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体积-of-fluid (VOF) 模型中动态接触角对微流控毛细流的影响。

Effect of dynamic contact angle in a volume of fluid (VOF) model for a microfluidic capillary flow.

机构信息

Department of Mechanical Engineering, Indian Institute of Technology Bombay, Mumbai, India.

出版信息

J Colloid Interface Sci. 2009 Nov 15;339(2):461-80. doi: 10.1016/j.jcis.2009.07.071. Epub 2009 Aug 9.

Abstract

We perform three-dimensional numerical and experimental study of the dynamic contact angle using volume of fluid (VOF) method applied to microfluidic channels with integrated pillars. Initially, we evaluated different dynamic contact angle models (hydrodynamic, molecular kinetic and empirical) for capillary filling of a two-dimensional microchannel using analytical formulation. Further, the models which require a minimum prescription of adjustable parameters are only used for the study of capillary filling of microchannels with integrated pillars using different working fluids such as DI water, ethanol and isopropyl alcohol. Different microchannel geometry with varying diameter/height/spacing were studied for circular pillars. Effect of square pillars and changing the overall number of pillars on the capillary phenomena were also simulated. Our study demonstrated that the dynamic contact angle models modifies the transient response of the meniscus displacement and also the observed trends are model specific for the various microchannel geometries and working fluids. However, the different models have minimal effect on the meniscus profile. Different inlet boundary conditions were applied to observe the effect of grid resolution selected for numerical study on the capillary filling time. A grid dependent dynamic contact angle model which incorporates effective slip in the model was also used to observe the grid convergence of the numerical results. The grid independence was shown to improve marginally by applying the grid dependent dynamic contact angle model. Further we did numerical experiments of capillary filling considering variable surface wettability on the top and bottom walls of the microchannel with alternate hydrophilic-hydrophobic patterns. The meniscus front pinning was noticed for a high wetting contrast between the patterns. Non uniform streamline patterns indicated mixing of the fluid when using patterned walls. Such a microfluidic device with variable surface properties with integrated pillars may be useful for carrying out biological operations that often require effective separation and mixing of the fluids.

摘要

我们使用应用于带有集成支柱的微通道的体积(VOF)方法对动态接触角进行了三维数值和实验研究。最初,我们使用分析公式评估了不同的动态接触角模型(流体动力学,分子动力学和经验模型)在二维微通道中的毛细填充。此外,仅使用需要最少规定可调参数的模型来研究带有集成支柱的微通道中的毛细填充,这些模型使用不同的工作流体,如去离子水,乙醇和异丙醇。研究了具有不同直径/高度/间距的不同微通道几何形状的圆形支柱。还模拟了方形支柱和改变支柱总数对毛细现象的影响。我们的研究表明,动态接触角模型会改变弯月面位移的瞬态响应,并且观察到的趋势对于各种微通道几何形状和工作流体是特定于模型的。然而,不同的模型对弯月面轮廓的影响很小。应用不同的入口边界条件来观察数值研究中选择的网格分辨率对毛细填充时间的影响。还使用了一种包含模型中有效滑移的网格相关动态接触角模型来观察数值结果的网格收敛性。网格相关动态接触角模型的应用表明网格独立性略有提高。进一步,我们考虑了微通道的顶壁和底壁的表面润湿性变化,在带有交替亲水-疏水图案的微通道中进行了毛细填充的数值实验。对于图案之间的高润湿性对比,发现弯月面前缘固定。当使用图案化壁时,非均匀流线图案表明流体混合。这种带有集成支柱的具有可变表面特性的微流控装置可能对执行生物操作有用,这些操作通常需要有效地分离和混合流体。

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