Experimental observations of the squeezing-to-dripping transition in T-shaped microfluidic junctions

被引:308
作者
Christopher, Gordon F. [1 ]
Noharuddin, N. Nadia [1 ]
Taylor, Joshua A. [1 ]
Anna, Shelley L. [1 ]
机构
[1] Carnegie Mellon Univ, Dept Mech Engn, Pittsburgh, PA 15213 USA
来源
PHYSICAL REVIEW E | 2008年 / 78卷 / 03期
关键词
D O I
10.1103/PhysRevE.78.036317
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
An experimental study of droplet breakup in T-shaped microfluidic junctions is presented in which the capillary number and flow rate ratio are varied over a wide range for several different viscosity ratios and several different ratios of the inlet channel widths. The range of conditions corresponds to the region in which both the squeezing pressure that arises when the emerging interface obstructs the channel and the viscous shear stress on the emerging interface strongly influence the process. In this regime, the droplet volume depends on the capillary number, the flow rate ratio, and the ratio of inlet channel widths, which controls the degree of confinement of the droplets. The viscosity ratio influences the droplet volume only when the viscosities are similar. When there is a large viscosity contrast in which the dispersed-phase liquid is at least 50 times smaller than the continuous-phase liquid, the resulting size is independent of the viscosity ratio and no transition to a purely squeezing regime appears. In this case, both the droplet volume and the droplet production frequency obey power-law behavior with the capillary number, consistent with expectations based on mass conservation of the dispersed-phase liquid. Finally, scaling arguments are presented that result in predicted droplet volumes that depend on the capillary number, flow rate ratio, and width ratio in a qualitatively similar way to that observed in experiments.
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页数:12
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共 44 条
  • [11] Ordered and disordered patterns in two-phase flows in microchannels
    Dreyfus, R
    Tabeling, P
    Willaime, H
    [J]. PHYSICAL REVIEW LETTERS, 2003, 90 (14) : 4
  • [12] Rapid prototyping of microfluidic systems in poly(dimethylsiloxane)
    Duffy, DC
    McDonald, JC
    Schueller, OJA
    Whitesides, GM
    [J]. ANALYTICAL CHEMISTRY, 1998, 70 (23) : 4974 - 4984
  • [13] Garstecki P, 2006, LAB CHIP, V6, P693
  • [14] Mechanism for flow-rate controlled breakup in confined geometries: A route to monodisperse emulsions
    Garstecki, P
    Stone, HA
    Whitesides, GM
    [J]. PHYSICAL REVIEW LETTERS, 2005, 94 (16) : 1 - 4
  • [15] Formation of monodisperse bubbles in a microfluidic flow-focusing device
    Garstecki, P
    Gitlin, I
    DiLuzio, W
    Whitesides, GM
    Kumacheva, E
    Stone, HA
    [J]. APPLIED PHYSICS LETTERS, 2004, 85 (13) : 2649 - 2651
  • [16] Stability of parallel flows in a microchannel after a T junction
    Guillot, P
    Colin, A
    [J]. PHYSICAL REVIEW E, 2005, 72 (06):
  • [17] A method for the determination of surface and interfacial tension from the maximum pull on a ring
    Harkins, WD
    Jordan, HF
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1930, 52 : 1751 - 1772
  • [18] Microfluidic diffusion diluter: bulging of PDMS microchannels under pressure-driven flow
    Holden, MA
    Kumar, S
    Beskok, A
    Cremer, PS
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2003, 13 (03) : 412 - 418
  • [19] The effect of elasticity on drop creation in T-shaped microchannels
    Husny, Joeska
    Cooper-White, Justin J.
    [J]. JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2006, 137 (1-3) : 121 - 136
  • [20] Kestelman H., 1960, MODERN THEORIES INTE, P33