• DocumentCode
    1082339
  • Title

    Modeling the fluid dynamics of electrowetting on dielectric (EWOD)

  • Author

    Walker, Shawn W. ; Shapiro, Benjamin

  • Author_Institution
    Dept. of Aerosp. Eng., Maryland Univ., College Park, MD
  • Volume
    15
  • Issue
    4
  • fYear
    2006
  • Firstpage
    986
  • Lastpage
    1000
  • Abstract
    This paper discusses the modeling and simulation of a parallel-plate Electrowetting On Dielectric (EWOD) device that moves fluid droplets through surface tension effects. We model the fluid dynamics by using Hele-Shaw type equations with a focus on including the relevant boundary phenomena. Specifically, we show that contact angle saturation and hysteresis are needed to predict the correct shape and time scale of droplet motion. We demonstrate this by comparing our simulation to experimental data for a splitting droplet. Without these boundary effects, the simulation shows the droplet splitting into three pieces instead of two and the motion is over 15 times faster than the experiment. We then show how including the saturation characteristics of the device, and a simple model of contact angle hysteresis, allows the simulation to better predict the splitting experiment. The match is not perfect and suffers mainly because contact line pinning is not included. This is followed by a comparison between our simulation, whose parameters are now frozen, and a new experiment involving bulk droplet motion. Our numerical implementation uses the level set method, is fast, and is being used to design algorithms for the precise control of microdroplet motion, mixing, and splitting
  • Keywords
    electrochemistry; fluid dynamics; microfluidics; surface tension; wetting; EWOD; Hele-Shaw type equations; boundary phenomena; bulk droplet motion; contact angle hysteresis; contact angle saturation; dielectric device; electrowetting; fluid droplets; fluid dynamics; splitting droplet; surface tension effects; Algorithm design and analysis; Dielectric devices; Equations; Fluid dynamics; Hysteresis; Level set; Motion control; Predictive models; Shape; Surface tension; Control; electrowetting; level set method; microfluidics; modeling; two-phase flow;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2006.878876
  • Filename
    1668195