Comparing the Performance of a Straight-Channel Heat Sink with Different Channel Heights: An Experimental and Numerical Study
Abstract
:1. Introduction
2. Experimental Apparatus and Procedure
2.1. Experimental Apparatus
2.2. Experimental Procedure
2.3. Measurement Uncertainty
3. Numerical Model Development
3.1. Governing Equations
3.2. Boundary Conditions
3.3. Mesh Sensitivity Analysis
4. Results and Discussion
4.1. Temperature Difference Variations
4.2. Local Nusselt Number Variation
4.3. Velocity and Flow Characteristics
4.4. Performance Evaluation Criterion
5. Conclusions
- When the height of the channel is reduced from 12.7 to 10 mm, the temperature distribution along the heat sink is diminished at all flow rates. When the maximum heat flow of 7.43 W/cm2 is combined with a heat flux of , the maximum temperature drops from 33.85 °C to 23.54 °C. Under the same circumstances, the temperature of the channels with 7 and 4 mm heights reaches 36.67 °C and 40.16 °C, respectively.
- When the lowest heat flux and flow rate are 3.8 W/cm2 and , reducing the channel heights to 7 mm and 4 mm results in a 10% and 44.3% increase in maximum temperature compared to 12.7 mm channel heights. In contrast, reducing the height to 10 mm corresponds to a 19.2% decrease in temperature.
- The local Nu number descends along the flow direction and has a rising trend with increasing flow rates. Increasing the flow rate from 6.94 to in a channel with a height of 10 mm yields a 27.95% growth in the maximum local Nusselt number. For channels with heights of 12.7 mm, 7 mm, and 4 mm, the exact change in flow rate has a 19.42%, 23.15%, and 16.66% influence on increasing the maximum local Nu number.
- Decreasing the channel height to 10 mm ameliorates the heat sink’s heat transfer performance with the average Nu number of 76.2 with flow rate and 3.86 W/cm2 heat flux. However, reducing the channel height from 12.7 mm to 7 and 4 mm results in a declining Nu number; thus, the average Nu number decreases from 66.68 to 55.68 for the former and reaches 44.64 for the latter.
- Reducing the channel height to 7 and 4 mm leads to a higher velocity area in the open space above the channel and a decreased velocity distribution between the channel area, affecting heat transfer performance. However, with a 10 mm channel height, the higher velocity distribution increases between the channel with more flow mixing in the open space above the heat sink.
- As the channel height lowers from 12.7 to 10 mm, the highest performance evaluation criterion is attained at 1.44, 1.22, and 1.34, respectively, for flow rates of 6.94, 13.25, and . Except for the 7 mm height with a flow rate, all other designs with lower heights resulted in a PEC of less than 1.0, indicating inferior thermal performance when compared to a full-height channel with 12.7 mm height.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Specific heat capacity (J/kg·K) | |
Diameter (m) | |
Hydraulic diameter (m) | |
Friction factor (dimensionless) | |
F | Body force (N) |
Heat transfer coefficient (W/m2·K) | |
H | Height (m) |
Channel height (m) | |
Heat sink height (m) | |
Water thermal conductivity (W/m·K) | |
Heat sink length (m) | |
Local Nusselt number (dimensionless) | |
Average Nu number (dimensionless) | |
Pressure (Pa) | |
Heat flux (W/m2) | |
r | Measured variable |
Converge criterion | |
Reynolds number (dimensionless) | |
s | Iteration number |
Temperature (°C) | |
Bulk temperature (°C) | |
u | Velocity in x-direction (m/s) |
Combined standard uncertainty | |
Measurement error | |
v | Velocity in y-direction (m/s) |
w | Velocity in z-direction (m/s) |
W | Width (m) |
Channel width (m) | |
Heat sink width (m) | |
Measured variables | |
Greek symbols | |
Density (kg/m3) | |
Dynamic viscosity (Pa·s) | |
Subscripts | |
Unit vector in x-direction | |
Unit vector in y-direction | |
Unit vector in z-direction |
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Parameters | Components | Uncertainty |
---|---|---|
Temperature | T-type thermocouple | 0.75% |
Flow rate | Digital flow meters | 0.44% |
Nu number | - | % |
Components | Height (mm) | Width (mm) | Length (mm) |
---|---|---|---|
Heat sink | 12.7 | 37.5 | 37.5 |
Channel | 12.7, 10, 7, 4 | 1.88 | 37.5 |
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Hajialibabaei, M.; Saghir, M.Z.; Bicer, Y. Comparing the Performance of a Straight-Channel Heat Sink with Different Channel Heights: An Experimental and Numerical Study. Energies 2023, 16, 3825. https://doi.org/10.3390/en16093825
Hajialibabaei M, Saghir MZ, Bicer Y. Comparing the Performance of a Straight-Channel Heat Sink with Different Channel Heights: An Experimental and Numerical Study. Energies. 2023; 16(9):3825. https://doi.org/10.3390/en16093825
Chicago/Turabian StyleHajialibabaei, Mahsa, Mohamad Ziad Saghir, and Yusuf Bicer. 2023. "Comparing the Performance of a Straight-Channel Heat Sink with Different Channel Heights: An Experimental and Numerical Study" Energies 16, no. 9: 3825. https://doi.org/10.3390/en16093825
APA StyleHajialibabaei, M., Saghir, M. Z., & Bicer, Y. (2023). Comparing the Performance of a Straight-Channel Heat Sink with Different Channel Heights: An Experimental and Numerical Study. Energies, 16(9), 3825. https://doi.org/10.3390/en16093825