Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip

The flow-focusing method is a technology for microfluidic droplet control, and the temperature can effect on the droplet formation. In this study, the droplet formation in the flow-focusing method during the squeezing of dispersed phase by the continuous phase is simulated using CLSVOF, with the con...

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Main Authors: F. Jiang, Y. Xu, J. Song, H. Lu
Format: Article
Language:English
Published: Isfahan University of Technology 2019-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:http://jafmonline.net/JournalArchive/download?file_ID=49102&issue_ID=256
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spelling doaj-6f52a00935aa4f1691520e9756b3ee752020-11-25T00:28:03ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-35722019-01-01123831843.Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic ChipF. Jiang0Y. Xu1J. Song2H. Lu3School of Mechanical and Electrical Engineering, Guangzhou University, ChinaSchool of Mechanical and Electrical Engineering, Guangzhou University, ChinaJoining Technology Group, Singapore Institute of Manufacturing Technology, SingaporeSchool of Mechanical and Electrical Engineering, Guangzhou University, ChinaThe flow-focusing method is a technology for microfluidic droplet control, and the temperature can effect on the droplet formation. In this study, the droplet formation in the flow-focusing method during the squeezing of dispersed phase by the continuous phase is simulated using CLSVOF, with the consideration of the effects of temperature on droplet size, shape and frequency. The simulation results are consistent with experimental data. The simulated results demonstrate that the droplet size increases with the increase of inlet phase temperature, while the shape regularity and forming frequency decrease, the maximum increase of droplet size is 16%, the biggest drop of droplets number is 29%, and the biggest drop of the roughness parameter is 5%. When the inlet temperatures of the continuous phase are not equal, dripping and jetting are observed in the flow regime of droplet dispersed phase. The mechanism of the temperature influence on droplet formation and the detailed process of droplet formation under different flow regimes are discussed. At the same time, the radial size of droplet breakup point under different flow regimes is compared. The simulation results provide insights in better selection of the control parameters for droplet formation technology.http://jafmonline.net/JournalArchive/download?file_ID=49102&issue_ID=256Numerical simulation; Droplet formation; Flow focusing; Temperature; CLSVOF.
collection DOAJ
language English
format Article
sources DOAJ
author F. Jiang
Y. Xu
J. Song
H. Lu
spellingShingle F. Jiang
Y. Xu
J. Song
H. Lu
Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
Journal of Applied Fluid Mechanics
Numerical simulation; Droplet formation; Flow focusing; Temperature; CLSVOF.
author_facet F. Jiang
Y. Xu
J. Song
H. Lu
author_sort F. Jiang
title Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
title_short Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
title_full Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
title_fullStr Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
title_full_unstemmed Numerical Study on the Effect of Temperature on Droplet Formation inside the Microfluidic Chip
title_sort numerical study on the effect of temperature on droplet formation inside the microfluidic chip
publisher Isfahan University of Technology
series Journal of Applied Fluid Mechanics
issn 1735-3572
publishDate 2019-01-01
description The flow-focusing method is a technology for microfluidic droplet control, and the temperature can effect on the droplet formation. In this study, the droplet formation in the flow-focusing method during the squeezing of dispersed phase by the continuous phase is simulated using CLSVOF, with the consideration of the effects of temperature on droplet size, shape and frequency. The simulation results are consistent with experimental data. The simulated results demonstrate that the droplet size increases with the increase of inlet phase temperature, while the shape regularity and forming frequency decrease, the maximum increase of droplet size is 16%, the biggest drop of droplets number is 29%, and the biggest drop of the roughness parameter is 5%. When the inlet temperatures of the continuous phase are not equal, dripping and jetting are observed in the flow regime of droplet dispersed phase. The mechanism of the temperature influence on droplet formation and the detailed process of droplet formation under different flow regimes are discussed. At the same time, the radial size of droplet breakup point under different flow regimes is compared. The simulation results provide insights in better selection of the control parameters for droplet formation technology.
topic Numerical simulation; Droplet formation; Flow focusing; Temperature; CLSVOF.
url http://jafmonline.net/JournalArchive/download?file_ID=49102&issue_ID=256
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