Browse Publications Technical Papers 2020-01-1166
2020-04-14

Failure Prediction and Design Optimization of Exhaust Manifold based on CFD and FEM Analysis 2020-01-1166

A thermo-mechanical fatigue analysis was conducted based on a coupled Finite Element Analysis (FEA) - Computational Fluid Dynamics (CFD) method on the crack failure of the exhaust manifold for an inline 4-cylinder turbo-charged diesel engine under the durability test. In the this analysis, the temperature-dependent material properties were obtained from measurements and the model was calibrated with comparison of the predicted exhaust manifold temperatures with the on-engine measurements under the same engine load condition. Temperature and stress/strain distributions in the exhaust manifold were predicted with the calibrated model. Analysis results showed that the cracks took place at locations with high plastic deformations, suggesting that the cause of the failure be thermo-mechanical fatigue (TMF). Using the equivalent plastic strain (PEEQ) as the indicator for thermal mechanical fatigue, three exhaust manifold design revisions were carried out by CAE analysis. And the best one was chosen for prototype. Later tests showed that this new design passed the engine durability test successfully.

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

Design & Development of a Prototype Gas-Assist-Molded Glovebox Door

980963

View Details

TECHNICAL PAPER

A New Decoupled CFD and FEM Methodology for the Fatigue Strength Assessment of an Engine Head

2008-01-0972

View Details

TECHNICAL PAPER

Dynamic Behavior of In-Cylinder Pressure Causing Fatigue Failure of Reed Valves

2020-28-0031

View Details

X