing grades of sub-dams, and the difference is nearly 0.5 cm between the displacement of the primary and third dam crest-monitoring points. The results provide a theoretical basis for stability analysis of tailings dams undergoing tailings particle infiltration. Moreover, they provide reference material for studying migration and deposition characteristics of suspended particles in porous media.
机译:对多孔介质中悬浮颗粒迁移和沉积特征的研究对石油开采,地下水补给,过滤器设计,核废料处置和地下污染物的迁移具有重要意义。近年来,研究人员在尾矿坝稳定性分析中往往忽略了尾矿颗粒运动对渗流作用的影响。他们专注于分析尾矿颗粒运动和沉积对尾矿坝物理参数的影响。基于有效应力原理,将悬浮颗粒沉积方程式引入流固耦合渗流场模型,并与应力场方程组合。然后,建立了颗粒沉积流固耦合模型,并给出了简化的合适解条件。根据内部开发的计算程序,分析尾矿坝的稳定性,同时考虑悬浮颗粒。该方法旨在逐渐减少渗透率和孔隙率系数在渗透时间增长中的变化。在此基础上,我们监控了一级坝顶和各个二级坝的水平位移和沉降值。我们初步探索了尾矿孔隙压力的分布规律,以验证所提出数学模型的正确性。数值分析结果表明,在沉积过程中,孔隙度,渗透系数和流速逐渐减小。主坝的位移最小,而第三子坝的位移最大,位移大小显示出与坝高的关系。坝顶的垂直位移随着子坝等级的增加而逐渐增加,并且一级和三级坝顶监测点的位移之间相差近0.5 cm。研究结果为尾矿坝渗透过程中尾矿坝的稳定性分析提供了理论依据。而且,它们为研究悬浮颗粒在多孔介质中的迁移和沉积特性提供了参考材料。

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