首页> 外文会议>2014 SME annual meeting amp; exhibit (SME 2014): Leadership in uncertain times >AN INNOVATIVE MESHING APPROACH TO MODELING LONGWALL GOB GAS DISTRIBUTIONS AND EVALUATION OF BACK RETURN USING COMPUTATIONAL FLUID DYNAMICS
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AN INNOVATIVE MESHING APPROACH TO MODELING LONGWALL GOB GAS DISTRIBUTIONS AND EVALUATION OF BACK RETURN USING COMPUTATIONAL FLUID DYNAMICS

机译:用计算流体动力学建模龙岩气分布和评价回采的创新方法

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Computational fluid dynamics (CFD) has been used to model gas compositions in underground longwall coal mine gobs to study oxygen ingress and the development of potentially explosive methane-air mixtures that may form in the gob. The scenarios studied involve various headgate and tailgate ventilation and inertization schemes and controls. In a project sponsored by the National Institute for Occupational Safety and Health (NIOSH), researchers at Colorado School of Mines have used an innovative meshing approach, allowing easy adaptation of the CFD model to adjust to a variety of bleeder and bleederiess mining geometries, with gob porosity and permeability scalable over a wide range. This paper presents the methodology of the meshing and scaling approach along with recommendations for using CFD modeling in longwall gob ventilation applications. The new meshing technique was utilized to evaluate the function of a back return in a progressively sealed gob. The back return was successful in maintaining sufficient oxygen concentrations in the tailgate comer of the longwall face.
机译:计算流体动力学(CFD)已用于对地下长壁煤矿采空区瓦斯组成进行建模,以研究氧的侵入以及采空区中可能形成的潜在爆炸性甲烷-空气混合物的形成。研究的场景涉及各种后门和后门通风以及惰性化方案和控制。在美国国家职业安全与健康研究所(NIOSH)资助的一个项目中,科罗拉多矿业大学的研究人员采用了一种创新的网格划分方法,可以轻松调整CFD模型,以适应各种放气和放气采矿的几何形状,采空区的孔隙率和渗透率可在较大范围内扩展。本文介绍了网格划分和缩放方法的方法,以及在长壁采空区通风应用中使用CFD建模的建议。新的啮合技术被用于评估渐进密封料滴中的回油功能。回程成功地在长壁工作面的后挡板角中保持足够的氧气浓度。

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