Microfluidic System Simulation Including the Electro-Viscous Effect
Author(s) -
Eileen Rojas,
C. P. Chen,
Alok Majumdar
Publication year - 2007
Publication title -
first international conference on integration and commercialization of micro and nanosystems, parts a and b
Language(s) - English
Resource type - Conference proceedings
DOI - 10.1115/mnc2007-21295
Subject(s) - hagen–poiseuille equation , viscosity , microfluidics , mechanics , flow (mathematics) , channel (broadcasting) , materials science , simulation , computer science , electronic engineering , physics , engineering , nanotechnology , composite material , computer network
This paper describes a practical approach using a general purpose lumped-parameter computer program, GFSSP (Generalized Fluid System Simulation Program) for calculating flow distribution in a network of micro-channels including electro-viscous effects due to the existence of electrical double layer (EDL). In this study, an empirical formulation for calculating an effective viscosity of ionic solutions based on dimensional analysis is described to account for surface charge and bulk fluid conductivity, which give rise to electro-viscous effect in microfluidics network. Two dimensional slit micro flow data was used to determine the model coefficients. Geometry effect is then included through a Poiseuille number correlation in GFSSP. The bi-power model was used to calculate flow distribution of isotropically etched straight channel and T-junction microflows involving ionic solutions. Performance of the proposed model is assessed against experimental test data.
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