Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.

Non-thermal plasma (NTP) has been introduced over the last few years as a promising after- treatment system for nitrogen oxides and particulate matter removal from diesel exhaust. NTP technology has not been commercialised as yet, due to its high rate of energy consumption. Therefore, it is importan...

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Main Authors: Pouyan Talebizadeh, Hassan Rahimzadeh, Meisam Babaie, Saeed Javadi Anaghizi, Hamidreza Ghomi, Goodarz Ahmadi, Richard Brown
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4619676?pdf=render
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spelling doaj-e70dbeb84a8c46d194006099b096cf492020-11-24T21:56:15ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-011010e014089710.1371/journal.pone.0140897Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.Pouyan TalebizadehHassan RahimzadehMeisam BabaieSaeed Javadi AnaghiziHamidreza GhomiGoodarz AhmadiRichard BrownNon-thermal plasma (NTP) has been introduced over the last few years as a promising after- treatment system for nitrogen oxides and particulate matter removal from diesel exhaust. NTP technology has not been commercialised as yet, due to its high rate of energy consumption. Therefore, it is important to seek out new methods to improve NTP performance. Residence time is a crucial parameter in engine exhaust emissions treatment. In this paper, different electrode shapes are analysed and the corresponding residence time and NOx removal efficiency are studied. An axisymmetric laminar model is used for obtaining residence time distribution numerically using FLUENT software. If the mean residence time in a NTP plasma reactor increases, there will be a corresponding increase in the reaction time and consequently the pollutant removal efficiency increases. Three different screw thread electrodes and a rod electrode are examined. The results show the advantage of screw thread electrodes in comparison with the rod electrode. Furthermore, between the screw thread electrodes, the electrode with the thread width of 1 mm has the highest NOx removal due to higher residence time and a greater number of micro-discharges. The results show that the residence time of the screw thread electrode with a thread width of 1 mm is 21% more than for the rod electrode.http://europepmc.org/articles/PMC4619676?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Pouyan Talebizadeh
Hassan Rahimzadeh
Meisam Babaie
Saeed Javadi Anaghizi
Hamidreza Ghomi
Goodarz Ahmadi
Richard Brown
spellingShingle Pouyan Talebizadeh
Hassan Rahimzadeh
Meisam Babaie
Saeed Javadi Anaghizi
Hamidreza Ghomi
Goodarz Ahmadi
Richard Brown
Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
PLoS ONE
author_facet Pouyan Talebizadeh
Hassan Rahimzadeh
Meisam Babaie
Saeed Javadi Anaghizi
Hamidreza Ghomi
Goodarz Ahmadi
Richard Brown
author_sort Pouyan Talebizadeh
title Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
title_short Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
title_full Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
title_fullStr Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
title_full_unstemmed Evaluation of Residence Time on Nitrogen Oxides Removal in Non-Thermal Plasma Reactor.
title_sort evaluation of residence time on nitrogen oxides removal in non-thermal plasma reactor.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Non-thermal plasma (NTP) has been introduced over the last few years as a promising after- treatment system for nitrogen oxides and particulate matter removal from diesel exhaust. NTP technology has not been commercialised as yet, due to its high rate of energy consumption. Therefore, it is important to seek out new methods to improve NTP performance. Residence time is a crucial parameter in engine exhaust emissions treatment. In this paper, different electrode shapes are analysed and the corresponding residence time and NOx removal efficiency are studied. An axisymmetric laminar model is used for obtaining residence time distribution numerically using FLUENT software. If the mean residence time in a NTP plasma reactor increases, there will be a corresponding increase in the reaction time and consequently the pollutant removal efficiency increases. Three different screw thread electrodes and a rod electrode are examined. The results show the advantage of screw thread electrodes in comparison with the rod electrode. Furthermore, between the screw thread electrodes, the electrode with the thread width of 1 mm has the highest NOx removal due to higher residence time and a greater number of micro-discharges. The results show that the residence time of the screw thread electrode with a thread width of 1 mm is 21% more than for the rod electrode.
url http://europepmc.org/articles/PMC4619676?pdf=render
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