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research article

Adaptive finite elements with large aspect ratio for electroosmotic and pressure-driven microflows

Prachittham, Virabouth
•
Gijs, M. A. M.  
•
Picasso, Marco  
2010
International Journal For Numerical Methods In Fluids

A space–time adaptive method is presented for the numerical simulation of mass transport in electroosmotic and pressure-driven microflows in two space dimensions. The method uses finite elements with large aspect ratio, which allows the electroosmotic flow and the mass transport to be solved accurately despite the presence of strong boundary layers. The unknowns are the external electric potential, the electrical double layer potential, the velocity field and the sample concentration. Continuous piecewise linear stabilized finite elements with large aspect ratio and the Crank–Nicolson scheme are used for the space and time discretization of the concentration equation. Numerical results are presented showing the efficiency of this approach, first in a straight channel, then in crossing and multiple T-form configuration channels.

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Type
research article
DOI
10.1002/fld.2110
Web of Science ID

WOS:000280011900001

Author(s)
Prachittham, Virabouth
Gijs, M. A. M.  
Picasso, Marco  
Date Issued

2010

Publisher

Wiley-Blackwell

Published in
International Journal For Numerical Methods In Fluids
Volume

63

Start page

1005

End page

1030

Subjects

anisotropic mesh adaptation

•

finite elements

•

electroosmotic flow

•

electrokinetic injection techniques

•

microfluidics

•

pressure-driven microflow

•

a posteriori error estimation

•

Electrokinetic Injection Techniques

•

Numerical-Simulation

•

Error Estimator

•

High-Speed

•

Electrophoresis Microchips

•

Tetrahedral Meshes

•

Flow

•

Optimization

•

Channels

•

Devices

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMIS2  
ASN  
Available on Infoscience
July 13, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/41265
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