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A Numeric Simulation of Gas Migration in a Fully Mechanized Coal Caving Stope Based on Lattice Boltzmann Method

机译:基于格子Boltzmann方法的全机械化煤落穴气体迁移的数值模拟

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A numeric simulation of gas migration in a fully mechanized coal caving stope based on Lattice Boltzmann Method is put forward. A mining stope includes an inlet air tunnel, a return air tunnel, a working face and a goaf. There are two different states of air movement in a stope: turbulent flow in the inlet air tunnel, the return air tunnel, the working face (the three parts are simplified as working face) and seepage flow in the goaf, which fills with heterogeneous porous media, so gas movement in a mining stope is very complicated. To explore gas migration laws, two velocity-concentration double distribution models are constructed to simulate the flow field in the working face and the goaf respectively. They are computed in parallel. The flow field data in the working face and the goaf are exchanged through the block coupling algorithms, and the simulation of gas migration in the whole stope are realized. The simulation can get mass data about gas migration velocity, concentration and pressure and direct information about gas migration in a mining stope, which can provide basis for control gas migration.
机译:提出了一种基于晶格Boltzmann方法的全机械化煤塌方气体迁移的数值模拟。采矿部门包括入口空气隧道,返回空气隧道,工作面和粘度。存在两个不同的空气运动状态:入口空气隧道中的湍流,返回空气隧道,工作面(三个部分被简化为工作面),渗流在GOAF中渗出,粘附有异质多孔介质,所以采矿术中的气体运动非常复杂。为了探索气体迁移法,构造了两个速度浓度的双分配模型,分别模拟了工作面和GOF中的流场。它们并行计算。通过块耦合算法交换工作面和GOAF中的流场数据,并且实现了整个迹象中的气体迁移模拟。仿真可以获得有关矿井中的气体迁移速度,浓度和压力的征集数据,以及关于采矿的气体迁移的直接信息,可以为控制气体迁移提供基础。

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