DocumentCode
1106487
Title
Three-dimensional (3-D) model of electric field and space charge in the barbed plate-to-plate precipitator
Author
Davidson, Jane H. ; McKinney, Peter J. ; Linnebur, Paul
Author_Institution
Dept. of Mech. Eng., Minnesota Univ., Minneapolis, MN, USA
Volume
32
Issue
4
fYear
1996
Firstpage
858
Lastpage
866
Abstract
A finite-element/method-of-characteristics model of three-dimensional (3-D) electrode geometries with corona discharge is used to predict space charge density, current density, electric potential and electric field in point-to-plane, single-barb plate-to-plane, and hexagonal multiple-barbed plate-to-plate electrostatic precipitator (ESP) geometries. Although a modification of Peek´s formula for the hyperboid-to-plane was initially used to establish a boundary condition at the edge of the corona, predicted total current did not agree with measured values. As a result, it was necessary to use measured current-voltage characteristics to establish the space charge density at the outer surface of the corona sheath. An additional problem in modeling point discharges is specification of shape and size of the corona sheath. Both the authors´ results and much earlier work by Trichel suggest that the thickness of the corona sheath cannot be automatically neglected
Keywords
corona; current density; electric fields; electrodes; electrostatic precipitators; finite element analysis; space charge; 3D model; Peek´s formula; barbed plate-to-plate ESP; boundary condition; corona discharge; corona sheath; current density; current-voltage characteristics; electric field; electric potential; electrode geometries; electrostatic precipitator; finite-element method; method-of-characteristics; point discharges modelling; space charge density; Corona; Current measurement; Electrodes; Electrostatic measurements; Electrostatic precipitators; Finite element methods; Geometry; Predictive models; Solid modeling; Space charge;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/28.511642
Filename
511642
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