Effect of adsorption-induced matrix deformation on coalbed methane transport analyzed using fractal theory

被引:24
作者
Zhou, Yinbo [1 ,2 ]
Li, Zenghua [1 ,2 ]
Yang, Yongliang [1 ,2 ]
Wang, Mian [1 ,2 ]
Gu, Fanjun [1 ,2 ]
Ji, Huaijun [1 ,2 ]
机构
[1] China Univ Min & Technol, Sch Safety Engn, Xuzhou 221116, Peoples R China
[2] China Univ Min & Technol, Key Lab Gas & Fire Control Coal Mines, Xuzhou 221116, Peoples R China
基金
中国国家自然科学基金;
关键词
Absolute permeability; Coalbed methane; Fractal theory; Porosity; Volume strain; MERCURY INTRUSION POROSIMETRY; PORE STRUCTURE; ROCK FRACTURES; CEMENT PASTE; POROUS-MEDIA; GAS-PRESSURE; MODEL; PERMEABILITY; FLOW; POROSITY;
D O I
10.1016/j.jngse.2015.07.013
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
It is well-known that adsorption-induced deformation of coal matrices influences the prediction of the estimated coalbed methane (CBM) yield. Additionally, changes in porosity contribute to changes in matrix permeability. In this paper, changes in porosity and absolute permeability are studied on the basis of fractal theory, and the reliability of equations are verified by experimental data from coal samples from the San Juan Basin. Furthermore, two permeability-affecting stages (i.e., rapid and slow deformation stages) are identified, and the result also illustrates that its applicability varies with different gas pressures that arise from the decay of the Klinkenberg effect when the gas pressure is increasing. However, its applicability is limited when the gas pressure remains high because of the same decay effect; therefore, using a reasonable value for the Klinkenberg constant plays a crucial role in formulating a sound permeability-change model for high pressure environments. Fractal theory can clearly explain permeability change patterns due to the adsorption-induced matrix deformation, which can be applied to understand the mechanism underlying methane seepage during CBM production. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:840 / 846
页数:7
相关论文
共 43 条
  • [1] Transports in fractal porous media
    Adler, PM
    [J]. JOURNAL OF HYDROLOGY, 1996, 187 (1-2) : 195 - 213
  • [2] Closed porosity in fossil coals
    Alexeev, AD
    Vasilenko, TA
    Ulyanova, EV
    [J]. FUEL, 1999, 78 (06) : 635 - 638
  • [3] Cervik J., 1967, SPE E REG M SOC PETR
  • [4] Gas and water relative permeability in different coals: Model match and new insights
    Chen, Dong
    Shi, Ji-Quan
    Durucan, Sevket
    Korre, Anna
    [J]. INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2014, 122 : 37 - 49
  • [5] Parameter estimation of two-fluid capillary pressure-saturation and permeability functions
    Chen, J
    Hopmans, JW
    Grismer, ME
    [J]. ADVANCES IN WATER RESOURCES, 1999, 22 (05) : 479 - 493
  • [6] The effect of pore structure and gas pressure upon the transport properties of coal: a laboratory and modeling study. 2. Adsorption rate modeling
    Clarkson, CR
    Bustin, RM
    [J]. FUEL, 1999, 78 (11) : 1345 - 1362
  • [7] The effect of pore structure and gas pressure upon the transport properties of coal: a laboratory and modeling study. 1. Isotherms and pore volume distributions
    Clarkson, CR
    Bustin, RM
    [J]. FUEL, 1999, 78 (11) : 1333 - 1344
  • [8] Craft B.C., 1959, Applied petroleum reservoir engineering
  • [9] Volumetric strain associated with methane desorption and its impact on coalbed gas production from deep coal seams
    Cui, XJ
    Bustin, RM
    [J]. AAPG BULLETIN, 2005, 89 (09) : 1181 - 1202
  • [10] Gash BW., 1992, PAPER, V9321, P17