外文翻译-基于LBM的井下巷道瓦斯流动及阻滞仿真模型.doc
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- 外文 翻译 基于 LBM 井下 巷道 瓦斯 流动 阻滞 仿真 模型
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1、英文原文Simulation Model of Gas Migration and Hindering in Underground Tunnel Based on LBMAbstractA simulation model of gas migration and hindering based on separated multi-component Lattice Boltzmann Method (LBM) is put forward in order to research gas migration and accumulation on underground tunnel a
2、nd to prevent major accident in mines. The tunnel is separated into some relative regular blocks through the separated & coupled algorithm and the multi-component LBM is adopted. The gas emission sources are disposed randomly. When gas passing tunnel, the gas emission sources are propagated together
3、 with original gas flow. At the same time, the obstacles are set up randomly in tunnels. Using the gas hindering model the changing condition of direction and gas concentration is researched when the gas encountering obstacles, then a powerful tool that can control gas migration and accumulation is
4、provided.Keywords: computer simulation gas migration and hindering multi-component Lattice Boltzmann Method; separated-coupled algorithm; coal mine I IntroductionUnderground tunnels are complex and the space of activity is narrow as the increasing of the underground mining activity. There are many g
5、as emission sources in tunnels. When gas gushes into underground tunnel, staff evacuation is difficult and major accidents occur. There are some obstacles in tunnel such as: mining cars, belt conveyors and air doors. If changing condition of direction and gas concentration are predicted when gas enc
6、ountering obstacles, then prevention strategy can be made scientifically and losses of gas disasters decrease. A simulation based on Lattice Boltzmann Method (LBM) is provided to research the law of gas migration and hindering in coal underground tunnel.Some researches has researched gas flow in und
7、erground mine. Reference 1 established a 3D math model for gas concentration distribution, and then analyzed law of the gas concentration and migration in underground tunnel. Reference 2 put forwarded solving this problem by stratified flow theory. Reference 3 analyzed the phenomena and characterist
8、ics of gas adverse current in underground tunnel flow, and provided dimensionless differential equations of gas flow and obtained similar parameters by the similarity principle. Up to now, many researches are based on experiment, while experiment is expensive and time consuming and has not long pred
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