Numerical simulation on the methane adsorption characteristics of coal with non-uniform potential well

被引:0
|
作者
Zhou D. [1 ]
Feng Z.-C. [1 ]
Zhao D. [2 ]
Cai T.-T. [1 ]
Wang C. [1 ]
机构
[1] Key Laboratory of Insitu Property Improving under Mining of Ministry of Education, Taiyuan University of Technology, Taiyuan
[2] College of Mining Engineering, Taiyuan University of Technology, Taiyuan
来源
关键词
Adsorption heat; Adsorption potential well; Adsorption pressure; Non-uniform; Temperature;
D O I
10.13225/j.cnki.jccs.2015.1812
中图分类号
学科分类号
摘要
The kinetics numerical model of methane adsorption in coal was established based on Monte Carlo method, the methane adsorption processes of two kinds of coal models with non-uniform adsorption potential well were calculated, and the methane adsorption characteristics and the variation of adsorption heat under different temperatures and adsorption pressures were analyzed. Results show that the isothermal adsorption processes of coal sample models with non-uniform potential well are different from ideal Langmuir curves, and the isobaric adsorption processes can be accurately described by negative exponential decay law. The non-uniform distribution characteristics of potential well of coal sample models have effect on the variation of adsorption heat and the sensitivity of adsorption capacity to temperature and adsorption pressure. By curve fitting on adsorption pressure rate b under different adsorption pressures, the isotherm adsorption equation of non-uniform well is derived. From the physical experiment, it is verified that the isotherm adsorption equation of non-uniform well can provide more accurate description on the processes of methane adsorption in coal than the ideal Langmuir equation. © 2016, Editorial Office of Journal of China Coal Society. All right reserved.
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页码:1968 / 1975
页数:7
相关论文
共 16 条
  • [1] Liu Z., Feng Z., Theoretical study on adsorption heat of methane in coal, Journal of China Coal Society, 37, 4, pp. 647-653, (2012)
  • [2] Nie B., Duan S., The adsorption essence of gas on coal surface, Journal of Taiyuan University of Technology, 29, 4, pp. 417-420, (1998)
  • [3] Zhong L., Adsorption capacity of coals and its affecting factors, Earth Science, 29, 3, pp. 327-334, (2004)
  • [4] Gurdal G., Yalcin M.N., Pore volume and surface areaof the Carboniferous coals from the Zonguldak basin(NWTurley) and their variations with rank and maceral composition, International Journal of Coal Geology, 48, pp. 133-144, (2001)
  • [5] Zhao D., Zhao Y.S., Feng Z.C., Et al., Experiments of methane adsorption on raw coal at 30-270℃, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 34, 4, pp. 324-331, (2011)
  • [6] Ma D., Zhang S., Lin Y., Isothermal adsorption and desorption experiment of coal and experimental results accuracy fitting, Journal of China Coal Society, 36, 3, pp. 477-480, (2011)
  • [7] Cui Y., Zhang Q., Yang X., The absorption properties of different coal and changes of the absorption heating, Natural Gas Industry, 23, 4, pp. 130-131, (2003)
  • [8] Jiang W., Cui Y., Zhang Q., Et al., The quantum chemical study on different rank coals surface interacting with methane, Journal of China Coal Society, 32, 3, pp. 292-295, (2007)
  • [9] Lu S., Wang L., Qin L., Analysis on adsorption capacityand adsorption thermodynamic characteristics of different metamorphic degree coals, Coal Science and Technology, 42, 6, pp. 130-135, (2014)
  • [10] Jiang W., Microscopic mechanism study on the influence of coal rank on adsorption capacity, China Coalbed Methane, 6, 2, pp. 19-22, (2009)