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Multiscale Apparent Permeability Model of Shale Nanopores Based on Fractal Theory

机译:基于分形理论的页岩纳米孔多尺度表观渗透率模型

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Based on fractal geometry theory, the Hagen–Poiseuille law, and the Langmuir adsorption law, this paper established a mathematical model of gas flow in nano-pores of shale, and deduced a new shale apparent permeability model. This model considers such flow mechanisms as pore size distribution, tortuosity, slippage effect, Knudsen diffusion, and surface extension of shale matrix. This model is closely related to the pore structure and size parameters of shale, and can better reflect the distribution characteristics of nano-pores in shale. The correctness of the model is verified by comparison with the classical experimental data. Finally, the influences of pressure, temperature, integral shape dimension of pore surface and tortuous fractal dimension on apparent permeability, slip flow, Knudsen diffusion and surface diffusion of shale gas transport mechanism on shale gas transport capacity are analyzed, and gas transport behaviors and rules in multi-scale shale pores are revealed. The proposed model is conducive to a more profound and clear understanding of the flow mechanism of shale gas nanopores.
机译:基于分形几何理论,哈根-泊瓦依定律和朗缪尔吸附定律,建立了页岩纳米孔内气体流动的数学模型,并推导了新的页岩表观渗透率模型。该模型考虑了诸如粒度分布,曲折度,滑移效应,努森扩散和页岩基质表面延伸等流动机制。该模型与页岩的孔隙结构和尺寸参数密切相关,可以更好地反映页岩中纳米孔的分布特征。通过与经典实验数据进行比较,验证了模型的正确性。最后,分析了压力,温度,孔隙表面整体形状尺寸和曲折分形维数对表观渗透率,滑流,页岩气输运机理的克努森扩散和表面扩散对页岩气输运能力的影响,分析了输气行为和规律。在多尺度的页岩孔隙中被发现。该模型有助于对页岩气纳米孔的流动机理有更深刻和清晰的认识。

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