3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine
Aircraft emissions contribute to global climate change and regional air pollution near airports. Understanding the formation and the transformation of emissions in the aircraft engine is essential to properly quantify the environmental impact and air pollution. However, precise investigation of chem...
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doaj-5f4a99ee68df496b98ba8ad42939d8ea2020-11-25T02:13:41ZengElsevierPropulsion and Power Research2212-540X2020-03-01911143D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engineTrung Hieu Nguyen0Phuong Nguyen-Tri1Francois Garnier2Department of Mechanical Engineering, École de Technologie Supérieure (ETS), Montreal, Quebec, H3C 1K3, Canada; Corresponding author.Institute of Research and Development, Duy Tan University, Da Nang, 550000, Viet Nam; Department of Chemistry, Biochemistry and Physics, Université du Québec à Trois-Rivières, University of Quebec, Trois-Rivières, Québec, G9A 5H7, Canada; Corresponding author.Department of Mechanical Engineering, École de Technologie Supérieure (ETS), Montreal, Quebec, H3C 1K3, CanadaAircraft emissions contribute to global climate change and regional air pollution near airports. Understanding the formation and the transformation of emissions in the aircraft engine is essential to properly quantify the environmental impact and air pollution. However, precise investigation of chemical process in the turbine is challenging because of the complexity of the transformation process in the complex flow relating to the moving blade at high temperature and high pressure. We present here, the first published model study of 3D chemical formations inside a high-pressure turbine and first time to compare three numerical solutions (1D, 2D and 3D calculations) of transformation of trace species inside an aircraft engine. The model has simulated the evolution of principal precursor pollutant gases (NOx and SOx) and other species (hydrogen, oxygen species and carbon oxides). Our results also indicated strong dissimilarities in chemical transformations of 3D calculations. In comparing the three solutions, the results obtained showed that the difference of mole fractions of species can be under predicted by 75% between 1D and 2D calculations and in the comparison of 2D and 3D calculation, the under predicted difference may be 90%. Keywords: Gaseous pollutants, High-pressure turbine, Aircraft engine, 3D modelinghttp://www.sciencedirect.com/science/article/pii/S2212540X20300031 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Trung Hieu Nguyen Phuong Nguyen-Tri Francois Garnier |
spellingShingle |
Trung Hieu Nguyen Phuong Nguyen-Tri Francois Garnier 3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine Propulsion and Power Research |
author_facet |
Trung Hieu Nguyen Phuong Nguyen-Tri Francois Garnier |
author_sort |
Trung Hieu Nguyen |
title |
3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
title_short |
3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
title_full |
3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
title_fullStr |
3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
title_full_unstemmed |
3D modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
title_sort |
3d modeling of transformation of gaseous pollutants in the high-pressure turbine of an aircraft engine |
publisher |
Elsevier |
series |
Propulsion and Power Research |
issn |
2212-540X |
publishDate |
2020-03-01 |
description |
Aircraft emissions contribute to global climate change and regional air pollution near airports. Understanding the formation and the transformation of emissions in the aircraft engine is essential to properly quantify the environmental impact and air pollution. However, precise investigation of chemical process in the turbine is challenging because of the complexity of the transformation process in the complex flow relating to the moving blade at high temperature and high pressure. We present here, the first published model study of 3D chemical formations inside a high-pressure turbine and first time to compare three numerical solutions (1D, 2D and 3D calculations) of transformation of trace species inside an aircraft engine. The model has simulated the evolution of principal precursor pollutant gases (NOx and SOx) and other species (hydrogen, oxygen species and carbon oxides). Our results also indicated strong dissimilarities in chemical transformations of 3D calculations. In comparing the three solutions, the results obtained showed that the difference of mole fractions of species can be under predicted by 75% between 1D and 2D calculations and in the comparison of 2D and 3D calculation, the under predicted difference may be 90%. Keywords: Gaseous pollutants, High-pressure turbine, Aircraft engine, 3D modeling |
url |
http://www.sciencedirect.com/science/article/pii/S2212540X20300031 |
work_keys_str_mv |
AT trunghieunguyen 3dmodelingoftransformationofgaseouspollutantsinthehighpressureturbineofanaircraftengine AT phuongnguyentri 3dmodelingoftransformationofgaseouspollutantsinthehighpressureturbineofanaircraftengine AT francoisgarnier 3dmodelingoftransformationofgaseouspollutantsinthehighpressureturbineofanaircraftengine |
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