1995-02-01

An Experimental Study of the Flow Structure Inside the Catalytic Converter of a Gasoline Engine 950784

The flow structure inside the catalytic converter of gasoline engines is very important for consideration of the catalyst light-off condition, converter durability and conversion efficiency. However, the available experimental data under actual engine exhaust conditions are quite limited due to its complicated configuration, critical operating conditions and difficult optical access. Therefore, an experimental study was performed, using laser Doppler velocimetry technique, to measure the velocity distributions inside two production dual-monolith catalytic converters fitted on a firing gasoline engine over several engine operating conditions. This paper reports the normal velocity characteristics measured in a plane 1 mm away from the front surface of first monolith. A small fraction of titanium (IV) isopropoxide was dissolved in gasoline for generating titanium dioxide seeding particles during the engine combustion. Experimental results showed that the velocity is highly fluctuating due to the pulsating nature of the engine exhaust flow and the velocity distribution strongly depends on engine speed, engine cooling water temperature and converter diffuser geometry.

SAE MOBILUS

Subscribers can view annotate, and download all of SAE's content. Learn More »

Access SAE MOBILUS »

Members save up to 16% off list price.
Login to see discount.
Special Offer: Download multiple Technical Papers each year? TechSelect is a cost-effective subscription option to select and download 12-100 full-text Technical Papers per year. Find more information here.
We also recommend:
TECHNICAL PAPER

Fuel Reforming Performance of Multi-Layer Ceramic Catalyst

978475

View Details

TECHNICAL PAPER

Intra-Channel Mass and Heat-Transfer Modeling in Diesel Oxidation Catalysts

2002-01-1879

View Details

TECHNICAL PAPER

Measuring Near Zero Automotive Exhaust Emissions - Zero Is a Very Small Precise Number

2010-01-1301

View Details

X