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Numerical studies of shear-thinning droplet formation in a microfluidic T-junction using two-phase level-set method

机译:两相能级法研究微流体T形结中剪切稀疏液滴的形成

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摘要

A conservative level-set method (LSM) embedded in a computational fluid dynamics (CFD) simulation provides a useful approach for the studying the physics and underlying mechanism in two-phase flow. Detailed two-dimensional (2D) computational microfluidics flow simulations have been carried out to examine systematically the influence of different controlling parameters such as flow rates, viscosities, surface wettability, and interfacial tensions between two immiscible fluids on the non-Newtonian shear-thinning microdroplets generation process. For the two-phase flow system that neglects the Marangoni effect, the breakup process of shear-thinning microdroplets in cross-flowing immiscible liquids in a microfluidic device with a T-shaped geometry was predicted. Data for the rheological and physical properties of fluids obeying Carreau-Yasuda stress model were empirically obtained to support the computational work. The simulation results show that the relevant control parameters mentioned above have a strong impact on the size of shear-thinning droplets generated. Present computational studies on the role and relative importance of controlling parameters can be established as a conceptual framework of the non-Newtonian droplet generation process and relevant phenomena for future studies.
机译:嵌入在计算流体动力学(CFD)模拟中的保守的水平集方法(LSM)为研究两相流的物理机理和基本机理提供了一种有用的方法。已经进行了详细的二维(2D)计算微流体流动仿真,以系统地检查不同控制参数(如流速,粘度,表面润湿性和两种不混溶流体之间的界面张力)对非牛顿剪切稀化微滴的影响。生成过程。对于忽略了Marangoni效应的两相流系统,预测了在具有T形几何形状的微流体装置中,错流的不溶混液体中剪切稀化微滴的破裂过程。根据经验,获得了遵循Carreau-Yasuda应力模型的流体流变和物理特性数据,以支持计算工作。仿真结果表明,上述相关控制参数对产生的剪切稀疏液滴的尺寸有很大影响。可以将当前关于控制参数的作用和相对重要性的计算研究建立为非牛顿液滴产生过程和相关现象的概念框架,以供将来研究。

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