DocumentCode
1493238
Title
Finite-element analysis of space-charge suppression of electrostatic-induction spray charging
Author
Cooke, J. Robert ; Law, S.Edward
Author_Institution
Dept. of Agric. & Biol. Eng., Cornell Univ., Ithaca, NY, USA
Volume
37
Issue
3
fYear
2001
Firstpage
751
Lastpage
758
Abstract
A finite-element analysis of the space-charge suppression encountered during the electrostatic-induction spray-charging process is presented. This paper provides a theoretical framework in support of the experimental studies reported elsewhere of the space-charge-limiting barriers of nozzle design. Poisson´s equation is solved using a finite-element axisymmetric model consisting of 3704 triangular elements and 1946 nodes for various placements of nearby earthed surfaces. Plots of constant potential surfaces in and around the dielectric embedded-electrode charging nozzle are presented. The axial droplet-charging potential gradient at the tip of the liquid jet (along the axis of symmetry) depends upon both the positive induction electrode potential and upon the presence, and substantially upon the spatial extent of the negatively charged cloud of dispensed droplets
Keywords
drops; electrostatic devices; electrostatics; finite element analysis; nozzles; space charge; sprays; Poisson´s equation; axial droplet-charging potential gradient; axisymmetric model; dielectric embedded-electrode charging nozzle; electrostatic-induction spray charging; finite-element analysis; liquid jet tip; nozzle design; positive induction electrode potential; space-charge suppression; space-charge-limiting barriers; Boundary conditions; Clouds; Dielectrics; Electrodes; Electrostatic analysis; Finite element methods; Induction generators; Poisson equations; Spraying; Surface charging;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/28.924755
Filename
924755
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