DocumentCode :
832699
Title :
Three-dimensional ionic wind and electrohydrodynamics of tuft/point corona electrostatic precipitator
Author :
Yamamoto, Toshiaki ; Okuda, Miyuki ; Okubo, Masaaki
Author_Institution :
Dept. of Energy Syst. Eng., Osaka Prefecture Univ., Sakai, Japan
Volume :
39
Issue :
6
fYear :
2003
Firstpage :
1602
Lastpage :
1607
Abstract :
The two-dimensional flow interaction between the primary flow and the secondary flow (often called an electric wind or ionic wind) in the wire-duct electrostatic precipitator (ESP) has been investigated theoretically and experimentally in the past. However, the analysis was limited to the two-dimensional, which is acceptable only for the positive polarity and small tuft spacing. The negative corona, commonly used for the industrial ESPs, generates tufts along the corona wire and the point coronas on the discharge wire and requires three-dimensional analysis. Three-dimensional electric field and space-charge density distributions, and the flow interaction between the primary flow and secondary flow, i.e., electrohydrodynamics were investigated. The computational results show that the secondary flow distribution consists of a donut-shaped ring from each tuft or corona point, which was predicted by the first author 16 years ago. When the primary flow exists, a pair of spiral rings, like Goertler vortices, is formed in the direction of the primary flow. The flow interaction was described using dimensionless number NEHD, which is the ratio of the ionic wind velocity to the primary flow velocity. The effects of particle motion in the electrohydrodynamic field in the tuft/point corona ESPs are discussed.
Keywords :
corona; electric fields; electrohydrodynamics; electrostatic precipitators; space charge; vortices; Goertler vortices; dimensionless number; discharge wire; donut-shaped ring; electric field; electric wind; electrohydrodynamics; flow interaction; negative corona; particle motion effects; positive polarity; primary flow; secondary flow; small tuft spacing; space-charge density distributions; spiral rings; three-dimensional analysis; three-dimensional ionic wind; tuft/point corona electrostatic precipitator; wire-duct electrostatic precipitator; Corona; Distributed computing; Electrohydrodynamics; Electrostatic precipitators; Industry Applications Society; Numerical simulation; Power engineering and energy; Systems engineering and theory; Voltage; Wire;
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2003.818983
Filename :
1248242
Link To Document :
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