Literature DB >> 19693399

Micromixer based on viscoelastic flow instability at low Reynolds number.

Y C Lam1, H Y Gan, N T Nguyen, H Lie.   

Abstract

We exploited the viscoelasticity of biocompatible dilute polymeric solutions, namely, dilute poly(ethylene oxide) solutions, to significantly enhance mixing in microfluidic devices at a very small Reynolds number, i.e., Re approximately 0.023, but large Peclet and elasticity numbers. With an abrupt contraction microgeometry (8:1 contraction ratio), two different dilute poly(ethylene oxide) solutions were successfully mixed with a short flow length at a relatively fast mixing time of <10 mus. Microparticle image velocimetry was employed in our investigations to characterize the flow fields. The increase in velocity fluctuation with an increase in flow rate and Deborah number indicates the increase in viscoelastic flow instability. Mixing efficiency was characterized by fluorescent concentration measurements. Our results showed that enhanced mixing can be achieved through viscoelastic flow instability under situations where molecular-diffusion and inertia effects are negligible. This approach bypasses the laminar flow limitation, usually associated with a low Reynolds number, which is not conducive to mixing.

Entities:  

Year:  2009        PMID: 19693399      PMCID: PMC2717585          DOI: 10.1063/1.3108462

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


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  7 in total
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5.  Characterization of microfluidic mixing and reaction in microchannels via analysis of cross-sectional patterns.

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6.  Viscoelastic effects on electrokinetic particle focusing in a constricted microchannel.

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7.  Effect of the crossing-structure sequence on mixing performance within three-dimensional micromixers.

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