Mechanisms of tripartite permeability evolution for supercritical CO2 in propped shale fractures

被引:10
|
作者
Hou, Lei [1 ]
Elsworth, Derek [2 ,3 ]
机构
[1] Univ Warwick, Sch Engn, Coventry CV4 7AL, W Midlands, England
[2] Penn State Univ, EMS Energy Inst, Energy & Mineral Engn & Geosci, University Pk, PA 16802 USA
[3] Penn State Univ, G3 Ctr, University Pk, PA 16802 USA
关键词
Propped shale fracture; Adsorption; Permeability; Clay; Supercritical CO2;
D O I
10.1016/j.fuel.2021.120188
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
Characterization of CO2 flow in propped fractures is important in defining the response to CO2 injection for reservoir stimulation and CO2 sequestration. We measure the evolution of permeability in propped fractures of shale to both adsorbing CO2 and non-adsorbing He under sub- and super-critical conditions. A tripartite permeability-pressure evolution curve is obtained when supercritical, consisting of a dual-U-shaped evolution first below and then exceeding critical pressure with a V-shaped fluctuation spanning the phase transition. The increasing adsorbed-phase-density and resultant swelling stress may control the permeability variation around the critical point. The inorganic adsorbent (mainly clay) may contribute to the secondary U-shaped evolution according to its sorption isotherm. The secondary adsorption may be generated by increasing sorption sites (competitive adsorption between CO2 and H2O) or through multi-layered sorption and stronger diffusion of supercritical CO2. Further constraint is applied through observations of permeability recovery between initial and repeat saturations to non-adsorptive He. An abnormal increment of permeability recovery ratio is obtained for secondary adsorption, which may be caused by the dehydration and shrinkage of the matrix and the dissolution of minerals. Mechanisms of permeability evolution for CO2 in shale are classified between organic and inorganic fractions. The contributions of adsorption to the permeability evolution are quantified by comparisons for permeation by CH4 and He. A flat X-shaped trend is apparent, in which the inorganic contribution to permeability increases with increasing pressure while the organic contribution to permeability decreases with increasing pressure. The ratio of inorganic contribution reaches 60-70% under supercritical conditions.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Adsorption-induced pore blocking and its mechanisms in nanoporous shale due to interactions with supercritical CO2
    Huang, Xianfu
    Zhao, Ya-Pu
    Wang, Xiaohe
    Pan, Lisheng
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2019, 178 : 74 - 81
  • [42] Experimental Investigation on the Fractures Induced by Hydraulic Fracturing Using Freshwater and Supercritical CO2 in Shale Under Uniaxial Stress
    He, Jianming
    Zhang, Yixiang
    Li, Xiao
    Wan, Xiaole
    ROCK MECHANICS AND ROCK ENGINEERING, 2019, 52 (10) : 3585 - 3596
  • [43] Experimental Investigation on the Fractures Induced by Hydraulic Fracturing Using Freshwater and Supercritical CO2 in Shale Under Uniaxial Stress
    Jianming He
    Yixiang Zhang
    Xiao Li
    Xiaole Wan
    Rock Mechanics and Rock Engineering, 2019, 52 : 3585 - 3596
  • [44] Investigation of Microseismicity and Permeability Evolution in Shale Fractures during Stimulation
    Ye, Zhi
    Ghassemi, Ahmad
    SPE PRODUCTION & OPERATIONS, 2020, 35 (04): : 797 - 808
  • [45] Influence of Supercritical CO2 Exposure on CH4 and CO2 Adsorption Behaviors of Shale: Implications for CO2 Sequestration
    Zhou, Junping
    Xie, Shuang
    Jiang, Yongdong
    Xian, Xuefu
    Liu, Qili
    Lu, Zhaohui
    Lyu, Qiao
    ENERGY & FUELS, 2018, 32 (05) : 6073 - 6089
  • [46] Evolution and Size Distribution of Solid CO2 Particles in Supercritical CO2 Releases
    Teng, Lin
    Li, Yuxing
    Zhang, Datong
    Ye, Xiao
    Gu, Shuaiwei
    Wang, Cailin
    Wang, Jinghan
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (22) : 7655 - 7663
  • [47] Experimental Investigation of the Geochemical Interactions between Supercritical CO2 and Shale: Implications for CO2 Storage in Gas-Bearing Shale Formations
    Pan, Yi
    Hui, Dong
    Luo, Pingya
    Zhang, Yan
    Sun, Lei
    Wang, Ke
    ENERGY & FUELS, 2018, 32 (02) : 1963 - 1978
  • [48] Water and CO2 permeability of a shale sample core from Svalbard
    van Noort, Reinier
    Yarushina, Viktoriya
    EUROPEAN GEOSCIENCES UNION GENERAL ASSEMBLY 2016, 2016, 97 : 67 - 74
  • [49] Confinement effect on CO2 and CH4 permeability in shale
    Vishal, Vikram
    Bakshi, Tuli
    ENERGY GEOSCIENCE, 2024, 5 (01):
  • [50] Effect of supercritical CO2 extraction on CO2/CH4 competitive adsorption in Yanchang shale
    Qin, Chao
    Jiang, Yongdong
    Zhou, Junping
    Song, Xiao
    Liu, Zhengjie
    Li, Dong
    Zhou, Feng
    Xie, Yingliang
    Xie, Chenglong
    Jiang, Yongdong (jiangyd1015@163.com), 1600, Elsevier B.V. (412):