Multi-Physics Simulation of Electro-Osmotic Microfluidic Flow

Precise Simulation
Multiphysics
Published in
2 min readJul 26, 2021

This new multiphysics example is available in FEATool Multiphysics v1.41.2, and examines microfluidic flow and coupled mass transport due to electroosmosis in a channel with a T-shaped junction. With application of an electric field in a micro channel a flow effect is induced along the walls due to chemical reactions between the liquid and the wall material. This effect is called electro-osmotic flow (EOF), and can for example be used in chemical analysis to separate reactants and chemical species. The flow effect is here modeled with the Helmholtz-Smoluchowski boundary condition [1,2] which prescribes a tangential slip velocity as

ut =μEOF·Et = μEOF·(E — (E·n)n)

where is the electroosmotic mobility. In this model, the walls are aligned with the coordinate axes, and the boundary condition can therefore be simplified to and for the horizontal and vertical boundaries, respectively (where and are the gradients of the electric potential V). A passive scalar representing a chemical analyte is injected at the inlet for a prescribed duration (concentration 1 for t <= 30 and linearly decreasing for the next 10 µs) whereby the transport, diffusion, and path of the species is tracked through the channel.

Electro-osmotic transport of passive scalar in a microfluidic T-junction

This model is available as an automated tutorial by selecting Model Examples and Tutorials&mldr; > Multiphysics > Electro-Osmotic Flow from the File menu. Or alternatively, follow the step-by-step instructions below.

References:

[1] G.E. Karniadakis and A. Beskok, Microflows: fundamentals and simulation. Springer-Verlag, New York, Berlin, Heidelberg, 2001.

[2] R.J. Yang, L.M. Fu, Y.C. Lin, Electroosmotic Flow in Microchannels. J. Colloid and Interface Science, 239:98–105, November 2001.

Originally published at https://www.featool.com.

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Precise Simulation
Multiphysics

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