AI Article Synopsis

  • The study focuses on how merging flow at a T-junction affects mixing and particle movement in microfluidic devices, particularly with different fluids.
  • It explores five types of polymer solutions mixed with water under various flow rates, emphasizing the roles of shear thinning and elasticity.
  • Findings show that the flow patterns near the junction can vary, being either vortex-dominated or unsteady, influenced by the fluid's elastic properties and shear thinning behavior, with notable differences in interfacial fluctuations.

Article Abstract

The merging flow through a T-junction is relevant to sample mixing and particle manipulation in microfluidic devices. It has been extensively studied for Newtonian fluids, particularly in the high inertial regime where flow bifurcation takes place for enhanced mixing. However, the effects of fluid rheological properties on the merging flow have remained largely unexplored. We investigate here the flow of five types of polymer solutions along with water in a planar T-shaped microchannel over a wide range of flow rates for a systematic understanding of the effects of fluid shear thinning and elasticity. It is found that the merging flow near the stagnation point of the T-junction can either be vortex dominated or have unsteady streamlines, depending on the strength of elasticity and shear thinning present in the fluid. Moreover, the shear thinning effect is found to induce a symmetric unsteady flow in comparison to the asymmetric unsteady flow in the viscoelastic fluids, the latter of which exhibits greater interfacial fluctuations.

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Source
http://dx.doi.org/10.1039/d3sm00376kDOI Listing

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