• DocumentCode
    1699640
  • Title

    A novel electrokinetic micromixer

  • Author

    Hsin-Yu Wu ; Cheng-Hsien Liu

  • Author_Institution
    Dept. of Power Mech. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
  • Volume
    1
  • fYear
    2003
  • Firstpage
    631
  • Abstract
    A novel microfluidic mixer based on the modulation of /spl zeta/-potential is proposed and demonstrated successfully. In contrast to previous micromixer work from other groups, this micromixer does not need complex three-dimensional serpentine microstructure or external pumps to generate chaotic advection pulsatile flow. The mathematical models for /spl zeta/-potential variation, induced pressure distribution, volumetric flow rate, and the velocity profile in a rectangular cross-section microchannel is derived and show the mixing effect of varying /spl zeta/-potential. Numerical simulation results utilizing CFD-ACE+ indicate the good mixing efficiency for our micromixer design with asymmetric herringbone electrodes and periodic voltage control. The microfabrication process for our electrokinetic micromixer has been developed successfully. Experimental results demonstrate a great mixing enhancement via our microfluidic mixer. Our electrokinetic micromixer design can induce complex flow fields easily to enhance the mixing effect by appropriate modulations of the /spl zeta/-potential. The work reported here considers for the first time temporal/spatial /spl zeta/-potential modulation for microfluidic mixer applications.
  • Keywords
    chaos; electrodes; electrokinetic effects; flow simulation; microfluidics; micropumps; mixing; numerical analysis; /spl zeta/-potential modulation; chaotic advection pulsatile flow; electrokinetic micromixer; herringbone electrodes; mathematical models; microfluidic mixer; microfluidic mixer applications; numerical simulation; periodic voltage control; pressure distribution; pumps; rectangular cross-section microchannel; three-dimensional serpentine microstructure; velocity profile; volumetric flow rate; Actuators; Chaos; Electrokinetics; Fluid flow control; Mathematical model; Mechanical engineering; Microchannel; Microfluidics; Navier-Stokes equations; Numerical simulation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    TRANSDUCERS, Solid-State Sensors, Actuators and Microsystems, 12th International Conference on, 2003
  • Conference_Location
    Boston, MA, USA
  • Print_ISBN
    0-7803-7731-1
  • Type

    conf

  • DOI
    10.1109/SENSOR.2003.1215552
  • Filename
    1215552