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Effect of Seepage Velocity on Formation of Shaft Frozen Wall in Loose Aquifer

机译:渗流速度对松散含水层轴冷冻墙体形成的影响

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摘要

This paper addresses the difficult closure of a frozen wall in a coal mine shaft due to excessive seepage velocity in an aquifer when the aquifer is penetrated via the artificial freezing method. Based on hydrothermal coupling theory and considering the effect of decreased absolute porosity on seepage during the freezing process, a mathematical model of hydrothermal full-parameter coupling with a phase change is created. A shaft is used as a prototype, and COMSOL multiphysics finite element software is employed to perform a numerical simulation of the shaft freezing process at various stratum seepage velocities. The numerical simulation results are verified via a comparison with field measurement data. Based on the numerical simulation results, the impact of various underground water seepage velocities on the artificial frozen wall formation process with the seepage-temperature field coupling effect is analysed. Based on the analysis results, the recommended principles of the optimization design for a freezing plan are described as follows: first, the downstream area is closed to enable the water insulation effect, and second, the closure of the upstream area is expedited to reduce the total closure time of a frozen wall.
机译:本文通过人工冷冻方法渗透到含水层中的过度渗流速度,本文解决了煤矿轴中的冻结壁的难度闭合。基于水热耦合理论,考虑到冻结过程中绝对孔隙度降低对渗漏的影响,产生了具有相变的水热全参数耦合的数学模型。轴用作原型,并且采用COMSOL多体学有限元件在各种层次渗流速度下执行轴冷冻过程的数值模拟。通过与现场测量数据的比较来验证数值模拟结果。基于数值模拟结果,分析了各种地下水渗流对人工冷冻壁形成过程的影响,随着渗流 - 温度场耦合效应。基于分析结果,冻结计划的优化设计推荐原理描述如下:首先,关闭下游区域以使水绝缘效果能够实现,而第二个,加快上游区域的关闭以减少上游区域的关闭冻结墙的总闭合时间。

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