The computational fluid dynamics simulation program KIVA is augmented with a k-ε turbulence model and enhanced geometric capabilities. It is applied to the case of flow in an inlet port and a combustion chamber with a moving valve in order to investigate the effect of inlet flow on the prevailing aerodynamic conditions in the cylinder. The needed initial and time-varying boundary conditions at the upstream section of the intake port are obtained from a one-dimensional acoustic model of the complete single cylinder engine. The three-dimensional flow domain includes an intake port, a combustion chamber, and a moving valve. An internal dynamic rezoning procedure is presented and incorporated in the flow code, which ensures an adequate I, J, K-structured hexahedral mesh when the boundaries of the computation domain are severely distorted, as is the case with a moving valve. Flow computation is carried out from induction TDC to BDC. The resulting velocity and residual burned gas mass fraction fields are then examined and effects due to the geometry of the port and chamber are discussed.
Skip Nav Destination
Article navigation
July 1989
Research Papers
Investigation of the Effect of Inlet Port on the Flow in a Combustion Chamber Using Multidimensional Modeling
R. Taghavi,
R. Taghavi
Direction des Etudes, Regie Nationale des Usines Renault, 92508 Rueil Malmaison Cedex, France
Search for other works by this author on:
A. Dupont
A. Dupont
Direction des Etudes, Regie Nationale des Usines Renault, 92508 Rueil Malmaison Cedex, France
Search for other works by this author on:
R. Taghavi
Direction des Etudes, Regie Nationale des Usines Renault, 92508 Rueil Malmaison Cedex, France
A. Dupont
Direction des Etudes, Regie Nationale des Usines Renault, 92508 Rueil Malmaison Cedex, France
J. Eng. Gas Turbines Power. Jul 1989, 111(3): 479-484 (6 pages)
Published Online: July 1, 1989
Article history
Received:
August 1, 1988
Online:
October 15, 2009
Citation
Taghavi, R., and Dupont, A. (July 1, 1989). "Investigation of the Effect of Inlet Port on the Flow in a Combustion Chamber Using Multidimensional Modeling." ASME. J. Eng. Gas Turbines Power. July 1989; 111(3): 479–484. https://doi.org/10.1115/1.3240278
Download citation file:
Get Email Alerts
Cited By
DGEN Aeropropulsion Research Turbofan Core/Combustor-Noise Measurements—Source Separation
J. Eng. Gas Turbines Power (October 2025)
Improving the Predictive Capability of Empirical Heat Transfer Correlations for Hydrogen Internal Combustion Engines
J. Eng. Gas Turbines Power (October 2025)
The Hybrid Pathway to Flexible Power Turbines: Part IV, Automated Construction of Mesh Derived Thermal Network Models for Fast Full-Machine Thermal Analysis
J. Eng. Gas Turbines Power (October 2025)
Related Articles
Three-Dimensional Computations of Flow and Fuel Injection in an Engine Intake Port
J. Eng. Gas Turbines Power (July,1991)
Multidimensional In-Cylinder Flow Calculations and Flow Visualization in a Motored Engine
J. Fluids Eng (June,1995)
Computational Modeling of Natural Gas Injection in a Large Bore Engine
J. Eng. Gas Turbines Power (July,2004)
Validation of a New TVD Scheme Against Measured Pressure Waves in the Inlet and Exhaust System of a Single Cylinder Engine
J. Eng. Gas Turbines Power (October,2000)
Related Proceedings Papers
Related Chapters
Later Single-Cylinder Engines
Air Engines: The History, Science, and Reality of the Perfect Engine
CFD Simulations of a Mixed-flow Pump Using Various Turbulence Models
Mixed-flow Pumps: Modeling, Simulation, and Measurements
Pulsation and Vibration Analysis of Compression and Pumping Systems
Pipeline Pumping and Compression System: A Practical Approach, Third Edition