Path selection rules for droplet trains in single-lane microfluidic networks

被引:9
作者
Amon, A. [1 ]
Schmit, A. [1 ]
Salkin, L. [1 ]
Courbin, L. [1 ]
Panizza, P. [1 ]
机构
[1] Univ Rennes 1, IPR, CNRS, UMR 6251, F-35042 Rennes, France
来源
PHYSICAL REVIEW E | 2013年 / 88卷 / 01期
关键词
ASSEMBLIES;
D O I
10.1103/PhysRevE.88.013012
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
We investigate the transport of periodic trains of droplets through microfluidic networks having one inlet, one outlet, and nodes consisting of T junctions. Variations of the dilution of the trains, i.e., the distance between drops, reveal the existence of various hydrodynamic regimes characterized by the number of preferential paths taken by the drops. As the dilution increases, this number continuously decreases until only one path remains explored. Building on a continuous approach used to treat droplet traffic through a single asymmetric loop, we determine selection rules for the paths taken by the drops and we predict the variations of the fraction of droplets taking these paths with the parameters at play including the dilution. Our results show that as dilution decreases, the paths are selected according to the ascending order of their hydrodynamic resistance in the absence of droplets. The dynamics of these systems controlled by time-delayed feedback is complex: We observe a succession of periodic regimes separated by a wealth of bifurcations as the dilution is varied. In contrast to droplet traffic in single asymmetric loops, the dynamical behavior in networks of loops is sensitive to initial conditions because of extra degrees of freedom.
引用
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页数:12
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共 40 条
[1]   Steady flows in networks of microfluidic channels: building on the analogy with electrical circuits [J].
Ajdari, A .
COMPTES RENDUS PHYSIQUE, 2004, 5 (05) :539-546
[2]   Detection of multistability, bifurcations, and hysteresis in a large class of biological positive-feed back systems [J].
Angeli, D ;
Ferrell, JE ;
Sontag, ED .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (07) :1822-1827
[3]   Formation of dispersions using "flow focusing" in microchannels [J].
Anna, SL ;
Bontoux, N ;
Stone, HA .
APPLIED PHYSICS LETTERS, 2003, 82 (03) :364-366
[4]   Simulation of droplet trains in microfluidic networks [J].
Behzad, Mehran Djalali ;
Seyed-allaei, Hamed ;
Ejtehadi, Mohammad Reza .
PHYSICAL REVIEW E, 2010, 82 (03)
[5]   Competition between Local Collisions and Collective Hydrodynamic Feedback Controls Traffic Flows in Microfluidic Networks [J].
Belloul, M. ;
Engl, W. ;
Colin, A. ;
Panizza, P. ;
Ajdari, A. .
PHYSICAL REVIEW LETTERS, 2009, 102 (19)
[6]   Droplet traffic regulated by collisions in microfluidic networks [J].
Belloul, Malika ;
Courbin, Laurent ;
Panizza, Pascal .
SOFT MATTER, 2011, 7 (19) :9453-9458
[7]  
Bruus H., 2007, Theoretical microfluidics
[8]   Nonlinear dynamics of microvascular blood flow [J].
Carr, RT ;
Lacoin, M .
ANNALS OF BIOMEDICAL ENGINEERING, 2000, 28 (06) :641-652
[9]   Bubbles navigating through networks of microchannels [J].
Choi, Wonjae ;
Hashimoto, Michinao ;
Ellerbee, Audrey K. ;
Chen, Xin ;
Bishop, Kyle J. M. ;
Garstecki, Piotr ;
Stone, Howard A. ;
Whitesides, George M. .
LAB ON A CHIP, 2011, 11 (23) :3970-3978
[10]   Transport of resistance through a long microfluidic channel [J].
Cybulski, Olgierd ;
Garstecki, Piotr .
PHYSICAL REVIEW E, 2010, 82 (05)