• DocumentCode
    1535887
  • Title

    Experimental investigation of droplet formation mechanisms by electrostatic dispersion in a liquid-liquid system

  • Author

    Sato, Masayuki ; Hatori, Toshihiro ; Saito, Masahiro

  • Author_Institution
    Dept. of Biol. & Chem. Eng., Gunma Univ., Japan
  • Volume
    33
  • Issue
    6
  • fYear
    1997
  • Firstpage
    1527
  • Lastpage
    1534
  • Abstract
    Droplets having high uniformity and a widely controllable size range (from millimeters to micrometers) were obtained by means of electrostatic dispersion in an oil-in-water system, as reported previously by the authors. In liquid in-gas systems, many studies reported that the electrostatic force acting on the liquid due to the surface charge seemed to be the main factor affecting the atomization. However, using distilled water as a continuous-phase liquid causes the theoretical analysis to be very difficult, because distilled water has high conductivity and permittivity. Therefore, in the present study, experimental work is carried out on dispersion mechanisms in an oil-in-water system. The main factor affecting the atomization is considered to be electrohydrodynamic flow of continuous-phase liquid (distilled water) around the capillary nozzle tip. The amount of electric charge on the dispersed-phase liquid (kerosene) is considered to be negligible because of the very short relaxation time of the surrounding continuous-phase liquid. It is suggested that the droplet size and frequency distribution can be controlled by adjusting the operating conditions (applied voltage) and design parameters (nozzle shape)
  • Keywords
    disperse systems; dissociation; drops; electrical conductivity; electrohydrodynamics; electrostatic devices; electrostatics; nozzles; permittivity; sprays; two-phase flow; atomization; capillary nozzle tip; continuous-phase liquid; dispersed-phase liquid; dispersion mechanisms; distilled water; droplet formation mechanisms; droplet size; electrohydrodynamic flow; electrohydrodynamics; electrostatic dispersion; electrostatic force; frequency distribution; high conductivity; high permittivity; high uniformity; kerosene; liquid in-gas systems; liquid-liquid system; oil-in-water system; surface charge; very short relaxation time; Conductivity; Control systems; Electrohydrodynamics; Electrostatics; Fluid flow; Frequency; Permittivity; Shape control; Size control; Voltage control;
  • fLanguage
    English
  • Journal_Title
    Industry Applications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-9994
  • Type

    jour

  • DOI
    10.1109/28.649965
  • Filename
    649965