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Numerical simulation of NACA4412 airfoil in pre-stall conditions

Vincent Gleize (Department of Applied Aerodynamics, ONERA, Meudon, France)
Michel Costes (Department of Applied Aerodynamics, ONERA, Meudon, France)
Ivan Mary (Department of Applied Aerodynamics, ONERA, Meudon, France)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 30 November 2021

Issue publication date: 28 March 2022

174

Abstract

Purpose

The purpose of this paper is to study turbulent flow separation at the airfoil trailing edge. This work aims to improve the knowledge of stall phenomenon by creating a QDNS database for the NACA412 airfoil.

Design/methodology/approach

Quasi-DNS simulations of the NACA 4412 airfoil in pre-stall conditions have been completed. The Reynolds number based on airfoil chord and freestream velocity is equal to 0.35 million, and the freestream Mach number to 0.117. Transition is triggered on both surfaces for avoiding the occurrence of laminar separation bubbles and to ensure turbulent mixing in the wake. Four incidences have been considered, 5, 8 10 and 11 degrees.

Findings

The results obtained show a reasonably good correlation of the present simulations with classical MSES airfoil simulations and with RANS computations, both in terms of pressure and skin-friction distribution, with an earlier and more extended flow separation in the QDNS. The database thus generated will be deeply analysed and enriched for larger incidences in the future.

Originality/value

No experimental or HPC numerical database at reasonable Reynolds number exists in the literature. The current work is the first step in that direction.

Keywords

Acknowledgements

The numerical simulations presented in this work were partly performed with the support of GENCI (Grand Etablissement National de Calcul Intensif) on Irene KNL supercomputer.

Citation

Gleize, V., Costes, M. and Mary, I. (2022), "Numerical simulation of NACA4412 airfoil in pre-stall conditions", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 32 No. 4, pp. 1375-1397. https://doi.org/10.1108/HFF-07-2021-0514

Publisher

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Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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