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Simulation of Newtonian and non-Newtonian rheology behavior of viscous fingering in channels by the lattice Boltzmann method

机译:格子Boltzmann方法模拟通道中粘性指状物的牛顿和非牛顿流变行为

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Viscous fingering phenomenon in channels is numerically investigated using the lattice Boltzmann method. The effects of capillary number, viscosity ratio, wettability, gravitational acceleration, three dimensional (3D) geometry and non-Newtonian rheology property on finger generation are examined. The results show that high capillary number and high viscosity ratio lead to narrow finger. The finger growth is enhanced when the displacing fluid is non-wetting to the channel walls and otherwise suppressed. The gravitational acceleration induces the finger pattern asymmetric and shortens the breakthrough time. The finger pattern generated in 3D geometry is quite different from the pattern generated in two dimensional (2D) geometry, and the finger width is influenced both by the 3D geometry and the wettability of channel walls. Due to the changing apparent viscosity of the power-law fluid, the viscous fingering is enhanced in shear thickening fluid while suppressed in shear thinning fluids. The results provide an understanding of the viscous fingering phenomenon from a mesoscopic view and confirm that the lattice Boltzmann method is an effective tool to investigate the immiscible displacement in complex geometry as well as non-Newtonian multiphase fluid flow behavior problems.
机译:使用晶格玻尔兹曼方法对通道中的粘性指法现象进行了数值研究。研究了毛细管数,粘度比,润湿性,重力加速度,三维(3D)几何形状和非牛顿流变性质对手指生成的影响。结果表明,高毛细管数和高粘度比导致手指狭窄。当置换液不润湿通道壁并以其他方式抑制时,手指的生长得到增强。重力加速度导致手指图案不对称,并缩短了穿透时间。以3D几何形状生成的手指图案与以二维(2D)几何形状生成的图案完全不同,并且手指宽度受3D几何形状和通道壁的可湿性影响。由于幂律流体的表观粘度的变化,剪切增稠流体中的粘性指状物得到增强,而剪切稀化流体中的粘性指状物得到抑制。结果提供了从介观的角度对粘性指法现象的理解,并证实了格子Boltzmann方法是研究复杂几何形状中非混溶位移以及非牛顿多相流体流动行为问题的有效工具。

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