Residential College | false |
Status | 已發表Published |
Experimental Study on Heat Transfer Enhancement of 3D-Printed Mini Tubes Under Three Different Flow Directions | |
Chen, Jia Hang1; Wu, Kai Wen1; Tam, Lap Mou1,2; Ghajar, Afshin J.3 | |
2024 | |
Source Publication | Heat Transfer Engineering |
ISSN | 0145-7632 |
Abstract | In this study, 864 heat transfer experimental data points and 216 pressure drop experimental data points were used to compare the heat transfer and friction factor behavior of 3D-printed and traditional tubes under uniform wall heat flux boundary condition. Experiments were conducted in the entire flow region that covers laminar, transition, and turbulent regions. The inside diameter of the test tubes is around 2 mm, and the average inside wall surface roughness for traditional and 3D-printed tubes is 2.211 (Formula presented.) and 35.249 (Formula presented.) respectively. Comparing with the traditional tubes, in the upper transition and the turbulent regions, the Nusselt numbers and Colburn (Formula presented.) -factors of the 3D-printed tube under three different flow directions were enhanced by an average of 52.67% and 51.59% respectively. The greater relative roughness of the 3D-printed tube enhanced the heat transfer but also increased the pressure drop significantly. The friction factors for the 3D-printed tube in these regions also increased by an average of 154.44% compared with the traditional tube. The results also show that the effect of different flow directions on heat transfer and pressure drop of the 3D-printed tube is insignificant relative to roughness. Moreover, the 3D-printed tube has an earlier transition compared with the traditional tube. |
Keyword | Transition Region Pressure-drop Circular Tube |
DOI | 10.1080/01457632.2024.2384160 |
URL | View the original |
Indexed By | SCIE |
Language | 英語English |
WOS Research Area | Thermodynamics ; Engineering ; Mechanics |
WOS Subject | Thermodynamics ; Engineering, Mechanical ; Mechanics |
WOS ID | WOS:001282224000001 |
Publisher | TAYLOR & FRANCIS INC, 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 |
Scopus ID | 2-s2.0-85200259847 |
Fulltext Access | |
Citation statistics | |
Document Type | Journal article |
Collection | Faculty of Science and Technology DEPARTMENT OF ELECTROMECHANICAL ENGINEERING |
Corresponding Author | Tam, Lap Mou |
Affiliation | 1.Department of Electromechanical Engineering, Faculty of Science and Technology, University of Macau, Macao 2.Institute for the Development and Quality, Macao 3.School of Mechanical and Aerospace Engineering, Oklahoma State University, Stillwater, United States |
First Author Affilication | Faculty of Science and Technology |
Corresponding Author Affilication | Faculty of Science and Technology |
Recommended Citation GB/T 7714 | Chen, Jia Hang,Wu, Kai Wen,Tam, Lap Mou,et al. Experimental Study on Heat Transfer Enhancement of 3D-Printed Mini Tubes Under Three Different Flow Directions[J]. Heat Transfer Engineering, 2024. |
APA | Chen, Jia Hang., Wu, Kai Wen., Tam, Lap Mou., & Ghajar, Afshin J. (2024). Experimental Study on Heat Transfer Enhancement of 3D-Printed Mini Tubes Under Three Different Flow Directions. Heat Transfer Engineering. |
MLA | Chen, Jia Hang,et al."Experimental Study on Heat Transfer Enhancement of 3D-Printed Mini Tubes Under Three Different Flow Directions".Heat Transfer Engineering (2024). |
Files in This Item: | There are no files associated with this item. |
Items in the repository are protected by copyright, with all rights reserved, unless otherwise indicated.
Edit Comment