Issue 4, 2003

Electro-hydrodynamic micro-fluidic mixer

Abstract

Fluid mixing in microchannels is needed for many applications ranging from bio-arrays to micro-reactors, but is typically difficult to achieve. A simple geometry micro-mixer is proposed based on the electro-hydrodynamic (EHD) force present when the fluids to be mixed have different electrical properties and are subjected to an electric field. The electrodes are arranged so that the electric field is perpendicular to the interface between the two fluids, creating a transversal secondary flow. The technique is demonstrated experimentally using the flow of two liquids with identical viscosity and density, but different electrical properties. The volume flow rate and average velocity are 0.26 µl s−1 and 4.2 mm s−1, respectively, corresponding to a Reynolds number Re = 0.0174. The effect of a continuous (DC) electric field and two alternating (AC) – sinusoidal and square – electric fields is explored. At the appropriate parameter values, very good mixing takes place in less than 0.1 s, over a very short distance (within a fraction of the width 250 µm of the electrodes).

Supplementary files

Article information

Article type
Paper
Submitted
16 Jun 2003
Accepted
18 Sep 2003
First published
09 Oct 2003

Lab Chip, 2003,3, 273-280

Electro-hydrodynamic micro-fluidic mixer

A. O. El Moctar, N. Aubry and J. Batton, Lab Chip, 2003, 3, 273 DOI: 10.1039/B306868B

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