Determination of Heat Transfer Coefficient from Housing Surface of a Totally Enclosed Fan-Cooled Machine during Passive Cooling
Abstract
:1. Introduction
2. Analytical Background of Heat-Transfer Coefficient
2.1. Natural Convection
- Horizontal cylinder as a fin channel base.
- Horizontal U-shaped fin channels as semi-open fin channels on the top and bottom of the housing.
- Horizontal flat plate (upper and lower) as semi-open fin channels on the side of the housing.
- Horizontal and vertical flat plates as fin tips; and
- Vertical plates as end caps.
2.2. Radiation
3. Analytical Analysis Approach
4. Experimental Methodology and Analysis Method of Experimental Data
4.1. Experimental Methodology
4.2. Collected Data Analysis Approach
4.3. Uncertainty Analysis
5. Validation and Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Mean Fin’s Length (mm) | Mean Fin’s Height (mm) | Mean Fin’s Spacing (mm) | Number of Fins | |
---|---|---|---|---|
Fins on the top of the housing | 34.38 | 24.37 | 11.86 | 12 |
Fins on the underside of the housing | 184.25 | 24.37 | 11.86 | 12 |
Fins on the sides of the housing | 180.75 | 24.83 | 9.70 | 30 |
Component | Convection Correlation | Emissivity | View Factor | Area (m2) |
---|---|---|---|---|
Fin base | Horizontal cylinder | 0.8 | 1 | 0.0918 |
Fins on top of the housing | Horizontal fin channel | 0.8 | 0 | 0.0201 |
Fins on undersides of the housing | Horizontal fin channel | 0.8 | 0 | 0.1078 |
Fins on the sides of the housing | Horizontal flat plate (upper and lower faces) | 0.8 | 0 | 0.2692 |
Fin tips | Horizontal and vertical flat plate | 0.8 | 1 | 0.0209 |
End caps | Vertical flat plate | 0.8 | 1 | 0.0831 |
V (v) | Ts (°C) | Ta (°C) | h0 (W/m2/K) |
---|---|---|---|
15 | 42 | 20.5 | 6.91 |
17 | 47 | 21.6 | 7.14 |
19 | 51.5 | 20.8 | 7.39 |
22 | 61 | 21.6 | 7.78 |
25 | 64.5 | 21.2 | 7.93 |
V (v) | Ts (°C) | Ta (°C) | h0 (W/m2/K) |
---|---|---|---|
15 | 42 | 20.5 | 4.95 |
17 | 47 | 21.6 | 5.13 |
19 | 51.5 | 20.8 | 5.34 |
22 | 61 | 21.6 | 5.62 |
25 | 64.5 | 21.2 | 5.73 |
V (v) | I (A) | Ts (°C) | Ta (°C) | QT (W) | h0 (W/m2/K) |
---|---|---|---|---|---|
15 | 6.45 | 42 | 20.5 | 96.75 | 6.37 |
17 | 7.12 | 47 | 21.6 | 121.04 | 6.76 |
19 | 7.79 | 51.5 | 20.8 | 148.01 | 6.93 |
22 | 8.71 | 61 | 21.6 | 191.62 | 7.47 |
25 | 9.57 | 64.5 | 21.2 | 239.25 | 7.65 |
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Shams Ghahfarokhi, P.; Podgornovs, A.; Kallaste, A.; Cardoso, A.J.M.; Belahcen, A.; Vaimann, T.; Asad, B.; Tiismus, H. Determination of Heat Transfer Coefficient from Housing Surface of a Totally Enclosed Fan-Cooled Machine during Passive Cooling. Machines 2021, 9, 120. https://doi.org/10.3390/machines9060120
Shams Ghahfarokhi P, Podgornovs A, Kallaste A, Cardoso AJM, Belahcen A, Vaimann T, Asad B, Tiismus H. Determination of Heat Transfer Coefficient from Housing Surface of a Totally Enclosed Fan-Cooled Machine during Passive Cooling. Machines. 2021; 9(6):120. https://doi.org/10.3390/machines9060120
Chicago/Turabian StyleShams Ghahfarokhi, Payam, Andrejs Podgornovs, Ants Kallaste, Antonio J. Marques Cardoso, Anouar Belahcen, Toomas Vaimann, Bilal Asad, and Hans Tiismus. 2021. "Determination of Heat Transfer Coefficient from Housing Surface of a Totally Enclosed Fan-Cooled Machine during Passive Cooling" Machines 9, no. 6: 120. https://doi.org/10.3390/machines9060120
APA StyleShams Ghahfarokhi, P., Podgornovs, A., Kallaste, A., Cardoso, A. J. M., Belahcen, A., Vaimann, T., Asad, B., & Tiismus, H. (2021). Determination of Heat Transfer Coefficient from Housing Surface of a Totally Enclosed Fan-Cooled Machine during Passive Cooling. Machines, 9(6), 120. https://doi.org/10.3390/machines9060120