On capillary self-focusing in a microfluidic system
Document Type
Article
Publication Date
11-7-2016
Abstract
A computational framework is developed to address capillary self-focusing in step emulsification. The microfluidic system consists of a single shallow and wide microchannel that merges into a deep reservoir. A continuum approach coupled with a volume of fluid method is used to model the capillary self-focusing effect. The original governing equations are reduced using the Hele-Shaw approximation. We show that the interface between the two fluids takes the shape of a neck narrowing in the flow direction just before entering the reservoir, in agreement with our experimental observations. Our computational model relies on the assumption that the pressure at the boundary, where the fluid exits into the reservoir, is the uniform pressure in the reservoir. We investigate this hypothesis by comparing the numerical results with experimental data. We conjecture that the pressure boundary condition becomes important when the width of the neck is comparable to the depth of the microchannel. A correction to the exit pressure boundary condition is then proposed, which is determined by comparison with experimental data. We also present the experimental observations and the numerical results of the transitions of breakup regimes.
Identifier
84994894896 (Scopus)
Publication Title
Fluid Dynamics Research
External Full Text Location
https://doi.org/10.1088/0169-5983/48/6/061427
ISSN
01695983
Issue
6
Volume
48
Recommended Citation
Hein, M.; Seemann, R.; and Afkhami, S., "On capillary self-focusing in a microfluidic system" (2016). Faculty Publications. 10168.
https://digitalcommons.njit.edu/fac_pubs/10168
