DocumentCode :
1310596
Title :
Design Factors for \\hbox {NO}_{\\rm x} Reduction in Nitrogen Plasma
Author :
Mihalcioiu, Adrian ; Yoshida, Keiichiro ; Okubo, Masaaki ; Kuroki, Tomoyuki ; Yamamoto, Toshiaki
Author_Institution :
Dept. of Power & Energy Syst., SUPELEC, Gif-sur-Yvette, France
Volume :
46
Issue :
6
fYear :
2010
Firstpage :
2151
Lastpage :
2156
Abstract :
The aim of this paper is to analyze the influence of plasma discharge reactor unit geometries on the efficiency of dry NOx reduction process in nitrogen plasma environments. The experimental setup consists of the versatile plasma discharge reactor unit powered by 10-kHz pulse HV supply and supplied by mass flow controllers with a simulated (NO + N2) gas under different concentrations and flowing rates. The measurements are obtained by means of a gas analyzer for NO/NOx concentration and a digital oscilloscope supplied with HV and current probes for discharge power computation. The number of surface discharge electrodes, the distance between them, their active area, the gas flow rate, and concentration are studied while aiming at 30 g(NO2)/kWh energy efficiency and higher reduction efficiencies. These targets are the keys to industrial application of plasma discharge reactor, as a way of reducing NOx from the regeneration phase in the next generation diesel exhaust after treatment system, and the results proved successful.
Keywords :
diesel engines; exhaust systems; nitrogen compounds; plasma chemistry; plasma flow; plasma probes; reduction (chemical); surface discharges; HV supply; NO/NOx concentration; NOx; active area; current probes; design factors; diesel exhaust after-treatment system; digital oscilloscope; discharge power computation; dry nitrogen oxide reduction process; energy efficiency; frequency 10 kHz; gas analyzer; gas flow rate; industrial application; mass flow controllers; nitrogen plasma environments; plasma discharge reactor unit geometries; reduction efficiencies; regeneration phase; simulated gas; surface discharge electrodes; versatile plasma discharge reactor unit; Discharges; Electrodes; Energy efficiency; Inductors; Nitrogen plasma; Plasmas; Surface discharges; $hbox{NO}_{rm x}$; Diesel exhaust aftertreatment system; nitrogen plasma; reactor geometry surface discharge;
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2010.2071110
Filename :
5560797
Link To Document :
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