INFLUENCES OF KEY CONFIGURATION PARAMETERS ON FLOW-FOCUSING MICROFLUIDIC DROPLET GENERATION

被引:0
|
作者
Zhang S. [1 ]
Wang B. [1 ,2 ]
Ma Z. [1 ]
Chen X. [1 ,2 ]
机构
[1] School of Aerospace Engineering, Beijing Institute of Technology, Beijing
[2] School of Medical Technology, Beijing Institute of Technology, Beijing
关键词
dripping; droplet microfluidics; flow pattern; flow-focusing; jetting;
D O I
10.6052/0459-1879-23-094
中图分类号
学科分类号
摘要
The flow-focusing droplet microfluidics achieves continuous generation of monodisperse microdroplets by means of flow-focusing effects and interfacial destabilization phenomenon of discrete-phase liquid filament. The multiphase interfacial flow in this technique exhibits dependence on configuration parameters and shows rich microfluidic device developed in our previous study, numerical simulations are used to investigate the influences of key configuration parameters on droplet generation modes and droplet dimensions. After reasonable simplifications, the study establishes an axisymmetric model of the actual device and combines the adaptive mesh refinement technique to improve the efficiency of the numerical simulation. The accuracy of the numerical simulation is verified through the comparison of several experimental operating conditions. It is found that within the selected fluid combination, geometry, and flow parameters, the droplet generation process exists in four modes: dripping, streaming, jetting, and unstable. Under the fixed discrete phase and continuous phase flow rate combinations, the variation of the distance between the upstream and downstream capillary ends changes the droplet length in the dripping and streaming modes, while it has little effect on the droplet size in the jetting mode. Under the fixed geometry parameters, when the flow rates vary, the change of droplet length is nearly continuous at the transition between dripping and streaming modes, but produces a sudden drop at the onset of the jetting mode. The internal diameter of the downstream capillary has a significant effect on the phase diagram, the dripping mode dominates for the large diameter internal diameter and the jet length changes more significantly in the jetting mode, while the jetting mode dominates for the small internal diameter and unstable modes are found at large continuous phase flows. The results of this paper show that the key configuration parameters have important effects on the flow-focusing microfluidic droplet generation, and the applicable alteration of these parameters can control the droplet size and improve the droplet monodispersity, which provides a basis for the design and optimization of flow-focusing microdroplet generation devices. © 2023 Chinese Journal of Theoretical and Applied Mechanics Press. All rights reserved.
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页码:1257 / 1266
页数:9
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  • [21] Xia Y, Whitesides GM., Soft lithography, Annual Review of Materials Science, 28, 1, pp. 153-184, (1998)
  • [22] Muluneh M, Issadore D., Hybrid soft-lithography/laser machined microchips for the parallel generation of droplets, Lab on a Chip, 13, 24, pp. 4750-4754, (2013)
  • [23] Seo M, Paquet C, Nie Z, Et al., Microfluidic consecutive flow-focusing droplet generators, Soft Matter, 3, 8, pp. 986-992, (2007)
  • [24] Wang D, Zheng X, Chen X, Et al., Flow-pattern-altered syntheses of core–shell and hole–shell microparticles in an axisymmetric microfluidic device, Acta Mechanica Sinica, 37, 9, pp. 1378-1386, (2021)
  • [25] Gong X, Wen W., Polydimethylsiloxane-based conducting composites and their applications in microfluidic chip fabrication, Biomicrofluidics, 3, 1, (2009)
  • [26] Li S, Gong X, Mc Nally CS, Et al., Rapid preparation of highly reliable PDMS double emulsion microfluidic devices, RSC Advances, 6, 31, pp. 25927-25933, (2016)
  • [27] Guerrero J, Chang YW, Fragkopoulos AA, Et al., Capillary-based microfluidics—coflow, flow-focusing, electro-coflow, drops, jets, and instabilities, Small, 16, 9, (2020)
  • [28] Panizza P, Engl W, Hany C, Et al., Controlled production of hierarchically organized large emulsions and particles using assemblies on line of co-axial flow devices, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 312, 1, pp. 24-31, (2008)
  • [29] Chang Z, Serra CA, Bouquey M, Et al., Co-axial capillaries microfluidic device for synthesizing size-and morphology-controlled polymer core-polymer shell particles, Lab on a Chip, 9, 20, pp. 3007-3011, (2009)
  • [30] Meng Z, Wang W, Liang X, Et al., Plug-n-play microfluidic systems from flexible assembly of glass-based flow-control modules, Lab on a Chip, 15, 8, pp. 1869-1878, (2015)