Comparative Numerical Study of the Influence of Film Hole Location of Ribbed Cooling Channel on Internal and External Heat Transfer
Abstract
:1. Introduction
2. Geometry and Computational Model
3. Mesh, Solver and Turbulence Model Sensitivity
4. Results and Discussion
4.1. External Film Heat Transnfer
4.2. Internal Heat Transfer of Ribbed Channel with Film Extraction
5. Conclusions
- The heat transfer of a ribbed channel with film extraction is influenced by the position of the film hole. The comparison in blowing ratios among nine film hole positions showed maximum 19%, 30%, and 42% variations at BR = 0.8, 1.1 and 1.7, respectively;
- Among the nine positions, the film holes located in the separated flow region (DP01, DP03, DP04 and DP05) showed better internal heat transfer performance compared to the reference position of DP00 for BR < 1.0 and BR > 1.5;
- The film holes positioned close to the left-side wall (DP03, DP04 and DP05) performed better since they showed minimum reduction in internal heat transfer but still achieved enhancement in film effectiveness;
- In a comparison of film effectiveness, DP03 showed the best performance. In addition, DP04 and DP05 demonstrated competitive performance, except at BR~1.5;
- Overall, the films positioned at DP03 and DP04 showed a potential to achieve a net increase in internal and external heat transfer.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Geometrical Parameters | Symbol | Value |
---|---|---|
Passage aspect ratio | H/W | 1 |
Rib angle | α | 45° |
Rib height to width ratio | h/e | 1 |
Rib pitch to height ratio | p/h | 10 |
Hole diameter | D | 5 mm |
Ratio of film hole diameter to rib height | D/h | 0.38 |
Ratio of film hole vertical height to hole diameter | l/D | 1 |
Film hole inclination angle, lateral to mainstream flow direction | β | 30° |
Film hole inclination angle, in mainstream flow direction (compound angle) | γ | 90° |
BR = 0.8, DR = 1.6 | BR = 1.1, DR = 1.6 | BR = 1.7, DR = 1.6 | |||
---|---|---|---|---|---|
Cooling flow | Inlet | Total pressure | 101,565 Pa | 102,040 Pa | 103,515 Pa |
Total temperature | 153.00 K | ||||
Outlet | Static pressure | 101,405 Pa | |||
Wall | Temperature | 283.15 K | |||
Mainstream flow | Inlet | Total pressure | 101,555 Pa | ||
Total temperature | 302.00 K | ||||
Outlet | Static pressure | 101,315 Pa | |||
Wall | Adiabatic | - |
Width | Nodes | Elements | |
---|---|---|---|
Narrow (3D) | Narrow X1 | 6.1M | 5.6M |
Wide (7D) | X1 | 5.8M | 5.7M |
X2 | 12.7M | 12.5M | |
X4 | 25.2M | 24.9M | |
X8 | 50.7M | 50.1M | |
X16 | 78.3M | 77.7M |
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Jeon, S.; Son, C. Comparative Numerical Study of the Influence of Film Hole Location of Ribbed Cooling Channel on Internal and External Heat Transfer. Energies 2021, 14, 4689. https://doi.org/10.3390/en14154689
Jeon S, Son C. Comparative Numerical Study of the Influence of Film Hole Location of Ribbed Cooling Channel on Internal and External Heat Transfer. Energies. 2021; 14(15):4689. https://doi.org/10.3390/en14154689
Chicago/Turabian StyleJeon, Shinyoung, and Changmin Son. 2021. "Comparative Numerical Study of the Influence of Film Hole Location of Ribbed Cooling Channel on Internal and External Heat Transfer" Energies 14, no. 15: 4689. https://doi.org/10.3390/en14154689
APA StyleJeon, S., & Son, C. (2021). Comparative Numerical Study of the Influence of Film Hole Location of Ribbed Cooling Channel on Internal and External Heat Transfer. Energies, 14(15), 4689. https://doi.org/10.3390/en14154689