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Flow regime mapping of high inertial gas-liquid droplet microflows in flow-focusing geometries

机译:流动集中几何中高惯性气-液微流的流态映射

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摘要

Confined gas-liquid droplet microflows present a lot of new perspectives for microfluidic systems that require the presence of a gaseous phase. In addition to the benefits associated with the discretization of reactive and sensing processes, the highly inertial droplets generated in these systems can enable fast efficient mixing by pair collisions as well as high system throughput due to the short convective timescales involved in the droplet transport. Presented herein is mapping of the geometry-specific droplet generation from a binary gas-liquid flow for different flow-focusing configurations. The dynamic interactions of inertia, shear stress, viscous and surface tension forces create three unique regimes in the gas-liquid flow rate space, providing adaptable flow configuration to specific applications. Analytical investigation and numerical analyses involving governing forces are also introduced to predict the effective droplet diameter versus gas flow rate. We found that the experimental results were well matched to the analytical predictions within 10 % of uncertainty.
机译:受限的气液液滴微流为需要气相存在的微流系统提供了许多新观点。除了使反应和传感过程离散化相关的优点外,由于液滴传输中涉及的对流时间尺度短,这些系统中生成的高惯性液滴还可以通过成对碰撞实现快速有效的混合,并实现高系统通量。本文呈现的是针对不同的流聚焦配置,从二元气-液流产生的特定于几何形状的液滴的映射。惯性,剪切应力,粘性和表面张力的动态相互作用在气液流速空间中创建了三个独特的状态,从而为特定应用提供了适应性的流量配置。还介绍了涉及控制力的分析研究和数值分析,以预测有效液滴直径与气体流速之间的关系。我们发现实验结果在不确定性的10%以内与分析预测非常吻合。

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