1. Case study of a modern lean-burn methane combustion catalyst for automotive applications: What are the deactivation and regeneration mechanisms?
- Author
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Kinnunen, Niko M., Hirvi, Janne T., Kallinen, Kauko, Maunula, Teuvo, Keenan, Matthew, and Suvanto, Mika
- Subjects
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METHANE , *OXIDATION , *ACTIVATION (Chemistry) , *REACTION mechanisms (Chemistry) , *CARBON dioxide , *NATURAL gas , *WATER vapor - Abstract
One way to lower CO 2 and other harmful emissions of the transportation sector is the development of natural gas fueled vehicles. Availability of natural gas is good, and it is easy to apply to stoichiometric and lean-burn engines, which makes it ready-to-use technology. The main concern in the field is a sulfur poisoning of the exhaust gas after treatment system. We aim to clarify mechanisms of sulfur poisoning and regeneration of a lean-burn methane oxidation catalyst. Overall, it is concluded that sulfur itself is not the only reason for the deactivation of methane oxidation catalyst, but it is a joint effect of water vapor and sulfur species. The irreversible sulfur poisoning deteriorates oxygen mobility and hinders water desorption, which inhibits low temperature methane oxidation activity. The regeneration of sulfur poisoned catalyst takes place stepwise: PdSO 4 → PdSO 3 + 0.5O 2 → Pd + SO 2 + 0.5O 2 . The formation of metallic palladium makes the catalyst vulnerable for sintering, which leads to deactivation during long-term regeneration. [ABSTRACT FROM AUTHOR]
- Published
- 2017
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