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| ANALYSIS OF EFFECT OF WATER INJECTION ON METHANE DESORPTION IN COAL COMBINING PORE STRUCTURE |
| (Institute of Mining Technology,Taiyuan University of Technology,Taiyuan,Shanxi 030024,China) |
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Abstract In order to study the effect mechanism of high pressure water injection on the methane desorption characteristics of coal,a series of experiments have been designed and conducted. Combining the connected porosity and pore size distribution law determined by the press mercury test and the residual mass of water in coal samples after water injection experiments finished,the difference of methane desorption law has been confirmed. The results show that:(1) Under the same methane absorption pressure of different coals,the larger porosity is,the better methane desorption capacity is. (2) The methane desorption capacity is mostly affected by the methane equilibrium absorption pressure of the same coal. The larger absorption pressure is,the better desorption capacity is. (3) According to the pore size distribution law and increment of water in coal mass samples,the critical pore size of coal sample is calculated under different water injection pressures. The critical pore size affects directly the methane desorption capacity;and the smaller pore size is,the lower desorption rate is. (4) The relationship of methane desorption rate and the critical pore size of water flowing into coal by data fitting accords with the Langmuir law function.
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Received: 03 December 2010
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| [1] HOSSEIN J,FARUK C. Determination of multi-component gas and water equilibrium and non-equilibrium sorption isotherms in carbonaceous solids from early-time measurements[J]. Fuel,2007,86(10/11):1 601–1 613.
[2] LAWRENCE O A. Groundwater flow associated with coalbed gas production,Ferron sandstone,east-central Utah[J]. International Journal of Coal Geology,2003,56(1/2):69–95.
[3] KROOSS B M,BERGEN F V,GENSTERBLUM Y,et al. High-pressure methane and carbon dioxide adsorption on dry and moisture-equilibrated Pennsylvanian coals[J]. International Journal of Coal Geology,2002,51(2):69–92.
[4] 郭红玉,苏现波. 煤层注水抑制瓦斯涌出机制研究[J]. 煤炭学报,2010,35(6):928–931.(GUO Hongyu,SU Xianbo. Research on the mechanism of gas emission inhibition in water-flooding coal seam[J]. Journal of China Coal Society,2010,35(6):928–931.(in Chinese))
[5] 肖知国,王兆丰. 煤层注水防治煤与瓦斯突出机制的研究现状与进展[J]. 中国安全科学学报,2009,19(10):150–159.(XIAO Zhiguo,WANG Zhaofeng. Status and progress of studies on mechanism of preventing coal and gas outburst by coal-seam infusion[J]. China Safety Science Journal,2009,19(10):150–159.(in Chinese))
[6] YANG T H,LIU J,ZHU W C,et al. A coupled flow-stress-damage model for groundwater outbursts from an underlying aquifer into mining excavations[J]. International Journal of Rock Mechanics and Mining Sciences,2007,44(1):87–97.
[7] 钟玲文,张 慧,员争荣,等. 煤的比表面积、孔体积及其对煤吸附能力的影响[J]. 煤田地质与勘探,2002,30(3):26–28.(ZHONG Lingwen,ZHANG Hui,YUAN Zhengyong,et al. Influence of specific pore area and pore volume of coal on adsorption capacity[J]. Coal Geology and Exploration,2002,30(3):26–28.(in Chinese))
[8] LANGMUIR I. The constitution and fundamental properties of solids and liquids[J]. Journal of the American Chemical Society,1916,38(11):2 221–2 295.
[9] 张 慧. 煤孔隙的成因类型及其研究[J]. 煤炭学报,2001,26(1):40–44.(ZHANG Hui. Genetically type of pores in coal reservoir and its research significance[J]. Journal of China Coal Society,2001,26(1):40–44.(in Chinese))
[10] 刘高峰,张子戎,张小东,等. 气肥煤与焦煤的孔隙分布规律及其吸附–解吸特征[J]. 岩石力学与工程学报,2009,28(8):1 587–1 592. (LIU Gaofeng,ZHANG Zirong,ZHANG Xiaodong,et al. Pore distribution regularity and absorption-desorption characteristics of gas coal and coking coal[J]. Chinese Journal of Rock Mechanics and Engineering,2009,28(8):1 587–1 592.(in Chinese))
[11] 赵 东,冯增朝,赵阳升. 高压注水对煤体瓦斯解吸特性影响的试验研究[J]. 岩石力学与工程学报,2011,30(3):547–555.(ZHAO Dong,FENG Zengchao,ZHAO Yangsheng. Experimental study of effects on desorption of coal-bed methane(CBM) by high pressure water injection[J]. Chinese Journal of Rock Mechanics and Engineering,2011,30(3):547–555.(in Chinese))
[12] 严继民,张启元. 吸附与凝聚–固体的表面与孔[M]. 北京:科学出版社,1979:103–112.(YAN Jimin,ZHANG Qiyuan. Adsorption and cohesion- solid surface and pore[M]. Beijing:Science Press,1979:103–112.(in Chinese)) |
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