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Droplet formation in a microfluidic T-junction involving highly viscous fluid systems

机译:涉及高粘度流体系统的微流体T型接头中的液滴形成

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摘要

Droplet formation involving highly viscous fluids is studied experimentally in a T-junction microchannel. Different combinations of fluids, including ionic liquids, glycerol and silicon oils, lead to large range of continuous fluid viscosity (mu(c) =0.5-1000 mPa s) and viscosity ratio (lambda=1/270-120), allowing for comprehensive investigation on how fluid viscosity affects droplet formation. The high viscosity fluids are set to be either the continuous phase or dispersed phase, and the flow regime demarcation, droplet formation mechanism and droplet size scaling laws are studied respectively. Combining with literature results of the low viscosity fluid systems, the influence of fluid viscosity on droplet formation are then investigated as a whole. Some previous knowledge on droplet formation are verified to be still applicable in highly viscous fluid systems, while some others need to be revised. The revision involving droplet size scaling laws and flow regime distribution pattern in high viscosity fluid systems are discussed both qualitatively and quantitatively. To our knowledge, this is the first comprehensive experimental study on droplet formation with fluid viscosity covering such wide range of values. The revealed results are considered valuable in expanding our understanding on droplet breakup process and utilizing droplet based microfluidic platforms to manipulate highly viscous fluids. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在T型接头微通道中实验研究了涉及高粘度流体的液滴形成。流体的不同组合,包括离子液体,甘油和硅油,会导致连续流体粘度(mu(c)= 0.5-1000 mPa s)和粘度比(lambda = 1 / 270-120)的变化范围很大研究流体粘度如何影响液滴的形成。将高粘度流体设置为连续相或分散相,并分别研究了流态划分,液滴形成机理和液滴尺寸缩放规律。结合低粘度流体系统的文献结果,然后整体研究了流体粘度对液滴形成的影响。经验证,先前有关液滴形成的一些知识仍然适用于高粘度流体系统,而其他一些知识则需要进行修改。定性和定量地讨论了涉及高粘度流体系统中液滴尺寸缩放规律和流态分布模式的修订。据我们所知,这是关于流体粘度涵盖如此广泛的数值范围的液滴形成的首次综合实验研究。揭示的结果被认为对扩大我们对液滴破碎过程的理解以及利用基于液滴的微流体平台来处理高粘性流体具有重要价值。 (C)2016 Elsevier Ltd.保留所有权利。

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