Research Article

NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS

Volume: 35 Number: 1 March 1, 2017
  • Seyed Mostafa Mousavı
  • Navvab Shafıeı
  • Abdolrahman Dadvand

NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS

Abstract

Subsonic turbulent flow over NACA0012 airfoil at the Reynolds number of 3×106 and different angles of attack (from -12º to 20º) is simulated using OpenFOAM. The flow is assumed ort steady and two-dimensional. Different turbulence models including Spalart-Allmaras, realizable k-ɛ and k-ω Shear Stress Transport (SST) are employed and their accuracy evaluated through the comparison ort h results with the available experimental data. The main focus has been put on the two regions around the airfoil, namely, the transition region and the turbulent region that are of high importance in the evaluation of computational fluid dynamics (CFD) codes. Hence, the laminar to turbulent transition point was determined at various Reynolds numbers in order to get accurate results ort he drag coefficient. It was found that by increasing the angle of attack, the accuracy of all the turbulence models used in the OpenFOAM software would reduce. In addition, the Spalart-Allmaras model showed highest accuracy compared with the other models tested in the present research. In fact, these turbulence models are unable to detect the point where the transition from laminar to turbulent flow occurs and thus have deficiency in determining the accurate flow quantities. Therefore, in both the theoretical and empirical studies the transition effects should be taken into account especially in critical analyses.

Keywords

References

  1. [1] Saniei Nejad M., Mani M., (2014) Numerical comparison between physics of transitional flow and full turbulent flow around classical airfoil of NACA0012 at subsonic and transonic regimes, Journal of Fluid Mechanics and Aerodynamics 2, 63–87. (In Persian)
  2. [2] Bacha W.A., Ghaly W.S., (2006) Drag prediction in transitional flow over two-dimensional airfoils, 44th AIAA AeroSpace Sciences Meeting and Exhibit, Reno, Nevada, USA. doi: 10.2514/6.2006-248.
  3. [3] Johansen J., (1997) Prediction of laminar/turbulent transition in airfoil flows, RisØ National Laboratory, Roskilde, Denmark.
  4. [4] McCroskey W.J., et al., (1987) A critical assessment of wind tunnel results for the NACA0012 airfoil, U.S. Army Aviation Research and Technology Activity: Nasa Technical Memorandum 42, 285–330.
  5. [5] Maksymiuk C.M., Pulliam T.H., (1987) Viscous transonic airfoil workshop results using ARC2D, 25th AIAA Aerospace Sciences Meeting, and Exhibit, 12–15 January 1987, Reno, Nevada, USA. doi: 10.2514/6.1987-415.
  6. [6] Arias O., Falcinelli O., Fico N., Elaskar S., (2007) Finite volume simulation of a flow over a NACA0012 using Jameson, Maccormack, Shu and Tvd Esquemes, Mecanica Computational 26, 3097–3116.
  7. [7] Barter G.E., (2008) Shock capturing with PDE-based artificial viscosity for an adaptive, higher-order discontinuous Galerkin finite element method, PhD Thesis, Massachusetts Institute of Technology, USA.
  8. [8] Batchelor G.K., (1967) An introduction to fluid dynamics. Cambridge University Press, Cambridge, UK.

Details

Primary Language

English

Subjects

-

Journal Section

Research Article

Authors

Seyed Mostafa Mousavı This is me
Iran

Navvab Shafıeı This is me
Iran

Abdolrahman Dadvand This is me
Iran

Publication Date

March 1, 2017

Submission Date

March 2, 2016

Acceptance Date

January 10, 2017

Published in Issue

Year 2017 Volume: 35 Number: 1

APA
Mousavı, S. M., Shafıeı, N., & Dadvand, A. (2017). NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS. Sigma Journal of Engineering and Natural Sciences, 35(1), 133-155. https://izlik.org/JA93RU37JF
AMA
1.Mousavı SM, Shafıeı N, Dadvand A. NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS. SIGMA. 2017;35(1):133-155. https://izlik.org/JA93RU37JF
Chicago
Mousavı, Seyed Mostafa, Navvab Shafıeı, and Abdolrahman Dadvand. 2017. “NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS”. Sigma Journal of Engineering and Natural Sciences 35 (1): 133-55. https://izlik.org/JA93RU37JF.
EndNote
Mousavı SM, Shafıeı N, Dadvand A (March 1, 2017) NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS. Sigma Journal of Engineering and Natural Sciences 35 1 133–155.
IEEE
[1]S. M. Mousavı, N. Shafıeı, and A. Dadvand, “NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS”, SIGMA, vol. 35, no. 1, pp. 133–155, Mar. 2017, [Online]. Available: https://izlik.org/JA93RU37JF
ISNAD
Mousavı, Seyed Mostafa - Shafıeı, Navvab - Dadvand, Abdolrahman. “NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS”. Sigma Journal of Engineering and Natural Sciences 35/1 (March 1, 2017): 133-155. https://izlik.org/JA93RU37JF.
JAMA
1.Mousavı SM, Shafıeı N, Dadvand A. NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS. SIGMA. 2017;35:133–155.
MLA
Mousavı, Seyed Mostafa, et al. “NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS”. Sigma Journal of Engineering and Natural Sciences, vol. 35, no. 1, Mar. 2017, pp. 133-55, https://izlik.org/JA93RU37JF.
Vancouver
1.Seyed Mostafa Mousavı, Navvab Shafıeı, Abdolrahman Dadvand. NUMERICAL SIMULATION OF SUBSONIC TURBULENT FLOW OVER NACA0012 AIRFOIL: EVALUATION OF TURBULENCE MODELS. SIGMA [Internet]. 2017 Mar. 1;35(1):133-55. Available from: https://izlik.org/JA93RU37JF

IMPORTANT NOTE: JOURNAL SUBMISSION LINK https://eds.yildiz.edu.tr/sigma/