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Numerical simulation of immiscible liquid-liquid flows in channels.

机译:通道中不混溶的液-液流动的数值模拟。

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This study investigates interfacial dynamics of two-layer immiscible fluids using direct numerical simulation. A numerical model of two immiscible fluids in a two-dimensional Poiseuille channel flow in an inclined channel is developed. The denser and higher viscosity fluid occupies the lower half of the channel while the lighter one with lower viscosity occupies the upper half. Projection method is applied to solve the set of Navier-stokes equations, and front-tracking technique is used to track the interface between the two fluids. The first aspect of this work examines the capability of the front-tracking technique to handle multi-layer flows. The accuracy of this numerical technique is verified by both experimental and analytical results for certain range of flow parameters such as Reynolds number (Re), Froude number (Fr), Weber number (We), velocity ratio (beta), viscosity ratio (psi) and the inclination angle (theta). The numerical simulation generates both plane and wavy interfacial profile and the results are in good agreement with measured experimental results. The observed instability shows the higher viscosity fluid drawn out as fingers that penetrate into the lower viscosity layer. The predicted interface shape compares well with previously reported experiments.; Finally, interfacial behaviors of multi-layer liquid-liquid flow of non-Newtonian and Newtonian fluids in an inclined channel are investigated. The lighter fluid is replaced by a shear thinning, non-Newtonian fluid. A proper empirical model for viscosity constitutive equation is employed for describing the non-Newtonian behavior of the fluid to allow for numerical computation. A comparative study is conducted with suitable range of flow parameters using non-Newtonian fluid as the lighter fluid occupying the upper layer of channel. The thickness of the PEG layer increases as the degree of shear thinning increases. This effect is observed only with gravity induced wavy interface. Shear induced wavy interface does not manifest any effect of shear thinning of the oil for the range of degree of shear thinning effects considered in this study.
机译:本研究使用直接数值模拟研究了两层不混溶流体的界面动力学。建立了在倾斜通道中二维Poiseuille通道中两种不混溶流体的数值模型。较稠密和较高粘度的流体占据通道的下半部分,而较轻的具有较低粘度的流体占据通道的上半部分。应用投影法求解Navier-stokes方程组,并采用前向跟踪技术跟踪两种流体之间的界面。这项工作的第一个方面检查了前端跟踪技术处理多层流的能力。对于一定范围的流动参数,例如雷诺数(Re),弗洛德数(Fr),韦伯数(We),速度比(beta),粘度比(psi),通过实验和分析结果都可以验证该数值技术的准确性。 )和倾斜角度(θ)。数值模拟生成了平面和波浪形的界面轮廓,结果与实测结果吻合良好。观察到的不稳定性表明,当手指伸入较低粘度层时,会抽出较高粘度的流体。预测的界面形状与先前报道的实验比较好。最后,研究了非牛顿流体和牛顿流体在倾斜通道中的多层液-液流动的界面行为。较轻的流体被剪切稀化的非牛顿流体所代替。采用适当的粘度本构方程经验模型来描述流体的非牛顿行为,以便进行数值计算。使用非牛顿流体作为较轻的流体占据了通道的上层,在适当范围的流量参数下进行了比较研究。 PEG层的厚度随着剪切稀化程度的增加而增加。仅在重力感应的波浪形界面上才能观察到这种效果。对于本研究中所考虑的剪切稀化效果的程度范围,剪切引起的波浪状界面并未表现出油的剪切稀化的任何影响。

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