High viscosity polymeric fluid droplet formation in a flow focusing microfluidic device - Experimental and numerical study

被引:31
作者
Carneiro, J. [1 ]
Campos, J. B. L. M. [1 ]
Miranda, J. M. [1 ]
机构
[1] Univ Porto, Fac Engn, Transport Phenomena Res Ctr, Chem Engn Dept,CEFT, P-4050465 Porto, Portugal
关键词
Viscous fluids; Flow-focusing; Droplet microfluidics; Regime map; Surfactant; MASS-TRANSFER; BREAKUP DYNAMICS; TAYLOR BUBBLE; LEVEL SET; SIMULATION; GENERATION; VOLUME;
D O I
10.1016/j.ces.2018.09.042
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Experimental and numerical studies concerning the formation of droplets of a viscous fluid in a less viscous immiscible one (viscosity ratio of 533), containing surfactant, were conducted in a flow-focusing square microchannel. Numerical and experimental data from three flow regimes were analysed: threading, dripping and jetting. The results were analysed qualitatively and quantitatively and also compared to correlations from the literature. The droplet sizes and the thread lengths obtained experimentally deviate from the ones obtained for surfactant free systems reported in the literature. The roles of the surfactant mass transport limitations and of the interface rheology are analysed and discussed. The numerical code, based on a coupled level-set and volume of fluid method, successfully predicts droplets sizes in surfactant free systems in almost all the conditions studied. The limits of the numerical code to accurately predict the size of the droplets, particularly in the monodispersed dripping regime, were established. If surfactant is present, the numerical code fails to predict the droplet size under certain flow conditions. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:442 / 454
页数:13
相关论文
共 69 条
[1]   Hydrodynamics of gas-liquid Taylor flow in rectangular microchannels [J].
Abadie, Thomas ;
Aubin, Joelle ;
Legendre, Dominique ;
Xuereb, Catherine .
MICROFLUIDICS AND NANOFLUIDICS, 2012, 12 (1-4) :355-369
[2]   Impact of inlet channel geometry on microfluidic drop formation [J].
Abate, A. R. ;
Poitzsch, A. ;
Hwang, Y. ;
Lee, J. ;
Czerwinska, J. ;
Weitz, D. A. .
PHYSICAL REVIEW E, 2009, 80 (02)
[3]   Microscale tipstreaming in a microfluidic flow focusing device [J].
Anna, Shelley L. ;
Mayer, Hans C. .
PHYSICS OF FLUIDS, 2006, 18 (12)
[4]   Droplets and Bubbles in Microfluidic Devices [J].
Anna, Shelley Lynn .
ANNUAL REVIEW OF FLUID MECHANICS, VOL 48, 2016, 48 :285-309
[5]   Formation of dispersions using "flow focusing" in microchannels [J].
Anna, SL ;
Bontoux, N ;
Stone, HA .
APPLIED PHYSICS LETTERS, 2003, 82 (03) :364-366
[6]   Low-cost experimentation for the study of droplet microfluidics [J].
Bardin, David ;
Lee, Abraham P. .
LAB ON A CHIP, 2014, 14 (20) :3978-3986
[7]   High-speed, clinical-scale microfluidic generation of stable phase-change droplets for gas embolotherapy [J].
Bardin, David ;
Martz, Thomas D. ;
Sheeran, Paul S. ;
Shih, Roger ;
Dayton, Paul A. ;
Lee, Abraham P. .
LAB ON A CHIP, 2011, 11 (23) :3990-3998
[8]   Dynamics of microfluidic droplets [J].
Baroud, Charles N. ;
Gallaire, Francois ;
Dangla, Remi .
LAB ON A CHIP, 2010, 10 (16) :2032-2045
[9]   A ROBUST FRONT TRACKING METHOD: VERIFICATION AND APPLICATION TO SIMULATION OF THE PRIMARY BREAKUP OF A LIQUID JET [J].
Bo, Wurigen ;
Liu, Xingtao ;
Glimm, James ;
Li, Xiaolin .
SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2011, 33 (04) :1505-1524
[10]   A CONTINUUM METHOD FOR MODELING SURFACE-TENSION [J].
BRACKBILL, JU ;
KOTHE, DB ;
ZEMACH, C .
JOURNAL OF COMPUTATIONAL PHYSICS, 1992, 100 (02) :335-354