• DocumentCode
    3007054
  • Title

    Novel Configuration for an AC Electroosmotic Pump Driven by AC Voltage with DC Voltage Bias for Bi-Directionality and Increased Volumetric Flow Rates

  • Author

    Stoterau, Shane ; Ciocanel, Constantin ; Islam, Nazmul ; Kipple, Allison

  • Author_Institution
    Dept. of Mech. Eng., Northern Arizona Univ., Flagstaff, AZ, USA
  • fYear
    2010
  • fDate
    June 28 2010-July 1 2010
  • Firstpage
    1
  • Lastpage
    6
  • Abstract
    This paper discusses the principle of AC electroosmosis and its use to move the bulk of an electrically conducting fluid in a micro-channel as an alternative to mechanical pumping methods. Previous EO driven flow research [1-3] has looked at the effect of electrode asymmetry and transverse traveling wave forms on the performance of electroosmotic pumps. This paper presents an analysis that was conducted to assess the effect of combining an AC signal with a DC bias when generating the electric field needed to impart electroosmosis within a micro-channel [4]. The analysis was done using COMSOL 3.5a in which previously developed equations [1-2] were embedded and used to evaluate the effects of the frequency of excitation, electrode array geometry, and the AC signal with a DC bias on the flow imparted on an electrically conducting fluid. A single type of fluid was simulated to date. For the AC driven flow, the simulation results indicate the existence of an optimized frequency of excitation and an optimum geometry that lead to the maximum net forward flow of the pump. For a specified set of constants [electric conductivity (2.1 mS/m), lagging electrode width (220 μm), micro-channel height (200 μm), applied AC voltage (0.25 V), electrode array gap (290 μm), and etc], the optimum frequency was 250 Hz and the optimum geometry consisted of a preceding electrode width of 60 μm with an inter electrode gap of 30 μm. No relevant net flows were generated with the asymmetric electrode arrays with a constant magnitude of AC voltage applied to both electrodes. However, superimposing a DC signal over the AC signal on the same asymmetric electrode array lead to a noticeable net forward flow of 18.70 μL/min. Experimental flow measurements were performed on several pump configurations manufactured using typical MEMS fabrication techniques. The experimental results are in good agreement with the simulation data. They confirm that using an - - asymmetric electrode array excited by an AC signal with a DC bias leads to a significant improvement in flow rates in comparison to the flow rates obtained in an asymmetric electrode array configuration excited just with an AC signal.
  • Keywords
    electrophoresis; microchannel flow; micropumps; osmosis; AC electroosmotic pump; COMSOL 3.5a; DC voltage bias; MEMS fabrication; applied AC voltage; asymmetric electrode array; electric conductivity; electrode array gap; electrode array geometry; electrode asymmetry; excitation frequency; lagging electrode width; mechanical pumping; microchannel height; transverse traveling wave; volumetric flow rates; AC generators; Bidirectional control; DC generators; Electrodes; Electrooptic effects; Frequency; Geometry; Pumps; Signal analysis; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Micro/Nano Symposium (UGIM), 2010 18th Biennial University/Government/Industry
  • Conference_Location
    West Lafayette, IN
  • ISSN
    0749-6877
  • Print_ISBN
    978-1-4244-4731-2
  • Electronic_ISBN
    0749-6877
  • Type

    conf

  • DOI
    10.1109/UGIM.2010.5508900
  • Filename
    5508900