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Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions

[Image: see text] Diesel particulate matter (DPM) and oxides of nitrogen (NOx) are the emissions from diesel engines (compression ignition engines) of the most concern and are currently strictly regulated. In this work, we present an alternative diesel emission control technique to assist in further...

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Autores principales: Wongchang, Thawatchai, Sittichompoo, Sak, Theinnoi, Kampanart, Sawatmongkhon, Boonlue, Jugjai, Sumrerng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8375093/
https://www.ncbi.nlm.nih.gov/pubmed/34423226
http://dx.doi.org/10.1021/acsomega.1c03633
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author Wongchang, Thawatchai
Sittichompoo, Sak
Theinnoi, Kampanart
Sawatmongkhon, Boonlue
Jugjai, Sumrerng
author_facet Wongchang, Thawatchai
Sittichompoo, Sak
Theinnoi, Kampanart
Sawatmongkhon, Boonlue
Jugjai, Sumrerng
author_sort Wongchang, Thawatchai
collection PubMed
description [Image: see text] Diesel particulate matter (DPM) and oxides of nitrogen (NOx) are the emissions from diesel engines (compression ignition engines) of the most concern and are currently strictly regulated. In this work, we present an alternative diesel emission control technique to assist in further emission reduction. An experiment-oriented study on diesel engine emission abatement using low-power, low-frequency, high-voltage discharge (HVD) treatment was carried out in a laboratory-scale reactor with whole diesel engine exhaust gas. A dielectric barrier discharge (DBD) reactor was used in direct contact with diesel exhaust gas at atmospheric temperature with an input energy density between 200 and 400 J/L. An investigation of the direct effect of the high-voltage discharge reactor on the diesel exhaust gas treatment was carried out to characterize both diesel particle and gaseous emissions. The proposed HVD system demonstrated up to 95% particulate matter reduction by mass or 64% reduction by number, and 63% reduction of the diesel soot particle geometrical mean diameter by HVD-generated O(3) oxidation. Thermogravimetric analysis revealed the significant change in the diesel soot compositions and oxidation characteristics. HVD-treated particulate matter demonstrated a lower reactivity in comparison to untreated soot. Gas composition analysis indicated the generation of free radicals (e, O, OH, O(3), and N) by the HVD system, as mainly indicated by the increase of the NO(2)/NO ratio and concentration of CO and O(2). The pattern of CO(2) reduction while CO and O(2) increased indicated the dissociation of CO(2) by HVD. Free radicals generated by HVD directly affected DeNO, DeNOx, NO(2)/NO ratio, and CO and CO(2) selectivities.
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spelling pubmed-83750932021-08-20 Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions Wongchang, Thawatchai Sittichompoo, Sak Theinnoi, Kampanart Sawatmongkhon, Boonlue Jugjai, Sumrerng ACS Omega [Image: see text] Diesel particulate matter (DPM) and oxides of nitrogen (NOx) are the emissions from diesel engines (compression ignition engines) of the most concern and are currently strictly regulated. In this work, we present an alternative diesel emission control technique to assist in further emission reduction. An experiment-oriented study on diesel engine emission abatement using low-power, low-frequency, high-voltage discharge (HVD) treatment was carried out in a laboratory-scale reactor with whole diesel engine exhaust gas. A dielectric barrier discharge (DBD) reactor was used in direct contact with diesel exhaust gas at atmospheric temperature with an input energy density between 200 and 400 J/L. An investigation of the direct effect of the high-voltage discharge reactor on the diesel exhaust gas treatment was carried out to characterize both diesel particle and gaseous emissions. The proposed HVD system demonstrated up to 95% particulate matter reduction by mass or 64% reduction by number, and 63% reduction of the diesel soot particle geometrical mean diameter by HVD-generated O(3) oxidation. Thermogravimetric analysis revealed the significant change in the diesel soot compositions and oxidation characteristics. HVD-treated particulate matter demonstrated a lower reactivity in comparison to untreated soot. Gas composition analysis indicated the generation of free radicals (e, O, OH, O(3), and N) by the HVD system, as mainly indicated by the increase of the NO(2)/NO ratio and concentration of CO and O(2). The pattern of CO(2) reduction while CO and O(2) increased indicated the dissociation of CO(2) by HVD. Free radicals generated by HVD directly affected DeNO, DeNOx, NO(2)/NO ratio, and CO and CO(2) selectivities. American Chemical Society 2021-08-06 /pmc/articles/PMC8375093/ /pubmed/34423226 http://dx.doi.org/10.1021/acsomega.1c03633 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Wongchang, Thawatchai
Sittichompoo, Sak
Theinnoi, Kampanart
Sawatmongkhon, Boonlue
Jugjai, Sumrerng
Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title_full Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title_fullStr Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title_full_unstemmed Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title_short Impact of High-Voltage Discharge After-Treatment Technology on Diesel Engine Particulate Matter Composition and Gaseous Emissions
title_sort impact of high-voltage discharge after-treatment technology on diesel engine particulate matter composition and gaseous emissions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8375093/
https://www.ncbi.nlm.nih.gov/pubmed/34423226
http://dx.doi.org/10.1021/acsomega.1c03633
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