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Multiscale model for flow and transport in CO_2-enhanced coalbed methane recovery incorporating gas mixture adsorption effects

机译:CO_2增强煤层储存流量和运输多尺度模型,包括气体混合物吸附效应

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In this work we develop a multiscale model for flow and transport problem in CO2-enhanced coalbed methane recovery. The coalbed methane reservoir is characterized by two levels of porosity associated with nanopores in the matrix and cleat network. Mass conservation equations for fluid mixture (CH4 and CO2) in the matrix at the microscale are rigorously derived by using the formal homogenization technique taking into account the gas mixture adsorption in the nanopores. The Density Functional Theory (DFT) is used to compute the gas adsorption isotherms and the solvation force acting on the nanopore wall, showing a much more pronounced adsorption capacity of CO2 compared to CH4. The average transport equations in the matrix together with the multiphase flow problem in fracture network (gas mixture and water) are homogenized giving rise to a macroscopic model ruled by the effective conductivities, partition and transfer coefficients. The cleat permeability evolution due to deformation is taken into account through a three-scale poromechanical model reported in a previous work. Computational simulations illustrate the macroscopic laws underlying the gas pressure distributions, cleat closure phenomena and CH4 production curve enhanced by CO2 injection.
机译:在这项工作中,我们在二氧化碳增强煤层储存中开发了多尺度的流动和运输问题模型。煤层气储层的特征在于基质和夹板网络中与纳米孔相关的两种孔隙率。通过使用正式的均质化技术考虑纳米孔中的气体混合物吸附,通过使用正式均化技术来严格地衍生出在微米的基质中的流体混合物(CH4和CO2)的质量保护方程。密度函数理论(DFT)用于计算气体吸附等温线和作用在纳米孔壁上的溶剂化力,与CH 4相比,CO 2的吸附容量更加明显。基质中的平均传输方程与骨折网络(气体混合物和水)中的多相流动问题一起均质化,从而产生由有效导电,分区和转移系数统治的宏观模型。通过在先前的工作中报告的三尺寸浮动机械模型考虑了由于变形引起的夹板渗透性进化。计算模拟说明了通过CO2注射增强了气体压力分布,夹层闭合现象和CH4生产曲线的宏观定律。

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