EFFECT OF BACK CORONA IN A LABORATORY SCALE ELECTROSTATIC PRECIPITATOR.

被引:0
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作者
Patel, Sushil N. [1 ]
Rahmlow Jr., Thomas D. [1 ]
Kjendal, Roy A. [1 ]
Meehan, John J. [1 ]
机构
[1] State Univ of New York, Dep of, Electrical Engineering, Buffalo, NY,, USA, State Univ of New York, Dep of Electrical Engineering, Buffalo, NY, USA
关键词
ELECTRIC CORONA - FLUE GASES - Temperature Measurement - PLATES;
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摘要
Results are presented of a study on the influence of back corona on the performance of a laboratory scale wire-plate precipitator, with the plate to plate spacing as a parameter. Back corona is introduced into the precipitator by increasing the ash resistivity, attained by increasing the ash-laden gas temperature from 21 degree C (a no back discharge condition) to 104 degree C. Performance is evaluated in terms of the Deutsch migration velocity; in addition, particle concentration measurements are made at the inlet and outlet of the precipitator with an optical counter. Results for the four different plate spacings with no back discharge show a time-independent migration velocity and current density, with higher migration velocities for the wider plate spacings. Results with back discharge show an initially rapid decrease in migration velocity with time, accompanied by a rapid increase in the current density, with greater decreases for the wider plate spacings. The behavior of the precipitator with and without back discharge is consistent with the space charge model interpretation of the wide-plate spacing precipitator.
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页码:935 / 938
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