Pool Boiling Performance of a Sintered Aluminum Powder Wick for a Lightweight Vapor Chamber
Abstract
:1. Introduction
2. Experiment
2.1. Sample Preparation
2.2. Test for Wettability
2.3. Pool Boiling Apparatus and Data Reduction
3. Results and Discussion
3.1. Verification of Device Accuracy
3.2. Effect of Thickness on Boiling Performance
3.3. Effects of Particle Diameter and Porosity
3.4. Bubble Generation Visualization
3.5. Comparison with Other Studies
4. Conclusions
- (1)
- Liquid phase sintering technology was used to manufacture the sintered liquid wick of aluminum powder with different parameters. The porosity of the sample ranged from 38.2 ± 2.5% to 57.2 ± 2.5%. The alcohol droplets spread rapidly on the samples with all structural parameters. Among them, the sample with a particle diameter of 60 μm and porosity of 46.4% had the best wettability. The droplet spreading time decreased first and then increased with the increase in porosity when the particle diameter was 60 μm. This may be the result of the influence of the size of the gas escape channel and the capillary force on the droplet spreading speed.
- (2)
- The thickness has a significant effect on the boiling heat transfer performance of the sintered wick. When the wick was thick, the boiling heat transfer performance of the sintered wick was poor. As the thickness decreased, the boiling heat transfer performance of the sintered wick had a clear improvement, especially when the heat flux was high. The sintered porous wick with a thickness of 0.5 mm aluminum powder had the best heat transfer performance. This is because the thinner porous layer reduced the travel and resistance of bubbles escaping during the boiling heat transfer process.
- (3)
- The effect of porosity and particle diameter on the HTC is significant. When the particle diameter or the porosity was low, the HTC decreased gradually with the increase in heat flux. At high heat flux, the samples with a large particle diameter and high porosity had a higher HTC. It was found that the boiling heat transfer performance of D6P5-05 is the best. Its CHF of 636.3 kW/m2 is close to other samples, but its HTC is significantly better than other samples at high heat flux.
- (4)
- The porous structure of the sintered wick greatly improves the boiling heat transfer performance. Compared with the polished aluminum plate, the CHF increased by 1.7 times, and the HTC increased by about 4.6 times at a heat flux of 300 kW/m2. This is because the porous structure provides more nucleation sites compared with the polished aluminum plate. At the same time, the pores between the aluminum powder provide adequate channels for bubbles to escape.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclatures
CHF | critical heat flux, kW/m2 |
HTC(h) | heat transfer coefficient, kW/ (m2·K) |
q″ | heat flux, kW/m2 |
Tw | wall temperature, °C |
kCu | thermal conductivity of copper, W/ (m·K) |
ks | thermal conductivity of solder, W/ (m·K) |
x1 | the distance between T1 and the top of copper block, mm |
x2 | the distance between adjacent thermocouples, mm |
Ta | the temperature of surrounding acetone, °C |
∆T | wall superheat, °C |
ts | the thickness of the solder layer, mm |
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Sample | Porous Thickness | Porosity | Particle Diameter |
---|---|---|---|
D6P3-05 | 0.5 mm | 38.2 ± 2.5% | 60 μm |
D6P4-05 | 0.5 mm | 46.4 ± 2.5% | 60 μm |
D6P5-05 | 0.5 mm | 51.8 ± 2.5% | 60 μm |
D6P6-05 | 0.5 mm | 57.2 ± 2.5% | 60 μm |
D13P3-05 | 0.5 mm | 38.2 ± 2.5% | 132 μm |
D13P4-05 | 0.5 mm | 46.4 ± 2.5% | 132 μm |
D13P5-05 | 0.5 mm | 51.8 ± 2.5% | 132 μm |
D13P6-05 | 0.5 mm | 57.2 ± 2.5% | 132 μm |
D13P4-10 | 1 mm | 46.4 ± 2.5% | 132 μm |
D13P4-20 | 2 mm | 46.4 ± 2.5% | 132 μm |
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Ou, L.; Jiang, X.; Zhang, S.; Tang, Y.; Zhong, G.; Li, J. Pool Boiling Performance of a Sintered Aluminum Powder Wick for a Lightweight Vapor Chamber. Machines 2023, 11, 468. https://doi.org/10.3390/machines11040468
Ou L, Jiang X, Zhang S, Tang Y, Zhong G, Li J. Pool Boiling Performance of a Sintered Aluminum Powder Wick for a Lightweight Vapor Chamber. Machines. 2023; 11(4):468. https://doi.org/10.3390/machines11040468
Chicago/Turabian StyleOu, Liwen, Xingchi Jiang, Shiwei Zhang, Yong Tang, Guisheng Zhong, and Jie Li. 2023. "Pool Boiling Performance of a Sintered Aluminum Powder Wick for a Lightweight Vapor Chamber" Machines 11, no. 4: 468. https://doi.org/10.3390/machines11040468
APA StyleOu, L., Jiang, X., Zhang, S., Tang, Y., Zhong, G., & Li, J. (2023). Pool Boiling Performance of a Sintered Aluminum Powder Wick for a Lightweight Vapor Chamber. Machines, 11(4), 468. https://doi.org/10.3390/machines11040468