Model of droplet generation in flow focusing generators operating in the squeezing regime

被引:60
作者
Chen, Xiaoming [1 ]
Glawdel, Tomasz [1 ]
Cui, Naiwen [1 ]
Ren, Carolyn L. [1 ]
机构
[1] Univ Waterloo, Dept Mech & Mechatron Engn, Waterloo, ON N2L 3G1, Canada
基金
加拿大创新基金会;
关键词
Microfluidics; Droplets; Droplet generators; Flow focusing; Physical model; PRESSURE; BUBBLES;
D O I
10.1007/s10404-014-1533-5
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Flow focusing generators have been widely used to generate droplets for many applications which call for accurate physical models that describe the droplet formation process in such configurations for design and operation purposes. Most existing models are empirical correlations obtained based on extensive experimental results and thus very sensitive to their own data sets. A comprehensive model that involves less parameter fitting by incorporating more theoretical arguments and thus has an improved applicability is urgently needed to guide the design and operation of flow focusing generators. This work presents a 3D physical model describing the droplet formation process in microfluidic flow focusing generators that operate in the squeezing regime where droplet size is usually larger than the channel width. This model incorporates an accurate geometric description of the 3D droplet shape during the formation process, an estimation of the time period for the formation cycle based on the conservation of mass and a semi-analytical model predicting the pressure drop over the 3D corner gutter between the droplet curvature and channel walls, which allow an accurate determination of the droplet size, spacing and formation frequency. The model considers the influences of channel geometry (height-to-width ratio), viscosity contrast, flow rate ratio and capillary number with a wide variety. This model is validated by comparing predictions from the model with experimental results obtained through high-speed imaging.
引用
收藏
页码:1341 / 1353
页数:13
相关论文
共 34 条
[21]   Droplet formation in microfluidic cross-junctions [J].
Liu, Haihu ;
Zhang, Yonghao .
PHYSICS OF FLUIDS, 2011, 23 (08)
[22]   Emulsification in a microfluidic flow-focusing device: effect of the viscosities of the liquids [J].
Nie, Zhihong ;
Seo, MinsSeok ;
Xu, Shengqing ;
Lewis, Patrick C. ;
Mok, Michelle ;
Kumacheva, Eugenia ;
Whitesides, George M. ;
Garstecki, Piotr ;
Stone, Howard A. .
MICROFLUIDICS AND NANOFLUIDICS, 2008, 5 (05) :585-594
[23]   Satellite drops: Unexpected dynamics and change of scaling during pinch-off [J].
Notz, PK ;
Chen, AU ;
Basaran, OA .
PHYSICS OF FLUIDS, 2001, 13 (03) :549-552
[24]   Experimental and computational analysis of droplet formation in a high-performance flow-focusing geometry [J].
Ong, Wee-Liat ;
Hua, Jinsong ;
Zhang, Baili ;
Teo, Teng-Yuan ;
Zhuo, Junlong ;
Nguyen, Nam-Trung ;
Ranganathan, Nagarajan ;
Yobas, Levent .
SENSORS AND ACTUATORS A-PHYSICAL, 2007, 138 (01) :203-212
[25]   A ternary model for double-emulsion formation in a capillary microfluidic device [J].
Park, Jang Min ;
Anderson, Patrick D. .
LAB ON A CHIP, 2012, 12 (15) :2672-2677
[26]   Flow focusing geometry generates droplets through a plug and squeeze mechanism [J].
Romero, Philip A. ;
Abate, Adam R. .
LAB ON A CHIP, 2012, 12 (24) :5130-5132
[27]   Droplet based microfluidics [J].
Seemann, Ralf ;
Brinkmann, Martin ;
Pfohl, Thomas ;
Herminghaus, Stephan .
REPORTS ON PROGRESS IN PHYSICS, 2012, 75 (01)
[28]   Monodispersed microfluidic droplet generation by shear focusing microfluidic device [J].
Tan, YC ;
Cristini, V ;
Lee, AP .
SENSORS AND ACTUATORS B-CHEMICAL, 2006, 114 (01) :350-356
[29]   Modeling of pressure and shear-driven flows in open rectangular microchannels [J].
Tchikanda, SW ;
Nilson, RH ;
Griffiths, SK .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2004, 47 (03) :527-538
[30]   Microbubble formation and pinch-off scaling exponent in flow-focusing devices [J].
van Hoeve, Wim ;
Dollet, Benjamin ;
Versluis, Michel ;
Lohse, Detlef .
PHYSICS OF FLUIDS, 2011, 23 (09)