Sulfur Deactivation of NOx Storage Catalysts: A Multiscale Modeling Approach
Lean NOx Trap (LNT) catalysts, a promising solution for reducing the noxious nitrogen oxide emissions from the lean burn and Diesel engines, are technologically limited by the presence of sulfur in the exhaust gas stream. Sulfur stemming from both fuels and lub...
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doaj-032cfd8e3bf745a38fcc1685ee185dac2021-02-02T06:11:29ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892013-09-01686995100510.2516/ogst/2013123ogst120017Sulfur Deactivation of NOx Storage Catalysts: A Multiscale Modeling ApproachRankovic N.Chizallet C.0Nicolle A.1Berthout D.2Da Costa P.3IFP Energies nouvellesIFP Energies nouvellesIFP Energies nouvellesInstitut Jean Le Rond d’Alembert, Université Pierre et Marie Curie, UPMC Paris 6, CNRS UMR 7190 Lean NOx Trap (LNT) catalysts, a promising solution for reducing the noxious nitrogen oxide emissions from the lean burn and Diesel engines, are technologically limited by the presence of sulfur in the exhaust gas stream. Sulfur stemming from both fuels and lubricating oils is oxidized during the combustion event and mainly exists as SOx (SO2 and SO3) in the exhaust. Sulfur oxides interact strongly with the NOx trapping material of a LNT to form thermodynamically favored sulfate species, consequently leading to the blockage of NOx sorption sites and altering the catalyst operation. Molecular and kinetic modeling represent a valuable tool for predicting system behavior and evaluating catalytic performances. The present paper demonstrates how fundamental ab initio calculations can be used as a valuable source for designing kinetic models developed in the IFP Exhaust library, intended for vehicle simulations. The concrete example we chose to illustrate our approach was SO3 adsorption on the model NOx storage material, BaO. SO3 adsorption was described for various sites (terraces, surface steps and kinks and bulk) for a closer description of a real storage material. Additional rate and sensitivity analyses provided a deeper understanding of the poisoning phenomena. http://dx.doi.org/10.2516/ogst/2013123 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rankovic N. Chizallet C. Nicolle A. Berthout D. Da Costa P. |
spellingShingle |
Rankovic N. Chizallet C. Nicolle A. Berthout D. Da Costa P. Sulfur Deactivation of NOx Storage Catalysts: A Multiscale Modeling Approach Oil & Gas Science and Technology |
author_facet |
Rankovic N. Chizallet C. Nicolle A. Berthout D. Da Costa P. |
author_sort |
Rankovic N. |
title |
Sulfur Deactivation of NOx Storage Catalysts: A
Multiscale Modeling Approach |
title_short |
Sulfur Deactivation of NOx Storage Catalysts: A
Multiscale Modeling Approach |
title_full |
Sulfur Deactivation of NOx Storage Catalysts: A
Multiscale Modeling Approach |
title_fullStr |
Sulfur Deactivation of NOx Storage Catalysts: A
Multiscale Modeling Approach |
title_full_unstemmed |
Sulfur Deactivation of NOx Storage Catalysts: A
Multiscale Modeling Approach |
title_sort |
sulfur deactivation of nox storage catalysts: a
multiscale modeling approach |
publisher |
EDP Sciences |
series |
Oil & Gas Science and Technology |
issn |
1294-4475 1953-8189 |
publishDate |
2013-09-01 |
description |
Lean NOx Trap (LNT) catalysts, a promising solution for
reducing the noxious nitrogen oxide emissions from the lean burn and Diesel engines, are
technologically limited by the presence of sulfur in the exhaust gas stream. Sulfur
stemming from both fuels and lubricating oils is oxidized during the combustion event and
mainly exists as SOx (SO2 and SO3) in
the exhaust. Sulfur oxides interact strongly with the NOx
trapping material of a LNT to form thermodynamically favored sulfate species, consequently
leading to the blockage of NOx sorption sites and altering the
catalyst operation. Molecular and kinetic modeling represent a valuable tool for
predicting system behavior and evaluating catalytic performances. The present paper
demonstrates how fundamental ab initio calculations can be used as a valuable source for
designing kinetic models developed in the IFP Exhaust library, intended for vehicle
simulations. The concrete example we chose to illustrate our approach was SO3
adsorption on the model NOx storage material, BaO.
SO3 adsorption was described for various sites (terraces, surface steps and
kinks and bulk) for a closer description of a real storage material. Additional rate and
sensitivity analyses provided a deeper understanding of the poisoning phenomena.
|
url |
http://dx.doi.org/10.2516/ogst/2013123 |
work_keys_str_mv |
AT rankovicn sulfurdeactivationofnoxstoragecatalystsamultiscalemodelingapproach AT chizalletc sulfurdeactivationofnoxstoragecatalystsamultiscalemodelingapproach AT nicollea sulfurdeactivationofnoxstoragecatalystsamultiscalemodelingapproach AT berthoutd sulfurdeactivationofnoxstoragecatalystsamultiscalemodelingapproach AT dacostap sulfurdeactivationofnoxstoragecatalystsamultiscalemodelingapproach |
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