Electrohydrodynamic Precipitator Flow with a Barbed Plate Discharge Electrode
Open Access
- 1 January 1990
- journal article
- research article
- Published by Taylor & Francis in Aerosol Science and Technology
- Vol. 12 (2) , 319-334
- https://doi.org/10.1080/02786829008959350
Abstract
The nonuniform corona discharge in the wire-plate electrostatic precipitator results in a rotational electric body force which is a source of large-scale secondary flows and turbulence within the flow channel. The electrically induced flow causes large increases in diffusivities detrimental to the particle collection process. Since the electrode geometry and the structure of the corona discharge define the magnitude and character of the electric body force, it is theoretically possible to design a discharge electrode which minimizes electrohydrodynamic flow disturbances. As a first step in this direction, a novel planar electrode design in which electrical discharges are configured to reduce the inhomogeneities of the electric body force is experimentally studied in a negative polarity laboratory electrostatic precipitator. Hot-film anemometer measurements of the electrohydrodynamic turbulent velocity field downstream of the plate electrode are compared to those of a conventional wire-plate precipitator. Results confirm that electrode geometry has a significant role in turbulence production. Although there is some evidence that secondary flows are reduced in the planar geometry, spectral analysis of the flow downstream of the electrodes indicate that the barbed plate design increases turbulence intensity as much as 50% without reducing eddy size. Continued experimentation is necessary to fully assess the possible benefits of such a design.Keywords
This publication has 10 references indexed in Scilit:
- The Electrohydrodynamic Origin of Turbulence in Electrostatic PrecipitatorsIEEE Transactions on Industry Applications, 1987
- Numerical Simulation of Three-Dimensional Tuft Corona and ElectrohydrodynamicsIEEE Transactions on Industry Applications, 1986
- Turbulence generation by electric body forcesExperiments in Fluids, 1986
- The Fluid Mechanics of Electrostatic PrecipitatorsAerosol Science and Technology, 1985
- Effect of secondary flows and turbulence on electrostatic precipitator efficiencyAtmospheric Environment (1967), 1984
- An experimental study of the electrohydrodynamic flow in electrostatic precipitatorsJournal of Fluid Mechanics, 1983
- Experimental study of the effect of turbulent diffusion on precipitator efficiencyJournal of Aerosol Science, 1982
- Electrohydrodynamics in an electrostatic precipitatorJournal of Fluid Mechanics, 1981
- Particle transport in electrostatic precipitatorsAtmospheric Environment (1967), 1980
- Electrohydrodynamic Secondary FlowPhysics of Fluids, 1969