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ZHAO Xun, LUO Yong, QI Xinhong, HAN Zhenli, XIANG Long. Analysis and Determination of Coal Seam Gas Parameters Based on Mine Outburst Risk Assessment[J]. Safety in Coal Mines, 2015, 46(11): 143-145.
Citation: ZHAO Xun, LUO Yong, QI Xinhong, HAN Zhenli, XIANG Long. Analysis and Determination of Coal Seam Gas Parameters Based on Mine Outburst Risk Assessment[J]. Safety in Coal Mines, 2015, 46(11): 143-145.

Analysis and Determination of Coal Seam Gas Parameters Based on Mine Outburst Risk Assessment

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  • Published Date: November 19, 2015
  • At present, the risk assessment of coal and gas outburst is not yet to formulate relevant industry standards. In order to make the evaluation work more scientific and more standardized and more practical, based on the previous assessment, we analyze and modify the reliability of gas content which combines with the pause time and drilling depth and coal ash and gas composition and gas occurrence law of the exploration of gas drilling according to the complete degree of field investigation and data collection. The gas pressure is obtained according to the gas content of the Langmuir relation. Other gas parameters use the measured data first. And if there is no measured data, the gas parameters refer to the same coal seam of adjacent mines or adjacent coal seam gas parameters according to the principle of proximity spacing.
  • [1]
    秦玉金.地勘期间煤层瓦斯含量测定方法存在的问题及对策分析[J].煤矿安全,2011,33(8):144-146.
    [2]
    严家程,杨胜强,杨相玉.新建矿井煤与瓦斯突出危险性评估[J].煤矿安全,2012,43(10):152-154.
    [3]
    刘志伟.地勘期间煤层瓦斯含量修正方法探讨[J].煤炭工程,2012(11):105-108.
    [4]
    贾晓亮,崔洪庆.煤层瓦斯含量测定方法及误差分析[J].煤矿开采,2009,14(2):91-93.
    [5]
    崔洪庆,张振安.基于地勘数据的煤层瓦斯带研究[J].安全与环境学报,2013,13(2):154-156.
    [6]
    国家安全生产监督管理总局.煤与瓦斯突出矿井鉴定规范[M].北京:煤炭工业出版社,2006.
    [7]
    赵训,黄永佳,李树清,等.煤与瓦斯突出规律及区域预测研究[J].煤炭技术,2014,33(5):23-25.
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