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微流控流动聚焦装置中油包水乳液液滴的几何介导断裂

Geometrically-mediated snap-off of water-in-oil emulsion droplets in microfluidic flow focusing devices.

作者信息

Yao Jia, Oakey John

机构信息

Department of Petroleum Engineering, University of Wyoming, USA.

Department of Chemical Engineering, University of Wyoming, USA.

出版信息

J Oil Gas Petrochem Sci. 2018;1(2):42-46. doi: 10.30881/jogps.00009. Epub 2018 Mar 26.

Abstract

Microfluidic channel networks allow the control of flowing fluids within structures with length scales on the order of single or tens of micrometers (μm). This affords the opportunity to mix and separate fluids with fine precision and, in the case of immiscible multiphase flows, generate stable emulsions with well-controlled sizes and size distributions. It is generally well understood that emulsion droplet size can be regulated by carefully balancing capillary-associated parameters, such as relative fluid velocity, with the interfacial tension of the immiscible phases. Channel size and geometry, particularly that of the junction where fluids merge in microfluidic flow focusing (or "pinch flow") devices, has been shown to scale droplet size and bound the lower droplet size. Channel constrictions or "nozzles" are commonly employed to amplify the extensional flow at channel junctions, but their function has not been quantified and is, therefore, not well understood. This paper describes the use of geometry as a tunable parameter in microfluidic droplet generator design by focusing upon the effect of nozzle geometry (relative width, length and depth) upon droplet snap off behavior. Our results show that nozzle geometry can dramatically influence droplet size by shifting its snap-off position, an effect that can be anticipated by Raleigh-Plateau theory.

摘要

微流控通道网络能够控制长度尺度在单微米或几十微米(μm)量级的结构内流动的流体。这为精确混合和分离流体提供了机会,并且在不互溶多相流的情况下,能够生成尺寸和尺寸分布得到良好控制的稳定乳液。人们普遍清楚地认识到,乳液滴的大小可以通过仔细平衡与毛细管相关的参数(如相对流体速度)以及不互溶相的界面张力来调节。通道尺寸和几何形状,特别是在微流控流动聚焦(或“夹流”)装置中流体合并处的连接点的尺寸和几何形状,已被证明会影响液滴大小并限定液滴的最小尺寸。通道收缩处或“喷嘴”通常用于放大通道连接处的拉伸流,但其功能尚未得到量化,因此尚未被充分理解。本文通过关注喷嘴几何形状(相对宽度、长度和深度)对液滴脱离行为的影响,描述了在微流控液滴发生器设计中使用几何形状作为可调参数的情况。我们的结果表明,喷嘴几何形状可以通过改变其脱离位置来显著影响液滴大小,这一效应可以通过瑞利 - 普拉托理论预测。

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