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Numerical simulation of Taylor bubble formation in a microchannel with a converging shape mixing junction

机译:会聚形状混合结的微通道内泰勒气泡形成的数值模拟

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The bubble formation in a square microchannel with a converging shape mixing junction has been simulated under Taylor flow using two different interface capturing methods implemented in ANSYS FLUENT (ANSYS Inc., USA): Volume of Fluid (VOF) method, and coupled Level Set and VOF (CLSVOF) method. Compared with VOF method, CLSVOF method can yield a more accurate gas-liquid interface especially at the rupture stage of the emerging bubble and the obtained bubbles are more consistent with the experimental results. The effect of the contact angle (theta), surface tensions (sigma) and liquid viscosity (mu(L)) on the Taylor bubble details (i.e., length, volume and shape) has been investigated systematically. For the highest surface tension (sigma = 0.09 N/m) and the highest liquid viscosity (mu(L) = 9.83 mPa s) investigated, the bubble length decreases substantially with an increase of the contact angle as a result of the combined effect caused by the bubble end shape change from convex to concave and the volume decrease of the liquid film surrounding the bubble body. However, the bubble volume is almost constant regardless of the contact angle, which is mainly caused by the difference in bubble shapes. Both the contact angle and the liquid viscosity have an appreciable influence on the bubble shape whereas the influence of surface tension is minor. (C) 2014 Elsevier B.V. All rights reserved.
机译:使用在ANSYS FLUENT(ANSYS Inc.,美国)中实现的两种不同的界面捕获方法,在泰勒流动条件下,模拟了具有收敛形状混合结的方形微通道中的气泡形成:流体体积(VOF)方法,耦合液位集和VOF(CLSVOF)方法。与VOF法相比,CLSVOF法可以产生更精确的气液界面,特别是在新兴气泡破裂阶段,所得气泡与实验结果更加吻合。已经系统地研究了接触角(θ),表面张力(σ)和液体粘度(μ(L))对泰勒气泡细节(即长度,体积和形状)的影响。对于所研究的最高表面张力(sigma = 0.09 N / m)和最高液体粘度(mu(L)= 9.83 mPa s),由于结合作用的结果,气泡长度随着接触角的增加而大大降低。由于气泡的端部形状从凸形变为凹形,并且围绕气泡体的液膜的体积减小。但是,无论接触角如何,气泡体积几乎都是恒定的,这主要是由气泡形状的差异引起的。接触角和液体粘度均对气泡形状有显着影响,而表面张力的影响较小。 (C)2014 Elsevier B.V.保留所有权利。

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