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Simulations of extensional flow in microrheometric devices
Authors:Mónica S. N. Oliveira  Lucy E. Rodd  Gareth H. McKinley  Manuel A. Alves
Affiliation:(1) CEFT, Departamento de Engenharia Química, Faculdade de Engenharia da Universidade do Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal;(2) Department of Mechanical Engineering, MIT, 77 Massachusetts Avenue, Cambridge, MA 02139-4307, USA;(3) Department of Chemical and Biomolecular Engineering, The University of Melbourne, Melbourne, VIC, 3010, Australia
Abstract:We present a detailed numerical study of the flow of a Newtonian fluid through microrheometric devices featuring a sudden contraction–expansion. This flow configuration is typically used to generate extensional deformations and high strain rates. The excess pressure drop resulting from the converging and diverging flow is an important dynamic measure to quantify if the device is intended to be used as a microfluidic extensional rheometer. To explore this idea, we examine the effect of the contraction length, aspect ratio and Reynolds number on the flow kinematics and resulting pressure field. Analysis of the computed velocity and pressure fields show that, for typical experimental conditions used in microfluidic devices, the steady flow is highly three-dimensional with open spiraling vortical structures in the stagnant corner regions. The numerical simulations of the local kinematics and global pressure drop are in good agreement with experimental results. The device aspect ratio is shown to have a strong impact on the flow and consequently on the excess pressure drop, which is quantified in terms of the dimensionless Couette and Bagley correction factors. We suggest an approach for calculating the Bagley correction which may be especially appropriate for planar microchannels. Electronic supplementary material  The online version of this article (doi:) contains supplementary material, which is available to authorized users.
Keywords:Microfluidics  Microrheometry  Couette correction  Bagley correction  Contraction–  expansion flow  Extensional flow
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