Title :
Electroosmotic flow control in complex microgeometries
Author :
Dutta, Prashanta ; Beskok, Ali ; Warburton, Timothy C.
Author_Institution :
Sch. of Mech. & Mater. Eng., Washington State Univ., Pullman, WA, USA
fDate :
2/1/2002 12:00:00 AM
Abstract :
Numerical simulation results for pure electroosmotic and combined electroosmotic/pressure driven Stokes flows are presented in the cross-flow and Y-split junctions. The numerical algorithm is based on a mixed structured/unstructured spectral element formulation, which results in high-order accurate resolution of thin electric double layers with discretization flexibility for complex engineering geometries. The results for pure electroosmotic flows in cross-flow junctions under multiple electric fields show similarities between the electric and velocity fields. The combined electroosmotic/pressure driven flows are also simulated by regulating the flowrate in different branches of the cross-flow junctions. Flow control in the Stokes flow regime is shown to have linear dependence on the magnitude of the externally applied electric field, both for pure electroosmotic and combined flows. This linear behavior enables utilization of electroosmotic forces as nonmechanical means of flow control for microfluidic applications
Keywords :
electrochemistry; electrophoresis; flow control; microfluidics; micropumps; microvalves; osmosis; Stokes flows; Y-split junctions; complex engineering geometries; complex microgeometries; cross-flow junctions; discretization flexibility; electric double layers; electroosmotic flow control; externally applied electric field; flow control; high-order accurate resolution; microfluidic applications; mixed structured/unstructured spectral element formulation; multiple electric fields; Chemical and biological sensors; Chemical elements; Electrokinetics; Finite difference methods; Fluid flow control; Force control; Geometry; Medical control systems; Microfluidics; Pumps;
Journal_Title :
Microelectromechanical Systems, Journal of