Design and Construction of a Detachable Traverse System for Small Scaled Quasi Atmospheric Boundary Layer Wind Tunnel

Article Preview

Abstract:

Data collection in the lateral and vertical axes is crucial to inspect the heterogeneity of the inflow condition of the wind tunnel and the development of the boundary layer. A customized traverse system uses three stepper motors to control the X, Y, and Z positions with the structure is built with 2020 and 2040 aluminum extrusion for easy assembly. To ensure positional accuracy, the traverse system is tested on its accuracy with the mean absolute error (MAE) for single movements must be less than 1.5mm for the Y and Z axes to accurately capture the lateral-vertical flow structure of the wind tunnel's inflow condition. The MAE for single movements is 1.189mm for the X-axis, 0.069mm for the Y-axis, and 0.054mm for the Z-axis, all within the set limits. Only the X-axis 10mm increment movements failed at all tested speeds due to the errors in the smaller movements cumulated into a more significant error. In contrast, the mean MPE for other increments is 0.93%. The Y and Z axes have continuity MPEs of 0.13% and 0.47%, respectively, within the requirements.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

51-57

Citation:

Online since:

October 2025

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2025 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] R. Stull, An Introduction to Boundary Layer Meteorology. Dordrecht: Springer Netherlands, 1988.

Google Scholar

[2] M. A. Fitriady, N. A. Rahmat, A. F. Mohammad, and S. A. Zaki, "Effect of Mesh Refinement on Vertical and Lateral Velocity Profiles of the Wake Flow Behind a Spire Using Computational Fluid Dynamic (CFD)," Journal of Engineering and Technology 108 Journal of Engineering and Technology, vol. 14, no. 2, p.2180–3811

Google Scholar

[3] M. A. Fitriady, N. A. Rahmat, and A. F. Mohammad, "Urban Heat Island Phenomenon in Tropical Countries: Analysis of the Wake Flow Behind Slender High-Rise Building," in Lecture Notes in Energy, vol. 92, Springer Science and Business Media Deutschland GmbH, 2023, p.273–288.

DOI: 10.1007/978-981-19-6688-0_17

Google Scholar

[4] M. Hadi Wijaya et al., "Investigation of Wind Flow Characteristics Using Passive Devices in Boundary Layer Wind Tunnel," 2024. [Online]. Available: www.jtse.utm.my

DOI: 10.11113/jtse.v11.230

Google Scholar

[5] N.A. Rahmat, A. Hagishima, N. Ikegaya, and J. Tanimoto, "An experimental study on aerodynamic interaction between a boundary layer generated by a smooth and rough wall and wake behind a spire," Engineering Science Reports, Kyushu University , vol. 37, no. FEB, p.19–26, 2016.

Google Scholar

[6] N. A. Rahmat, K. K. Haji Abdullah, and K. A. Khairunizam, "Natural Ventilation in Traditional Malay House: A Study of Flow Pattern by an Enhanced Smoke Wire Technique," 2023, p.289–303.

DOI: 10.1007/978-981-19-6688-0_18

Google Scholar

[7] Vikneshvaran, S.A. Zaki, N.A. Rahmat, M.S.M. Ali, and F. Yakub, "Evaluation of atmospheric boundary layer in open-loop boundary layer wind tunnel experiment," Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, vol. 72, no. 72, p.79–92, (2020)

DOI: 10.37934/arfmts.72.2.7992

Google Scholar

[8] N.A. Rahmat, A. Hagishima, N. Ikegaya, and J. Tanimoto, "Experimental study on effect of spires on the lateral nonuniformity of mean flow in a wind tunnel," Evergreen, vol. 5, no. 1, p.1–15, Mar. (2018)

DOI: 10.5109/1929670

Google Scholar

[9] M. A. Fitriady, N. A. Rahmat, and A. F. Mohammad, "Vertical and Spanwise Wake Flow Structures of a Single Spire over Smooth Wall Surface in a Wind Tunnel," Journal of Applied Fluid Mechanics, vol. 16, no. 12, Dec. (2023)

DOI: 10.47176/jafm.16.12.1890

Google Scholar

[10] N. A. Rahmat, M. R. Ramli, M. H. C. Hassan, K. K. H. Abdullah, and K. A. Khairunizam, "Enhanced Smoke Wire Technique with Control Dripping Valve in a Small Scaled Quasi-Atmospheric Boundary Layer Wind Tunnel," 2022, p.611–627.

DOI: 10.1007/978-981-19-1457-7_47

Google Scholar

[11] Cermak J. E., Davenport A. G., F. H. Durgin, P. A. Irwin, N. Isyumov, and J. Peterka, Wind Tunnel Studies of Buildings and Structures. Reston, VA: American Society of Civil Engineers, 1999.

Google Scholar