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On the flow topology inside droplets moving in rectangular microchannels

机译:关于在矩形微通道中移动的液滴内部的流动拓扑

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摘要

The flow topology in moving microdroplets has a significant impact on the behaviour of encapsulated objects and hence on applications of the technology. This study reports on a systematic investigation of the flow field inside droplets moving in a rectangular microchannel, by means of micro-particle image velocimetry (??PIV). Various water/oil (w/o) fluid mixtures were studied in order to elucidate the effects of a number of parameters such as capillary number (Ca), droplet geometry, viscosity ratio and interfacial tension. A distinct change in flow topology was observed at intermediate Ca ranging from 10???3 to 10???1, in surfactant-laden droplets, which was attributed primarily to the viscosity ratio of the two phases rather than the Marangoni effect expected in such systems. W/o droplet systems of lower inner-to-outer viscosity ratios tend to exhibit the well-known flow pattern characterised by a parabola-like profile in the droplet bulk-volume, surrounded by two counter rotating recirculation zones on either side of the droplet axis. As the viscosity ratio between the two phases is increased, the flow pattern becomes more uniform, exhibiting low velocities in the droplet bulk-volume and higher-reversed velocities along the w/o interface. The Ca and droplet geometry had no effect on the observed flow topology change. The study highlights the complex, three-dimensional (3D) nature of the flow inside droplets in rectangular microchannels and demonstrates the ability to control the droplet flow environment by adjusting the viscosity ratio between the two phases.
机译:移动微滴中的流动拓扑结构对封装对象的行为具有重大影响,因此对技术的应用也具有重大影响。这项研究报告了通过微粒图像测速法(ΔPIV)对在矩形微通道中运动的液滴内部的流场进行的系统研究。为了阐明各种参数(例如毛细管数(Ca),液滴的几何形状,粘度比和界面张力)的影响,对各种水/油(w / o)流体混合物进行了研究。在载有表面活性剂的液滴中,在中间Ca范围从10到3到10到1处,观察到了流动拓扑的明显变化,这主要归因于两相的粘度比,而不是预期的Marangoni效应。这样的系统。内外粘度比较低的W / o液滴系统倾向于表现出众所周知的流动模式,其特征是液滴体积中的抛物线状轮廓,在液滴的两侧均被两个反向旋转的再循环区域围绕轴。随着两相之间的粘度比增加,流态变得更加均匀,液滴体积中的流速较低,沿w / o界面的流速较高。 Ca和液滴的几何形状对观察到的流动拓扑变化没有影响。该研究强调了矩形微通道中液滴内部流动的复杂三维(3D)性质,并展示了通过调节两相之间的粘度比来控制液滴流动环境的能力。

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