Hybrid RANS-LES Simulation of In-Cylinder Air Flow for Different Engine Speeds at Fixed Intake Flow Pressure
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Hybrid RANS-LES Simulation of In-Cylinder Air Flow for Different Engine Speeds at Fixed Intake Flow Pressure

Authors: L. V. Fui, A. Ulugbek, S. S. Dol

Abstract:

The in-cylinder flow and mixture formations are significant in view of today’s increasing concern on environmental issues and stringent emission regulations. In this paper, the numerical simulations of a SI engine at different engine speeds (2000-5000 rpm) at fixed intake flow pressure of 1 bar are studied using the AVL FIRE software. The simulation results show that when the engine speed at fixed intake flow pressure is increased, the volumetric efficiency of the engine decreases. This is due to a richer fuel conditions near the engine cylinder wall when engine speed is increased. Significant effects of impingement are also noted on the upper and side walls of the engine cylinder. These variations in mixture formation before ignition could affect the thermodynamics efficiency and specific fuel consumption that would lead to a reduced engine performance.

Keywords: AVL FIRE, fuel mass, IC engine, LES, RANS, turbulent intensity.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1337727

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References:


[1] R. Tatschl, and E. V. Berg. 2002. CFD in IC - Engine Spray and Combustion Simulation - Current status and future development. WCCM V - 5th World Congress on Computational Mechanics.
[2] M. Costa, U. Sorge, and L. Allocca. 2011. Numerical study of the mixture formation process in a four-stroke GDI engine for two-wheel applications. Simulation Modelling Practice and Theory, 19, 1212-1226.
[3] O. Vermorel, S. Richard, O Colin, C. Angelberger, A. Benkenida, and D. Veynante. 2009. Towards the understanding of cyclic variability in a spark ignited engine using multi-cycle LES. Combustion and Flame, 156, 1525-1541.
[4] N. Ozdor, M. Dulger, and E. Sher. 1994. SAE Paper 950683.
[5] Avlfiremanual 2013. edited by AVL LIST GmbH. v2013.1 ed.
[6] K. Hanjalić, M. Popovac, and M. Hadžiabdić. 2004. A robust near-wall elliptic-relaxation eddy-viscosity turbulence model for CFD. International Journal of Heat and Fluid Flow, 25, 1047-1051.
[7] Daniel, LVF, Ulugbek A. and Sharul SD. 2013. Numerical simulation of cycle-to-cycle variations of in-cylinder air flow in naturally aspirated and highly boosted SI engine. Proceedings of the 8th CUTSE International Conference, Curtin University Sarawak, Malaysia.