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CFD-DEM modeling of seepage erosion around shield tunnels

机译:盾构隧道周围渗流侵蚀的CFD-DEM建模

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When tunnels are built in saturated silty sand, the tunnel leakage can carry fine particles into tunnels and generate seepage erosion process. During this process sand particles are subjected to high confining and hydraulic pressures and then are eroded through the seams of segmental joints. This paper investigates the mechanism of seepage erosion process using Computational Fluid Dynamics and Discrete Element Method (CFD-DEM) coupling simulations. The seepage erosion processes are simulated for loose, medium dense and dense silty sand, respectively. The evolution of the fine particles loss and the volumetric strain are investigated. Results show that the fine particles are eroded in two patterns. The first pattern is induced by axial pressure extruding fine particles through seams without hydraulic pressure. The second pattern is induced by fluid drag force dragging fine particles under hydraulic pressure. Correspondingly, the erosion process is divided into two stages as initial extruding stage and the following eroding stage. Result shows that dense sand is more prone to particle erosion in the first pattern while loose sand are gradually more prone to particle erosion in the second pattern. The quantitative relationship between the fine particles loss, the volumetric strain and the four influencing factors (i.e. time, hydraulic pressure, consolidated stress ratio and void ratio) are investigated using regression analysis based on 81 numerical simulations, respectively. The flow paths of the eroded fine particles are also investigated during the erosion process, which demonstrates that flow paths change alternatively between the blocked state and the opening state and then more flow paths in the model will open as the erosion process carries on.
机译:当隧道用饱和粉质砂建造时,隧道泄漏会带动细颗粒进入隧道并产生渗漏侵蚀过程。在此过程中,沙粒要承受较高的围压和水压,然后通过节理缝的接缝侵蚀。本文使用计算流体力学和离散元方法(CFD-DEM)耦合模拟研究渗流侵蚀过程的机理。分别模拟了疏松,中等密实和稠密粉砂的渗流侵蚀过程。研究了细颗粒损失的演化和体积应变。结果表明,细颗粒被腐蚀成两种形式。第一图案是通过轴向压力将细颗粒通过接缝挤出而没有液压而产生的。第二种模式是由流体阻力在液压作用下拖动细颗粒引起的。相应地,腐蚀过程分为两个阶段,即初始挤出阶段和随后的腐蚀阶段。结果表明,在第一种模式中,密实的沙粒更容易受到颗粒侵蚀,而在第二种模式中,疏松的沙粒逐渐更容易受到颗粒侵蚀。利用基于81个数值模拟的回归分析,分别研究了细颗粒损失,体积应变和四个影响因素(即时间,液压,固结应力比和空隙比)之间的定量关系。在侵蚀过程中还研究了侵蚀的细颗粒的流路,这表明流路在阻塞状态和打开状态之间交替变化,然后随着侵蚀过程的进行,模型中的更多流路将打开。

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