Browse Publications Technical Papers 1999-01-3550
1999-10-25

Modeling the Combustion in a Small-Bore Diesel Engine Using a Method Based on Representative Interactive Flamelets 1999-01-3550

A model based on Representative Interactive Flamelets (RIF) for simulating ignition, combustion and emissions formation in a DI diesel engine has been applied to describe the combustion process in the Ford DIATA engine. Equipped with a common-rail injection system the four-valve, turbocharged engine with a displacement of 300 cc per cylinder represents a modern HSDI small-bore diesel engine. The RIF-model offers a way of decoupling the turbulent time scales from those associated with the chemistry. The turbulent flow field was solved using the three-dimensional CFD-code KIVA 3V and the chemistry was solved in a one-dimensional flamelet code rendering profiles of species mass fractions as a function of the mixture fraction, which is a conserved scalar. This decoupling enabled a detailed reaction mechanism comprising 118 species and 557 elementary reactions to be employed without imposing a significant penalty on the computational time. Model predictions of crank angle resolved in-cylinder pressure and NOx emissions are compared with experimental data taken from a single-cylinder test engine varying injection timing and EGR. The agreement between simulations and experiments is found to be very good.

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

Modeling DI-Diesel Combustion using the Eulerian Particle Flamelet Model (EPFM)

2000-01-2934

View Details

TECHNICAL PAPER

Simulating the Combustion in a DI Diesel Engine Applying a New Model for the Conditional Scalar Dissipation Rate

2001-01-1001

View Details

TECHNICAL PAPER

Application of Computational Fluid Dynamics to the Study of Conditions Relevant to Autoignition Damage in Engines

961963

View Details

X