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Study of Gas Flow Characteristics in Tight Porous Media with a Microscale Lattice Boltzmann Model

机译:用微尺度格子玻尔兹曼模型研究致密多孔介质中的气体流动特征

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摘要

To investigate the gas flow characteristics in tight porous media, a microscale lattice Boltzmann (LB) model with the regularization procedure is firstly adopted to simulate gas flow in three-dimensional (3D) digital rocks. A shale digital rock and a sandstone digital rock are reconstructed to study the effects of pressure, temperature and pore size on microscale gas flow. The simulation results show that because of the microscale effect in tight porous media, the apparent permeability is always higher than the intrinsic permeability, and with the decrease of pressure or pore size, or with the increase of temperature, the difference between apparent permeability and intrinsic permeability increases. In addition, the Knudsen numbers under different conditions are calculated and the results show that gas flow characteristics in the digital rocks under different Knudsen numbers are quite different. With the increase of Knudsen number, gas flow in the digital rocks becomes more uniform and the effect of heterogeneity of the porous media on gas flow decreases. Finally, two commonly used apparent permeability calculation models are evaluated by the simulation results and the Klinkenberg model shows better accuracy. In addition, a better proportionality factor in Klinkenberg model is proposed according to the simulation results.
机译:为了研究致密多孔介质中的气体流动特性,首先采用具有正则化程序的微尺度格子玻尔兹曼(LB)模型来模拟三维(3D)数字岩石中的气体流动。重建了页岩数字岩石和砂岩数字岩石,以研究压力,温度和孔径对微尺度气流的影响。仿真结果表明,由于致密多孔介质中的微观尺度效应,表观渗透率总是高于本征渗透率,并且随着压力或孔径的减小,或者随着温度的升高,表观渗透率与本征渗透率之间的差异渗透性增加。另外,计算了不同条件下的克努森数,结果表明,在不同克努森数下的数字岩石中的气体流动特征存在很大差异。随着克努森数的增加,数字岩中的气流变得更加均匀,并且多孔介质的非均质性对气流的影响减小。最后,通过仿真结果对两个常用的视在渗透率计算模型进行了评估,Klinkenberg模型显示出更高的精度。另外,根据仿真结果,提出了一种更好的比例系数模型。

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