Performance Evaluation of the Electric Machine Cooling System Employing Nanofluid as an Advanced Coolant
Abstract
:1. Introduction
2. Modeling
2.1. Geometry
2.2. Mathematical Model
2.3. Numerical Model
2.3.1. Grid Independence Validation
2.3.2. Validation of the Numerical Model
2.3.3. Boundary Conditions
3. Results
3.1. Heat Transfer Characteristics
3.2. Fluid Flow Characteristics
3.3. Overall Performance Evaluation
4. Conclusions
- (a)
- For the same structural geometry, the heat transfer coefficient increases with the increase in Reynolds number. In addition, at any pumping power, the increase in the concentration of nanoparticles increases the heat transfer coefficient.
- (b)
- In reference to (a), from a specific Reynolds number onward, due to the viscosity, the slope of the friction resistance changes decreases. Therefore, the heat transfer coefficient increases with the Reynolds number, and at higher Reynolds numbers, the slope of the increasing heat transfer coefficient decreases.
- (c)
- Adding nanoparticles to a base fluid affects the heat transfer coefficient in two different ways. While increasing the nanoparticle concentration enhances the heat transfer coefficient by increasing the thermal conductivity of the nanofluid, increasing the nanoparticle concentration can lead to a reduction in the temperature gradient at the wall of the channels. In this study, numerical results for the nanofluid with a volume fraction of 5% in the cooling jacket channels with 8 turns show a very small heat transfer coefficient enhancement resulting from a significant decrease in temperature gradient at the channel walls.
- (d)
- Due to the increase in the cooling cross-sectional area, increasing the turns number of the channel improves the heat transfer from the electric motor to the coolant fluid, thus increasing the heat transfer coefficient.
- (e)
- Increasing the turns number of channels leads to a greater enhancement of heat transfer coefficient at larger Reynolds numbers. This is due to the fact that the pitch of the channel decreases with the turns number. As the smaller pitch of spiral channels causes the friction factor to decrease further by increasing the Reynolds number, a greater enhancement of the heat transfer coefficient is achieved.
- (f)
- Due to the smaller pitch of the channel with a higher number of turns, at larger Reynolds numbers, the friction factor decreases more than in the channel with a lower number of turns, so the percentage of the relative increase in pressure drop decreases at larger Reynolds numbers for spiral channels with a higher number of turns.
- (g)
- According to the results and discussions, it was demonstrated that the main factor in improving the overall performance of the cooling system is the increase in its heat transfer performance. Therefore, the key factor that causes nanofluids with excessive nanoparticle concentrations to have a lower overall performance is the dual effect of adding nanoparticles on the heat transfer rather than the negative effect of increasing pressure drop.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Cooling Jacket | Electric Motor | |
---|---|---|
Length (mm) | 240 | 240 with coils |
Diameter (mm) | 210 | 190 |
Thickness (mm) | 10 | ― |
Coil pitch (mm) | 26 | ― |
Channel dimensions (mm) | 6 × 6 | ― |
Number of Nodes | Computed Heat Transfer Coefficient | Percentage Variation |
---|---|---|
2 × 106 | 119.93 | — |
4 × 106 | 133.52 | 11.33 |
6 × 106 | 131.92 | 1.2% |
8 × 106 | 131.78 | 0.11% |
Re | 1000 | 1500 | 2000 |
---|---|---|---|
Simulated Nu | 16.7615 | 21.5649 | 24.5844 |
Calculated Nu by the correlation proposed in [38] | 16.226 | 19.986 | 23.171 |
Deviation | 3.3% | 7.9% | 6.1% |
φ | ρ (kg/m3) | Cp (J/kg K) | k (W/m K) | μ (Pa s) |
---|---|---|---|---|
0.01 | 1026.8 | 4047 | 0.6408 | 9.13 × 10−4 |
0.02 | 1056.6 | 3922.4 | 0.6691 | 9.37 × 10−4 |
0.04 | 1116 | 3693.2 | 0.7014 | 9.86 × 10−4 |
0.05 | 1140.15 | 3466.95 | 0.7205 | 9.96 × 10−4 |
Al2O3 | 3970 | 765 | 40 | — |
Water | 997.1 | 4179 | 0.613 | 8.91 × 10−4 |
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Deriszadeh, A.; de Monte, F. Performance Evaluation of the Electric Machine Cooling System Employing Nanofluid as an Advanced Coolant. ChemEngineering 2021, 5, 53. https://doi.org/10.3390/chemengineering5030053
Deriszadeh A, de Monte F. Performance Evaluation of the Electric Machine Cooling System Employing Nanofluid as an Advanced Coolant. ChemEngineering. 2021; 5(3):53. https://doi.org/10.3390/chemengineering5030053
Chicago/Turabian StyleDeriszadeh, Ali, and Filippo de Monte. 2021. "Performance Evaluation of the Electric Machine Cooling System Employing Nanofluid as an Advanced Coolant" ChemEngineering 5, no. 3: 53. https://doi.org/10.3390/chemengineering5030053
APA StyleDeriszadeh, A., & de Monte, F. (2021). Performance Evaluation of the Electric Machine Cooling System Employing Nanofluid as an Advanced Coolant. ChemEngineering, 5(3), 53. https://doi.org/10.3390/chemengineering5030053