Supercritical Methane Adsorption on Shale over Wide Pressure and Temperature Ranges: Implications for Gas-in-Place Estimation

被引:65
作者
Feng, Guangjun [1 ,2 ,3 ]
Zhu, Yanming [1 ,2 ]
Chen, Shangbin [1 ,2 ]
Wang, Yang [1 ,2 ]
Ju, Wei [1 ,2 ]
Hu, Yichao [3 ]
You, Zhenjiang [3 ]
Wang, Geoff G. X. [3 ]
机构
[1] China Univ Min & Technol, Minist Educ, Key Lab Coalbed Methane Resources & Reservoir For, Xuzhou 221008, Jiangsu, Peoples R China
[2] China Univ Min & Technol, Sch Resources & Geosci, Xuzhou 221008, Jiangsu, Peoples R China
[3] Univ Queensland, Sch Chem Engn, St Lucia, Qld 4072, Australia
基金
中国国家自然科学基金;
关键词
UPPER YANGTZE PLATFORM; SORPTION CAPACITY; MOLECULAR SIMULATION; GEOLOGICAL CONTROLS; CARBON-MONOXIDE; ORGANIC-MATTER; LONGMAXI SHALE; PORE STRUCTURE; BASIN; COAL;
D O I
10.1021/acs.energyfuels.9b04498
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
Methane adsorption experiments over wide ranges of pressure (up to 30 MPa) and temperature (30-120 degrees C) were performed using a gravimetric method on the Longmaxi shale collected from the northeast boundary of Sichuan Basin, China. Organic geochemical analyses, shale composition determination, and porosity tests were also conducted. The experimental supercritical methane excess adsorption isotherms at different temperatures initially increase and then decrease with increasing pressure, giving a maximum excess adsorption capacity (G(ex)(m) = 1.86-2.87 cm(3)/g) at a certain pressure P-m (6.71-12.90 MPa). The excess adsorption capacity decreases with increasing temperature below 28 MPa, while this effect reversed above 28 MPa. However, the absolute adsorption capacity decreases as the temperature increases over the full pressure range. Supercritical methane adsorption on shale is of temperature dependence because it is a physical exothermic process supported by calculated thermodynamic parameters. Pm is positively correlated with the temperature, while the decline rates (0.021-0.058 cm(3) g(-1) MPa-1) in excess adsorption negatively correlate with the temperature. Meanwhile, Langmuir volume G(L) (3.07-4.04 cm(3)/g) decreases while Langmuir pressure P-L (1.44-4.31 MPa) increases with temperature elevation. In comparison to the actual adsorbed gas (absolute adsorption), an underestimation exists in the excess adsorption calculation, which increases with increasing depth. The conventional method, without subtracting the volume occupied by adsorbed gas, overestimates the actual free gas content, especially for the deep shale reservoirs. In situ adsorbed gas is simultaneously controlled by the positive effect of the reservoir pressure and the adverse effect of the reservoir temperature. Nevertheless, in situ free gas is dominated by the positive effect of the reservoir pressure. Low-temperature overpressure reservoirs are favorable for shale gas enrichment. Geological application of gas-in-place estimation shows that, with increasing depth, the adsorbed gas content increases rapidly and then declines slowly, whereas the free gas content increases continuously. There was an equivalence point at which the contents of adsorbed and free gas are equal, and the equivalence point moved to the deep areas with increasing water saturation. Moreover, the adsorbed gas and free gas distribution are characterized by the dominant depth zones, providing the reference for shale gas exploration and development.
引用
收藏
页码:3121 / 3134
页数:14
相关论文
共 73 条
  • [11] [方朝合 Fang Chaohe], 2014, [天然气地球科学, Natural Gas Geoscience], V25, P471
  • [12] Supercritical Methane Adsorption on Overmature Shale: Effect of Pore Structure and Fractal Characteristics
    Feng, Guangjun
    Zhu, Yanming
    Wang, Geoff G. X.
    Chen, Shangbin
    Wang, Yang
    Ju, Wei
    [J]. ENERGY & FUELS, 2019, 33 (09) : 8323 - 8337
  • [13] [付常青 Fu Changqing], 2016, [高校地质学报, Geological Journal of China Universities], V22, P679
  • [14] High-Pressure/High-Temperature Methane-Sorption Measurements on Carbonaceous Shales by the Manometric Method: Experimental and Data-Evaluation Considerations for Improved Accuracy
    Gasparik, M.
    Gensterblum, Y.
    Ghanizadeh, A.
    Weniger, P.
    Krooss, B. M.
    [J]. SPE JOURNAL, 2015, 20 (04): : 790 - 809
  • [15] Geological controls on the methane storage capacity in organic-rich shales
    Gasparik, Matus
    Bertier, Pieter
    Gensterblum, Yves
    Ghanizadeh, Amin
    Krooss, Bernhard M.
    Littke, Ralf
    [J]. INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2014, 123 : 34 - 51
  • [16] High-pressure CH4 and CO2 sorption isotherms as a function of coal maturity and the influence of moisture
    Gensterblum, Yves
    Merkel, Alexej
    Busch, Andreas
    Krooss, Bernhard M.
    [J]. INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2013, 118 : 45 - 57
  • [17] Gibbs J. W., 1874, T CONNECTICUT ACADEM, V3, P108, DOI 10.11588/heidok.00013220
  • [18] Depositional facies of gas shale and its impact on shale reservoir of the Permian Shanxi Formation, Northern Ordos Basin
    Guo, Wei
    Liu, Honglin
    Lan, Chaoli
    [J]. WORLD JOURNAL OF ENGINEERING, 2016, 13 (04) : 326 - 335
  • [19] Mechanisms of shale gas storage: Implications for shale gas exploration in China
    Hao, Fang
    Zou, Huayao
    Lu, Yongchao
    [J]. AAPG BULLETIN, 2013, 97 (08) : 1325 - 1346
  • [20] Thermodynamic description of excess isotherms in high-pressure adsorption of methane, argon and nitrogen
    Herbst, A
    Harting, P
    [J]. ADSORPTION-JOURNAL OF THE INTERNATIONAL ADSORPTION SOCIETY, 2002, 8 (02): : 111 - 123