RANS and Large Eddy Simulation of Internal Combustion Engine Flows—A Comparative Study

Author:

Yang Xiaofeng1,Gupta Saurabh,Kuo Tang-Wei,Gopalakrishnan Venkatesh2

Affiliation:

1. e-mail:

2. GM R&D, 30500 Mound Road, Warren, MI 48090

Abstract

A comparative cold flow analysis between Reynolds-averaged Navier–Stokes (RANS) and large eddy simulation (LES) cycle-averaged velocity and turbulence predictions is carried out for a single cylinder engine with a transparent combustion chamber (TCC) under motored conditions using high-speed particle image velocimetry (PIV) measurements as the reference data. Simulations are done using a commercial computationally fluid dynamics (CFD) code CONVERGE with the implementation of standard k-ε and RNG k-ε turbulent models for RANS and a one-equation eddy viscosity model for LES. The following aspects are analyzed in this study: The effects of computational domain geometry (with or without intake and exhaust plenums) on mean flow and turbulence predictions for both LES and RANS simulations. And comparison of LES versus RANS simulations in terms of their capability to predict mean flow and turbulence. Both RANS and LES full and partial geometry simulations are able to capture the overall mean flow trends qualitatively; but the intake jet structure, velocity magnitudes, turbulence magnitudes, and its distribution are more accurately predicted by LES full geometry simulations. The guideline therefore for CFD engineers is that RANS partial geometry simulations (computationally least expensive) with a RNG k-ε turbulent model and one cycle or more are good enough for capturing overall qualitative flow trends for the engineering applications. However, if one is interested in getting reasonably accurate estimates of velocity magnitudes, flow structures, turbulence magnitudes, and its distribution, they must resort to LES simulations. Furthermore, to get the most accurate turbulence distributions, one must consider running LES full geometry simulations.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference7 articles.

1. Large-Eddy Simulations for Internal Combustion Engines—A Review;Int. J. Eng. Res.,2011

2. Sick, V., Reuss, D., Rutland, C., Haworth, D., Oefelein, J., Janicka, J., Kuo, T.-W., Yang, X. and Freitag, M., 2010, “A Common Engine Platform for Engine LES Development and Validation,” International Conference on Large-Eddy Simulation for Internal Combustion Engine Flows (LES4ICE), Rueil-Maimaison, France, November 18–19.

3. Large Eddy Simulation (LES) for IC Engine Flows;Oil Gas Sci. Technol.–Rev. IFP Energies nouvelles,2012

4. Abraham, P., Liu, K., Haworth, D., Reuss, D., and Sick, V., 2012, “Evaluating LES and High-Speed PIV With Phase-Invariant POD,” International Conference on Large-Eddy Simulation for Internal Combustion Engine Flows (LES4ICE), Rueil-Maimaison, France, November 29–30.

5. A Three-Dimensional Computational Fluid Dynamics Program for Transient Flows With Complex Geometries,2009

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