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Simulating Coal Permeability Change as a Function of Effective Stress Using a Microscale Digital Rock Model

机译:模拟煤渗透率随着微尺度数字岩模型的有效应力的函数而变化

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摘要

Investigating the coal microstructure under the influence of effective stress is vital for evaluating hydrocarbon gas production and CO, geo-storage potential of deep coal seams. While several theories and approaches are reported in the past decade, the development of a representative dynamic model (e.g., using digital rock technology) is an attractive (although challenging) approach. The digital rock technology offers an effective way for investigating effective stress-cleat-permeability. In this research, we constructed a novel digital coal model, which included a microcleat system with a stress-strain function added to the coal matrix phase, and then simulated it under different effective stress conditions. Subsequently, the permeability of coal under different effective stress was calculated using the lattice Boltzmann method. Our results indicate an exponential correlation between coal permeability and effective stress. Moreover, the number of large microcleats on the digital coal samples decreased, while the small microcleats increased with a corresponding increase in effective stress. The simulation results were consistent with the experimental measurements. The results suggested that such novel digital core analysis methods offer an effective way of investigating the physical characteristics of the coal microstructure and simulating the permeability as a function of effective stress.
机译:在有效应力的影响下调查煤显微组织对于评估烃类气体生产和CO,深煤层的地理蓄能电位至关重要。虽然过去十年报告了几种理论和方法,但是使用数字岩石技术的代表性动态模型的发展是一种有吸引力的(虽然挑战性)的方法。数字岩体技术为研究有效的应激渗透性提供有效的方法。在这项研究中,我们构建了一种新型数字煤模型,其包括具有添加到煤基质相位的压力 - 应变功能的微裂系统,然后在不同的有效应力条件下模拟它。随后,使用晶格Boltzmann方法计算不同有效应力下的煤的渗透性。我们的结果表明煤渗透性与有效应力之间的指数相关性。此外,数字煤样品上的大型微裂解的数量降低,而小微裂片随着有效应力的相应增加而增加。仿真结果与实验测量一致。结果表明,这种新型数字核心分析方法提供了研究煤微观结构的物理特性的有效方法,并模拟渗透性作为有效应力的函数。

著录项

  • 来源
    《Energy & fuels》 |2021年第10期|8756-8762|共7页
  • 作者单位

    Changan Univ Coll Geol Engn & Geomat Xian 710054 Shaanxi Peoples R China;

    Imperial Coll London Dept Earth Sci & Engn London SW7 2BP England;

    Curtin Univ Western Australian Sch Mines Minerals Energy & Ch Kensington NSW 6151 Australia;

    Khalifa Univ Dept Petr Engn Abu Dhabi 127788 U Arab Emirates;

    Yunnan Univ Sch Earth Sci Kunming 650500 Yunnan Peoples R China|Edith Cowan Univ Sch Engn Joondalup WA 6027 Australia;

    Edith Cowan Univ Sch Engn Joondalup WA 6027 Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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