Computational fluid dynamics simulation on the longwall gob breathing

被引:0
|
作者
Samuel A.Lolon [1 ]
Jürgen F.Brune [1 ]
Gregory E.Bogin Jr. [2 ]
John W.Grubb [1 ]
Saqib A.Saki [1 ]
Aditya Juganda [1 ]
机构
[1] Department of Mining Engineering, Colorado School of Mines
[2] Department of Mechanical Engineering, Colorado School of Mines
关键词
CFDs; Gob breathing barometric pressure; Explosive gas zone; Longwall mine; Methane explosion;
D O I
暂无
中图分类号
TD712 [矿井瓦斯];
学科分类号
081903 ;
摘要
In longwall mines, atmospheric pressure fluctuations can disturb the pressure balance between the gob and the ventilated working area, resulting in a phenomenon known as ‘‘gob breathing". Gob breathing triggers gas flows across the gob and the working areas and may result in a condition where an oxygen deficient mixture or a methane accumulation in the gob flows into the face area. Computational Fluid Dynamics(CFDs) modeling was carried out to analyze this phenomenon and its impact on the development of an explosive mixture in a bleeder-ventilated panel scheme. Simulation results indicate that the outgassing and ingassing across the gob and the formation of Explosive Gas Zones(EGZs) are directly affected by atmospheric pressure changes. In the location where methane zones interface with mine air, EGZ fringes may form along the face and in the bleeder entries. These findings help assess the methane ignition and explosion risks associated with fluctuating atmospheric pressures.
引用
收藏
页码:185 / 189
页数:5
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