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Experimental study and numerical simulation of spread law for fire on tunnel
  • ISSN号:1008-4495
  • 期刊名称:《矿业安全与环保》
  • 时间:0
  • 分类:O347.4[理学—固体力学;理学—力学] TD752[矿业工程—矿井通风与安全]
  • 作者机构:[1]School of Energy and Safety Engineering, Hunan University of Science and Technology, Xiangtan 411201, China, [2]Hunan Provincial Key Laboratory of Safe Mining Techniques of Coal Mines (Hunan University of Science and Technology), Xiangtan 411201, China
  • 相关基金:Projects(51274099,51474106)supported by the National Natural Science Foundation of China; Project(10C0660)supported by the Scientific Research Fund of Hunan Provincial Education Department,China
中文摘要:

In order to research spread law and distribution law of temperature nearby fire sources on roadway in mine, according to combustion theory and other basic, the theory model of temperature attenuation was determined under unsteady heat-exchange between wind and roadway wall. The full-size roadway fire simulation experiments were carried out in Chongqing Research Institute of China Coal Technology & Engineering Group Corporation. The development processes of mine fire and flow pattern of high temperature gas were analyzed. Experimental roadway is seen as physical model, and through using CFD software, the processes of mine fire have been simulated on computer. The results show that, after fire occurs, if the wind speed is less than the minimum speed which can prevent smoke from rolling back, then the smaller wind speed can cause smoke to roll back easily. Hot plume will lead to secondary disasters in upwind side. Because of roadway wall, hot plume released from roadway fire zone has caused the occurrence of the ceiling jet, and the hot plume has been forced down. Whereas, owing to the higher temperature, buoyancy effect is more obvious. Therefore, smoke rises gradually along the roadway in the flow process, and the hierarchical interface appears wavy.Oxygen-enriched combustion and fuel-enriched combustion are the two kinds of combustion states of fire. The oxygen content of downwind side of fire is maintained at around 15% for oxygen-enriched combustion, and the oxygen content of downwind side of fire is maintained at around 2% for fuel-enriched combustion. Furthermore, fuel-enriched combustion can lead to secondary disasters easily.

英文摘要:

In order to research spread law and distribution law of temperature nearby fire sources on roadway in mine, according to combustion theory and other basic, the theory model of temperature attenuation was determined under unsteady heat-exchange between wind and roadway wall. The full-size roadway fire simulation experiments were carried out in Chongqing Research Institute of China Coal Technology Engineering Group Corporation. The development processes of mine fire and flow pattern of high temperature gas were analyzed. Experimental roadway is seen as physical model, and through using CFD software, the processes of mine fire have been simulated on computer. The results show that, after fire occurs, if the wind speed is less than the minimum speed which can prevent smoke from rolling back, then the smaller wind speed can cause smoke to roll back easily. Hot plume will lead to secondary disasters in upwind side. Because of roadway wall, hot plume released from roadway fire zone has caused the occurrence of the ceiling jet, and the hot plume has been forced down. Whereas, owing to the higher temperature, buoyancy effect is more obvious. Therefore, smoke rises gradually along the roadway in the flow process, and the hierarchical interface appears wavy.Oxygen-enriched combustion and fuel-enriched combustion are the two kinds of combustion states of fire. The oxygen content of downwind side of fire is maintained at around 15% for oxygen-enriched combustion, and the oxygen content of downwind side of fire is maintained at around 2% for fuel-enriched combustion. Furthermore, fuel-enriched combustion can lead to secondary disasters easily.

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期刊信息
  • 《矿业安全与环保》
  • 中国科技核心期刊
  • 主管单位:国家煤矿安全监察局
  • 主办单位:中煤科工集团重庆研究院 国家煤矿安全技术工程研究中心
  • 主编:黄声树
  • 地址:重庆市九龙坡区二郎科城路6号·中煤科工集团重庆研究院内
  • 邮编:400039
  • 邮箱:kyaqyhbgg@163.com
  • 电话:023-65239221 65235167
  • 国际标准刊号:ISSN:1008-4495
  • 国内统一刊号:ISSN:50-1062/TD
  • 邮发代号:78-35
  • 获奖情况:
  • 1990年1月荣获四川省首届科技期刊评比编辑加工奖,1992年版全国中文核心期刊,1993年12月荣获四川省第二届科技期刊评比编辑加工奖,1995年7月荣获四川省首届优秀期刊奖,1996年版全国中文核心期刊,1997年12月荣获重庆市优秀期刊二等奖,2000年12月荣获首届《CAJ-CD规范》执行优秀奖,2004年版全国中文核心期刊,2008年版全国中文核心期刊,2008年重庆市一级期刊,2010年重庆市一级期刊
  • 国内外数据库收录:
  • 中国中国科技核心期刊,中国北大核心期刊(2004版),中国北大核心期刊(2008版),中国北大核心期刊(2011版),中国北大核心期刊(2014版)
  • 被引量:10574