Original Article
2005, Bragg, M.B., Broeren, A.P. and Blumenthal, L.A., “Iced-airfoil aerodynamics,” Prog. Aerosp. Sci., Vol.41, No.5, pp.323-362.
10.1016/j.paerosci.2005.07.0012003, Addy, H., Broeren, A., Zoeckler, J. and Lee, S., “A Wind Tunnel Study of Icing Effects on a Business Jet Airfoil,” 41st Aerospace Sciences Meeting and Exhibit, p.727.
2020, Hann, R., Hearst, R.J., Sætran, L.R. and Bracchi, T., “Experimental and numerical icing penalties of an S826 airfoil at low Reynolds numbers,” Aerospace, Vol.7, No.4, p.46.
10.3390/aerospace70400461997, Calay, R.K., Holdø, A.E., Mayman, P. and Lun, I., “Experimental simulation of runback ice,” J. Aircr., Vol.34, No.2, pp.206-212.
10.2514/2.21732023, Wong, M.L., Ghate, A.S., Stich, G.D. Kenway, G.K. and Kiris, C.C., “Numerical study on the aerodynamics of an iced airfoil with scale-resolving simulations,” AIAA SCITECH 2023 Forum, pp.0252.
10.2514/6.2023-02522022, Jang, D., Lee, H., Jeong, H., Lee, H. and Myong, R., “Computational Analysis of the Aerodynamic Effects of Icing on Medium-sized Transport Aircraft,” J. Comput. Fluids Eng., Vol.27, No.3, pp.68-78.
10.6112/kscfe.2022.27.3.0682017, Zocca, M., Gori, G. and Guardone, A., “Blockage and three-dimensional effects in wind-tunnel testing of ice accretion over wings,” J. Aircr., Vol.54, No.2, pp.759-767.
10.2514/1.C0337502023, Oh, S., Jang, D., Bae, G., Lee, W., Lee, H. and Myong, R., “Computational Investigation of Wall Interference Effect on Ice Accretion on Airfoil in Icing Wind Tunnel Test,” J. Comput. Fluids Eng., Vol.28, No.2, pp.71-80.
10.6112/kscfe.2023.28.2.0712001, Pelletier, A. and Mueller, T.J., “Effect of endplates on two-dimensional airfoil testing at low Reynolds number,” J. Aircr., Vol.38, No.6, pp.1056-1059.
10.2514/2.28722005, Traub, L.W., “Examination of End Plate Sizing for Reflection Plane Wind-Tunnel Testing,” J. Aircr, Vol.62, No.2, pp.458-465.
10.2514/1.C0381421946, Sivells, J.C. and Deters, O.J., “Jet-boundary and Plan-form Corrections for Partial-Span Models with Reflection-Plane, End-Plate, or No End-Plate in a Closed Circular Wind Tunnel,” No.NACA-TR-843.
1944, Allen, H.J. and Vincenti, W.G., “Wall interference in a two-dimensional-flow wind tunnel with consideration of the effect of compressibility,” No.NACA-TR-782.
2015, Silva, D., Bortholin, T., Lyrio, J.A. and Santos, L., “Parametric evaluation of icing effects by a Quasi-3D methodology for high-lift configurations,” SAE Technical Paper, No. 2015-01-2083.
10.4271/2015-01-20832019, Bourgault-Cote, S., Parenteau, M. and Laurendeau, E., “Quasi-3D multi-layer ice accretion model using a Vortex Lattice Method combined with 2.5 D RANS solutions,” In Proceedings of the 54th 3AF International Conference on Applied Aerodynamics, pp.25-27.
2021, Kim, K., Baek, C., Lee, S. and Choi, J.H., “Validation of Unstructured Solver UMSAPv and Aerodynamic Analysis of Full Aircraft OPPAV,” J. Comput. Fluids Eng., Vol.26, No.1, pp.59-69.
10.6112/kscfe.2021.26.1.0591994, Menter, F.R., “Two-equation eddy-viscosity turbulence models for engineering applications,” AIAA J., Vol.32, No.8, pp.1598-1605.
10.2514/3.121492009, Knopp, T., Eisfeld, B. and Calvo, J.B., “A new extension for turbulence models to account for wall roughness,” Int. J. Heat Fluid Flow, Vol.30, No.1, pp.54-65.
10.1016/j.ijheatfluidflow.2008.09.0092023, RTA, “General Information and Guide for Customers - Climatic / Icing Wind Tunnel Vienna Version 5.3,” https://www.rta.eu/images/stories/pdf/IWT_Vienna_General_information.pdf.
- Publisher :Korean Society for Computational Fluids Engineering
- Publisher(Ko) :한국전산유체공학회
- Journal Title :Journal of Computational Fluids Engineering
- Journal Title(Ko) :한국전산유체공학회지
- Volume : 30
- No :4
- Pages :92-103
- Received Date : 2025-09-11
- Revised Date : 2025-12-12
- Accepted Date : 2025-12-24
- DOI :https://doi.org/10.6112/kscfe.2025.30.4.092


Journal of Computational Fluids Engineering








