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Researches and applications on geostatistical simulation and laboratory modeling of mine ventilation network and gas drainage zone

机译:矿井通风网及瓦斯抽放区的地统计学模拟与实验室建模研究与应用

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摘要

The mine disaster of gas at working face and goaf creates a risky working environment for miners, and causes a mass of casualties in mining industry around the world. The key points of resolving the gas problem are to properly increase fresh air volume in ventilation network, exactly determining the gas emission zone, and implementing a reasonable gas drainage plan. This article provides multiple gas control methods with the aim of improving the gas drainage knowledge and techniques. Both of the CFD model and the mini mine gas emission zone based on U + L type ventilation network are established, and the gas distribution and movement rules of working face and goaf are accurately obtained during the numerical and laboratorial simulation experiments are performed. The results reveal that gas problems at working face and goaf cannot be effectively resolved by only increasing the air volume; instead, it must be combined with optimizing the ventilation network and excavating special gas drainage tunnels. The experimental results also demonstrate that the most effective gas extraction spot constantly varies with the zone where mining activities are performed. Therefore, the arrangement of gas drainage tunnels is determined according to the obtained rules and experimental results. The field verification results show that the layout of the drilling boreholes is rational and effective; the gas drainage quantity is reliable and stable, which indicates that it is valid and feasible to arrange the layout of gas drilling tunnels based on the combination experimental results of numerical simulations and laboratory tests. (C) 2014 The Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:煤矿在工作面和采空区发生的瓦斯灾害为矿工创造了危险的工作环境,并导致全球采矿业的大量人员伤亡。解决燃气问题的关键是适当增加通风网络中的新鲜空气量,准确确定燃气排放区,并实施合理的燃气排放计划。本文提供了多种气体控制方法,旨在提高气体排放知识和技术。建立了CFD模型和基于U + L型通风网络的微型矿井瓦斯涌出区,并在数值和实验室模拟实验中准确地获得了工作面和采空区的瓦斯分布和运动规律。结果表明,仅增加风量就不能有效解决工作面和采空区的瓦斯问题。取而代之的是,它必须与优化通风网络和开挖特殊的瓦斯抽放隧道相结合。实验结果还表明,最有效的瓦斯抽采点随进行采矿活动的区域而不断变化。因此,根据所获得的规律和实验结果确定了瓦斯抽放隧道的布置。现场验证结果表明,该井眼布置合理有效。瓦斯抽放量可靠稳定,表明结合数值模拟和实验室试验的实验结果,合理安排瓦斯钻探隧道的布置是可行的。 (C)2014化学工程师学会。由Elsevier B.V.发布。保留所有权利。

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