Design and Aerodynamic Performance Evaluation of an Open-Circuit Subsonic Wind Tunnel Using Computational Fluid Dynamics

Abdallah Abuzrida (1)
(1) Department of Aeronautical Engineering, College of Civil Aviation, Misurata, Libya

Abstract

This study provides an assessment of the design and aerodynamic performance of an open-circuit subsonic wind tunnel using computational fluid dynamics. Eight wind tunnel configurations have been designed, combining two contraction geometries (curved and straight tapered), two diffuser angles (6 and 7 degrees), and two diffuser designs (conventional diffuser and square to circular transition diffuser). The aerodynamic performance of each model was evaluated by means of pressure distribution, speed distribution, turbulence intensity, and the pressure recovery coefficient. The results of the simulation showed that all configurations had successfully accelerated the airflow to a target speed of approximately 30 m/s in the test section. However, significant differences were observed in the performance of the diffuser and the quality of the downstream flow. Models incorporating a square-to-circle transition diffuser showed smoother pressure recovery, more uniform speed gradients, and significantly lower turbulence intensities than conventional diffuser models. These configurations also achieved higher pressure recovery coefficients of (0.65-0.68), which suggests that dynamic pressure conversion is more efficient and that aerodynamic losses are reduced. Although model 2 had the highest-pressure recovery coefficient (0.72), it produced significantly more turbulence downstream of the diffuser. On the other hand, model 6, consisting of a curved deflector, a square-to-circular transition diffuser, and a 6-degree diffuser angle, provided the most balanced aerodynamic performance, combining high pressure recovery, stable speed distribution, and low turbulence. The findings show that optimization of both the contraction and diffuser geometry significantly improves the flow quality of the wind tunnel and provides practical design guidance for the development of efficient open-circuit subsonic wind tunnel aerodynamic testing at the laboratory scale.

Full text article

Generated from XML file

References

man, I. Bhuiyan, M. H. Ali, M. A. Islam, and S. Paul, “Design, fabrication and performance analysis of a subsonic open-circuit wind tunnel,” in Proceedings of the 7th International Conference on Mechanical, Industrial and Energy Engineering (ICMIEE 2022), Khulna, Bangladesh, Dec. 22–24, 2022, Paper ID: 187.

[2] D. D. Baals and W. R. Corliss, “Whirling arms and the first wind tunnels,” NASA Glenn Research Center. [Online]. Available: https://www.grc.nasa.gov/WWW/K-12/WindTunnel/history.html. [Accessed: Jul. 21, 2026].

[3] P. Bradshaw and R. C. Pankhurst, “The design of low-speed wind tunnels,” Progress in Aerospace Sciences, vol. 5, pp. 1–69, 1964, doi: 10.1016/0376-0421(64)90003-X.

[4] M. A. González Hernández, A. I. Moreno López, A. A. Jarzabek, J. M. Perales Perales, Y. Wu, and S. Xiaoxiao, “Design methodology for a quick and low-cost wind tunnel,” in Wind Tunnel Designs and Their Diverse Engineering Applications, IntechOpen, 2013, doi: 10.5772/54169.

[5] J. B. Barlow, W. H. Rae, and A. Pope, Low-Speed Wind Tunnel Testing, 3rd ed. New York, NY, USA: John Wiley & Sons, 1999.

[6] E. Rubino and T. Ioppolo, “Design, fabrication and performances of a closed-circuit subsonic wind tunnel,” in 55th AIAA Aerospace Sciences Meeting, AIAA SciTech Forum, Grapevine, TX, USA, 2017, doi: 10.2514/6.2017-0105.

[7] J. D. Pereira, Wind Tunnels: Aerodynamics, Models, and Experiments. New York, NY, USA: Nova Science Publishers, 2011.

[8] M. Pott-Pollenske, W. von Heesen, and A. Bergmann, “Acoustical preexamination work and characterization of the low noise wind tunnel DNW-NWB,” in 18th AIAA/CEAS Aeroacoustics Conference (33rd AIAA Aeroacoustics Conference), Colorado Springs, CO, USA, Jun. 4–6, 2012, AIAA-2012-2175, doi: 10.2514/6.2012-2175.

[9] R. D. Mehta and P. Bradshaw, “Design rules for small low-speed wind tunnels,” The Aeronautical Journal, vol. 83, no. 827, pp. 443–449, 1979, doi: 10.1017/S0001924000031985.

[10] M. M. Fouad, A. A. Hassan, and H. M. El-Batsh, “Design and construction of an open loop subsonic high temperature wind tunnel for investigation of SCR dosing systems,” International Journal of Thermofluids, vol. 11, Art. no. 100106, 2021, doi: 10.1016/j.ijft.2021.100106.

[11] J. M. Robertson and H. R. Fraser, “Separation prediction for conical diffusers,” Journal of Basic Engineering, vol. 82, pp. 201–209, 1960.

[12] R. D. Mehta, “The aerodynamic design of blower tunnels with wide-angle diffusers,” Progress in Aerospace Sciences, vol. 18, pp. 59–120, 1979, doi: 10.1016/0376-0421(77)90003-3.

[13] R. D. Mehta, “The aerodynamic design of blower tunnels with wide-angle diffusers,” Progress in Aerospace Sciences, vol. 18, pp. 59–120, 1979, doi: 10.1016/0376-0421(77)90003-3.

[14] D. L. Jayasooriya, C. V. P. Wedikkara, H. K. H. Kodithuwakku, and N. Samaraweera, “A design framework for subsonic low-speed wind tunnels,” in 2023 Moratuwa Engineering Research Conference (MERCon), Moratuwa, Sri Lanka, 2023, pp. 161–166, doi: 10.1109/MERCon60487.2023.10355478.

[15] Y. A. Çengel and J. M. Cimbala, Fluid Mechanics: Fundamentals and Applications, 3rd ed. New York, NY, USA: McGraw-Hill, 2014.

[16] S. Mauro, S. Brusca, R. Lanzafame, F. Famoso, A. Galvagno, and M. Messina, “Small-scale open-circuit wind tunnel: Design criteria, construction and calibration,” International Journal of Applied Engineering Research, vol. 12, no. 23, pp. 13649–13662, 2017.

[17] J. H. Bell and R. D. Mehta, Contraction Design for Small Low-Speed Wind Tunnels, NASA Contractor Report NASA-CR-182747, JIAA Technical Report 84. Stanford, CA, USA: Stanford University, Joint Institute for Aeronautics and Acoustics, 1988.

[18] T. Morel, “Comprehensive design of axisymmetric wind tunnel contractions,” Journal of Fluids Engineering, vol. 97, no. 2, pp. 225–233, 1975, doi: 10.1115/1.3447255.

[19] K. Yanel and A. Yanto, “Design of low subsonic wind tunnel with open return system for testing wind turbines at low airspeeds,” SINTEK JURNAL: Jurnal Ilmiah Teknik Mesin, vol. 17, no. 2, pp. 82–96, 2023, doi: 10.24853/sintek.17.2.82-96.

[20] R. van Dommelen, Design of an Atmospheric Boundary Layer Wind Tunnel, M.Sc. thesis, Eindhoven University of Technology, Eindhoven, The Netherlands, 2013.

[21] A. A. Wicaksana, R. Wibowo, and M. Kabib, “Analisa intensitas turbulensi aliran udara pada honeycomb dengan bentuk penampang melingkar untuk wind tunnel subsonic,” Jurnal Crankshaft, vol. 3, no. 1, pp. 19–24, 2020, doi: 10.24176/crankshaft.v3i1.4624.

Authors

Abdallah Abuzrida
[email protected] (Primary Contact)
Abuzrida, A. (2026). Design and Aerodynamic Performance Evaluation of an Open-Circuit Subsonic Wind Tunnel Using Computational Fluid Dynamics. Journal of Pure & Applied Sciences , 25(2), 80-87. https://doi.org/10.51984/pfk5wf62

Article Details

How to Cite

Abuzrida, A. (2026). Design and Aerodynamic Performance Evaluation of an Open-Circuit Subsonic Wind Tunnel Using Computational Fluid Dynamics. Journal of Pure & Applied Sciences , 25(2), 80-87. https://doi.org/10.51984/pfk5wf62

Similar Articles

You may also start an advanced similarity search for this article.

No Related Submission Found