Reducing cold-start emission from internal combustion engines by means of a catalytic converter embedded in a phase-change material
- 1 June 1999
- journal article
- research article
- Published by SAGE Publications in Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering
- Vol. 213 (6), 575-583
- https://doi.org/10.1243/0954407991527116
Abstract
Under normal operating conditions, catalytic converters appear to be the most effective means of reducing air pollution from internal combustion (IC) engines. The conversion efficiency, however, declines very steeply for temperatures below about 350°C and is practically zero during the starting and warming-up period. Improving the conversion efficiency under these conditions is important, particularly in large cities, where the number of startings per vehicle per day tends to be high. Among the more successful solutions are preheating of the catalyst electrically, warming up of the catalyst in an external combustion chamber, installation of an auxiliary small-capacity catalytic converter, and employment of an adsorbing unit between two catalysts. Although these methods are quite effective, their disadvantage lies in the fact that they require an external energy source, an additional component (a control unit) or a three-stage catalyst. In the present work an investigation was made of a solution based on the exploitation of thermal capacitance to keep the catalyst temperature high during off-operation periods. A phase-change material (PCM) with a transition temperature of 352.7°C, which is slightly above the light-off temperature of the metallic catalyst, was specially formulated, and a system comprising a catalytic converter embedded in the PCM was designed and tested. Under normal engine operating conditions, some of the thermal energy of the exhaust gases was stored in the PCM. During the time that the vehicle was not in use, the PCM underwent partial solidification, and the latent heat thus produced was exploited to maintain the catalyst temperature within the desired temperature range for maximum conversion efficiency.Keywords
This publication has 8 references indexed in Scilit:
- Application of In-Line Hydrocarbon Adsorber SystemsSAE International Journal of Advances and Current Practices in Mobility, 1998
- In-line Hydrocarbon Adsorber for Cold Start Emissions - Part IISAE International Journal of Advances and Current Practices in Mobility, 1998
- Airless In-Line Adsorber System for Reducing Cold Start HC EmissionsSAE International Journal of Advances and Current Practices in Mobility, 1998
- Using On-board Fuel Reforming by Partial Oxidation to Improve SI Engine Cold-Start Performance and EmissionsSAE International Journal of Advances and Current Practices in Mobility, 1998
- Combustion-Related Emissions in SI EnginesPublished by Elsevier ,1998
- Thermal analysis of the system KCL-LiCI by differential scanning calorimetryJournal of Thermal Analysis and Calorimetry, 1997
- Reducing Cold-Start Emissions by Catalytic Converter Thermal ManagementSAE International Journal of Advances and Current Practices in Mobility, 1995
- Development of an Alternator-Powered Electrically-Heated Catalyst SystemSAE International Journal of Advances and Current Practices in Mobility, 1994