Research on the wetting interface characteristics between water molecules and bituminous coal based on pore evolution and molecular dynamic theory
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报告开始:2024年05月30日 20:40(Asia/Shanghai)

报告时间:10min

所在会场:[S2] Safety Engineering and Occupational Health [S2-5B] Evening of May 30th-5B

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摘要
The strong hydrophobicity and low pore permeability of coal seams limit the effectiveness of practical applications in water injection. To reveal the interface characteristics and pore structure changes during the coal wetting process, the wetting process of bituminous coal (BC) was investigated using experimental and molecular dynamics simulation (MD) methods. The MD simulations of the large-scale surface wetting and internal infiltration systems constructed were in good agreement with the results of the contact angle and wetting heat tests. It shows that the formation of the wetting interface is primarily manifested in the surface wetting and initial internal infiltration stages. During these periods, the number of hydrogen bond sites between H2O and BC molecules is positively correlated with the diffusion coefficient of H2O. At the same time, the diffusion behavior of H2O also contributes to the development of internal pores within BC. Macroscopically, there is a more pronounced development of mesoporous and macroporous, resulting in a 2% increase in total pore volume and a 26.71% enlargement of the average pore diameter. Microscopically, H2O exhibits significant pore-expanding capabilities with the increasing pore size. Therefore, by increasing the number of hydrogen bond sites in the wetting interface, the wetting permeability of coal seam water injection can be improved, which provides valuable theoretical guidance for optimizing the coal seam water injection technology.
 
关键词
Coal seam water injection,Wetting interface,Pore evolution,Molecular dynamics simulation,Bituminous coal
报告人
Banghao Zhou
China University of Mining and Technology

稿件作者
Banghao Zhou China University of Mining and Technology
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重要日期
  • 会议日期

    05月29日

    2024

    06月01日

    2024

  • 05月08日 2024

    初稿截稿日期

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