DocumentCode
1538764
Title
Removal of nitric oxide in flue gases by multi-point to plane dielectric barrier discharge
Author
Takaki, Koichi ; Jani, Muaffaq A. ; Fujiwara, Tamiya
Author_Institution
Dept. of Electr. & Electron. Eng., Iwate Univ., Morioka, Japan
Volume
27
Issue
4
fYear
1999
fDate
8/1/1999 12:00:00 AM
Firstpage
1137
Lastpage
1145
Abstract
An experimental study on the removal of NOx in flue gas has been carried out using plasma chemical reactions in a dielectric barrier discharge. A multipoint-to-plane geometry is used for the electrode used to lower the operating voltage. The effect of the multipoint electrode configuration on the characteristics of a discharge and NOx removal has been investigated. Plasma is produced in a narrow gap by a dielectric barrier discharge at low applied voltage with sinusoidal waveform of 23 kV rms. Specific energy to reduce NO is 63 eV. Electric energy consumed in the discharge increases linearly with area of multipoint electrode, and is approximately 1 μJ/point at 2.7 kV. In regard to the multipoint electrode configuration, the consumed energy can be increased by reducing the angle of the point. However, the energy efficiency of NO removal becomes small if the point angle is small. It also decreases with reducing the number of points per unit area. In regard to treatment of exhaust gas from a diesel engine generator (20 kVA), NO can be almost completely depleted by the multipoint-to-plane barrier discharge for electrical load below 35% of the rated output
Keywords
discharges (electric); nitrogen compounds; plasma chemistry; plasma temperature; 2 to 3 kV; 63 eV; NO; NO depletion; NOx removal; dielectric barrier discharge; diesel engine generator; discharge characteristics; electric energy; electrical load; energy efficiency; exhaust gas; flue gas treatment; flue gases; low applied voltage; multi-point to plane dielectric barrier discharge; multipoint electrode; multipoint electrode configuration; multipoint-to-plane geometry; nitric oxide removal; operating voltage; plasma chemical reactions; silent discharge; sinusoidal waveform; streamer; Chemicals; Dielectrics; Electrodes; Energy efficiency; Flue gases; Geometry; Low voltage; Plasma chemistry; Plasma properties; Plasma waves;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.782294
Filename
782294
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