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Influence of alkaline solution injection for wettability and permeability of coal with CO2 injection

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  • Zhou, Yinbo
  • Zhang, Ruilin
  • Huang, Jilei
  • Li, Zenghua
  • Chen, Zhao
  • Zhao, Zhou
  • Hong, Yidu

Abstract

The technology for combining CO2 injection with alkaline solution injection into coal bodies is proposed and investigated to address the disadvantages of traditional CO2 injection technologies, such as the production of dangerous amounts of excess residual gas and prevention of water injection into the deeper coal seams. After the CO2 injection, the wettability of coal sample is greatly improved, especially the alkaline solution. CO2 injection can effectively displace methane in coal, while alkaline solution can dissolve CO2 molecules adsorbed in coal and improve the wetting effect of coal. The increase of moisture will lead to the decrease of coal permeability, which can reduce gas emission. The permeability loss ratios for coal samples injected with CO2 were more than 90% much higher than those for coal samples not injected with CO2. After alkaline injection, the moisture content of coal into which CO2 had been injected increased 6.13 times compared to raw coal. Therefore, this technology may consume excess CO2 gas from the coal body and improve the effect of water injection into deeper coal seams.

Suggested Citation

  • Zhou, Yinbo & Zhang, Ruilin & Huang, Jilei & Li, Zenghua & Chen, Zhao & Zhao, Zhou & Hong, Yidu, 2020. "Influence of alkaline solution injection for wettability and permeability of coal with CO2 injection," Energy, Elsevier, vol. 202(C).
  • Handle: RePEc:eee:energy:v:202:y:2020:i:c:s0360544220309063
    DOI: 10.1016/j.energy.2020.117799
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    2. Yang, Beibei & He, Mingming & Xiao, Zhanshan & Zhao, Jianbin & Zhang, Yonghao, 2023. "Effect of horizontal stress on fractal characteristics of rockburst fragments in coal mining," Energy, Elsevier, vol. 281(C).
    3. Huang, Haiping & Wang, Eric, 2020. "A laboratory investigation of the impact of solvent treatment on the permeability of bituminous coal from Western Canada with a focus on microbial in-situ processing of coals," Energy, Elsevier, vol. 210(C).
    4. Liu, Shumin & Sun, Haitao & Zhang, Dongming & Yang, Kun & Li, Xuelong & Wang, Dengke & Li, Yaning, 2023. "Experimental study of effect of liquid nitrogen cold soaking on coal pore structure and fractal characteristics," Energy, Elsevier, vol. 275(C).
    5. Wang, Xiaolei & Geng, Jiabo & Zhang, Dongming & Xiao, Weijing & Chen, Yu & Zhang, Hao, 2022. "Influence of sub-supercritical CO2 on pore structure and fractal characteristics of anthracite: An experimental study," Energy, Elsevier, vol. 261(PA).
    6. Zhou, Yan & Guan, Wei & Cong, Peichao & Sun, Qiji, 2022. "Effects of heterogeneous pore closure on the permeability of coal involving adsorption-induced swelling: A micro pore-scale simulation," Energy, Elsevier, vol. 258(C).
    7. Zhou, Yinbo & Li, Hansheng & Huang, Jilei & Zhang, Ruilin & Wang, Shijie & Hong, Yidu & Yang, Yongliang, 2021. "Influence of coal deformation on the Knudsen number of gas flow in coal seams," Energy, Elsevier, vol. 233(C).

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