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Three-dimensional simulation of droplet dynamics in planar contraction microchannel

Author(s)
Huang, Van ThanhLim, JiseokByon, ChanPark, Jang Min
Issued Date
2018-02
DOI
10.1016/j.ces.2017.10.020
URI
https://scholarworks.unist.ac.kr/handle/201301/22844
Fulltext
http://www.sciencedirect.com/science/article/pii/S0009250917306395?via%3Dihub
Citation
CHEMICAL ENGINEERING SCIENCE, v.176, pp.59 - 65
Abstract
In droplet-based microfluidic systems, microchannel design plays a primary role in transport and manipulation of liquid droplets. The objective of this paper is to investigate dynamics of a droplet in planar contraction microchannel via three-dimensional numerical simulation and theoretical analysis. In particular, this study characterizes three regimes of the droplet dynamics, namely, trap, squeeze and breakup, depending on capillary number (Ca) and contraction ratio (C). In addition, theoretical models have been proposed to describe transitions from one to another regime as a function of Ca and C. For the transition from trap to squeeze, the critical capillary number (Ca-Ic) was found to follow Ca-Ic = a(C-M - 1), whereas the critical capillary number (Ca-IIc) of transition from squeeze to breakup corresponds to Ca-IIc = c(1)C (1). Furthermore, details of the droplet dynamics along downstream of the contraction have been explored as well to depict deformation, retraction and/or breakup of the droplet. The present results would be useful guidelines in designing contraction microfluidic channel for precise control and manipulation of droplets.
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
ISSN
0009-2509
Keyword (Author)
MicrofluidicsContraction microchannelDroplet dynamicsNumerical simulation
Keyword
SIMPLE SHEAR-FLOWMICROFLUIDIC CONTRACTIONNUMERICAL-SIMULATIONBREAKUP DYNAMICSBUBBLE FORMATIONSURFACE-TENSIONT-JUNCTIONDEFORMATIONDEVICESVISCOELASTICITY

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