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Technical Paper

Thermal and Chemical Deactivation of Three-Way Catalysts: Comparison of Road-, Fuel-Cut and SAI- Aged Catalysts

2015-04-14
2015-01-1000
The objective of this study was to investigate which of the artificial aging cycles available in the automotive industry that causes major deactivation of three-way catalysts (TWCs) and can be used to obtain an aged catalyst similar to the road aged converter (160 000km). Standard bench cycle (SBC) aging with secondary air injection (SAI) covered aging with various mass flows - a flow from three cylinders into one catalyst system and a flow from three cylinders into two parallel connected catalysts. For rapid catalyst bench aging, secondary air injection is a very efficient tool to create exotherms. Furthermore, the effect on catalytic activity of SAI aging with poisons from oil and fuel dopants (P, Ca, Zn) was investigated. The catalysts were thoroughly characterized in light-off and oxygen storage capacity measurements, emission conversion as a function of lambda and load variation was determined.
Technical Paper

A Comparison of Fuel-Cut Ageing during Retardation and Fuel-Cut during Acceleration

2014-04-01
2014-01-1504
The effect of various fuel-cut agings, on a Volvo Cars 4-cylinder gasoline engine, with bimetallic three-way catalysts (TWCs) was examined. Deactivation during retardation fuel-cut (low load) and acceleration fuel-cut (high load, e.g. gearshift or traction control) was compared to aging at λ=1. Three-way catalysts were aged on an engine bench comparing two fuel-cut strategies and their impact on of the life and performance of the catalysts. In greater detail, the catalytic activity, stability and selectivity were studied. Furthermore, the catalysts were thoroughly analyzed using light-off and oxygen storage capacity measurements. The emission conversion as a function of various lambda values and loads was also determined. Fresh and 40-hour aged samples showed that the acceleration fuel-cut was the strategy that had the highest contribution towards the total deactivation of the catalyst system.
Technical Paper

Fuel-Cut Based Rapid Aging of Commercial Three Way Catalysts - Influence of Fuel-Cut Frequency, Duration and Temperature on Catalyst Activity

2013-09-08
2013-24-0156
In order to quantify fuel-cut aging effects on commercial bimetallic Pd/Rh three-way catalysts (TWCs), supported on cerium-zirconium promoted alumina, full-size automotive catalysts were exposed to accelerated fuel-cut aging on an engine test bench, with a variation in temperature, fuel-cut frequency and fuel-cut duration. After aging, samples of the catalysts were tested in a laboratory environment for Light-off temperature (T50), Specific surface area (BET), Dispersion of noble metals and changes in the oxidation state of Pd and Rh. The catalytic tests showed clear deactivation of the aged samples and influence on the TWC's properties. The light off temperature and noble metal dispersion were found to be a clear function of oxygen exposure to the catalysts, i.e. fuel-cut frequency and duration, while the specific surface area was found to be a function of fuel-cut frequency. No changes in oxidation states of Pd and Rh could be detected.
Technical Paper

Methane Production over Three-Way Catalysts in E85-Fuelled Vehicles

2011-04-12
2011-01-0643
Methane production over the three-way catalyst has been observed for E85 (blend of 85% anhydrous ethanol and 15% gasoline)-fuelled vehicles. In order to understand the mechanisms of the methane production, the oxidations of ethanol and acetaldehyde were studied in laboratory flow reactor using commercial three-way catalysts containing Pd/Rh Ce-Zr-O. The influence of H₂O (absence/presence/concentration) and CO (absence/presence) in the gas feed was also studied. In this paper, a mechanism for the production of methane is proposed. As will be shown in the results section, ethanol oxidation over the TWC resulted in partial and total oxidation products (acetaldehyde, CH₄, CO, CO₂ and water), while acetaldehyde oxidation over the TWC resulted in partial and total oxidation products (CH₄, CO, CO₂ and water).
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