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A study of pressure-driven displacement flow of two immiscible liquids using a multiphase lattice Boltzmann approach

机译:多相晶格玻尔兹曼方法研究两种不混溶液体的压力驱动位移

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摘要

The pressure-driven displacement of two immiscible fluids in an inclined channel in the presence of viscosity and density gradients is investigated using a multiphase lattice Boltzmann approach. The effects of viscosity ratio, Atwood number, Froude number, capillary number, and channel inclination are investigated through flow structures, front velocities, and fluid displacement rates. Our results indicate that increasing viscosity ratio between the fluids decreases the displacement rate. We observe that increasing the viscosity ratio has a non-monotonic effect on the velocity of the leading front; however, the velocity of the trailing edge decreases with increasing the viscosity ratio. The displacement rate of the thin-layers formed at the later times of the displacement process increases with increasing the angle of inclination because of the increase in the intensity of the interfacial instabilities. Our results also predict the front velocity of the lock-exchange flow of two immiscible fluids in the exchange flow dominated regime. A linear stability analysis has also been conducted in a three-layer system, and the results are consistent with those obtained by our lattice Boltzmann simulations.
机译:使用多相点阵玻尔兹曼方法研究了存在粘度和密度梯度的倾斜通道中两种不混溶流体的压力驱动驱替。通过流动结构,前沿速度和流体驱替速率,研究了粘度比,阿特伍德数,弗洛德数,毛细管数和通道倾角的影响。我们的结果表明,增加流体之间的粘度比会降低驱替速率。我们观察到增加粘度比对前缘速度没有非单调影响。然而,后缘的速度随着粘度比的增加而降低。由于界面不稳定性的强度的增加,在位移过程的后期形成的薄层的位移速率随着倾斜角度的增加而增加。我们的结果还预测了在交换流为主的状态下两种不混溶流体的锁交换流的前沿速度。在三层系统中也进行了线性稳定性分析,其结果与通过我们的格子Boltzmann模拟获得的结果一致。

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