An Experimental Investigation on the Heat Transfer Characteristics of Pulsating Heat Pipe with Adaptive Structured Channels
Abstract
:1. Introduction
2. Experimental Apparatus
2.1. Prototype Design
2.2. Test Loop and Operating Conditions
2.3. Data Processing
3. Results and Discussion
3.1. Temperature Variations under Different Heat Loads
3.2. Start-Up Characteristics under High Heat Load
3.3. Thermal Resistance
3.4. Effect of Orientation
4. Conclusions
- The ASCPHP reached thermal equilibrium more quickly than the other types, and when the FR was set to 40%, it maintained the lowest temperature. This was due to the more uniform temperature distribution achieved in the ASCPHP, facilitated by the directional and orderly two-phase flow within its multiple channels. At an FR of 40%, the ASCPHP consistently displayed the lowest temperatures in the evaporation section across all heat loads, showcasing its superior heat transfer performance compared to conventional PHPs.
- The ASCPHP demonstrated superior start-up performance, especially when subjected to high heat loads. It achieved thermal equilibrium most rapidly, notably at an FR of 40%, leading to a lower steady-state temperature. To be precise, the ASCPHP accomplished full start-up within a mere 1249 s at an FR of 40%, maintaining a steady temperature of around 65 °C, which marked a 12% decrease compared to the other two PHPs.
- Adaptive structured channels significantly enhanced heat transfer efficiency and reduced the thermal resistance of the PHP, especially under high heat load conditions. When FR = 40%, the ASCPHP consistently maintained lower thermal resistance compared to the other two PHP types, achieving a maximum reduction of up to 37.5%. The lowest thermal resistance measured for the ASCPHP was 0.69 °C/W.
- The ASCPHP effectively mitigates the adverse effects of gravity, resulting in reduced dependence on gravity for liquid replenishment and improved heat transfer performance. When placed horizontally, the ASCPHP demonstrated lower thermal resistance compared to the other two PHP types. As the orientation angle increased to 45°, the change in thermal resistance remained relatively minor, underscoring the ASCPHP’s minimal reliance on gravity for its heat transfer characteristics.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | PHP Types | ||
---|---|---|---|
ECPHP | ACPHP | ASCPHP | |
(mm) | 1.5 | 1.7 | 2.0 |
(mm) | 1.3 | 1.0 | |
Channel depth (mm) | 1.5 | 1.5 | 1.5 |
Total length (mm) | 86.5 | 86.5 | 86.5 |
Expansion angle | 0° | 0° | 1.36° |
Number of channels | 18 | 18 | 18 |
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Yu, J.; Hong, S.; Koudai, S.; Dang, C.; Wang, S. An Experimental Investigation on the Heat Transfer Characteristics of Pulsating Heat Pipe with Adaptive Structured Channels. Energies 2023, 16, 6988. https://doi.org/10.3390/en16196988
Yu J, Hong S, Koudai S, Dang C, Wang S. An Experimental Investigation on the Heat Transfer Characteristics of Pulsating Heat Pipe with Adaptive Structured Channels. Energies. 2023; 16(19):6988. https://doi.org/10.3390/en16196988
Chicago/Turabian StyleYu, Jiangchuan, Sihui Hong, Sasaki Koudai, Chaobin Dang, and Shuangfeng Wang. 2023. "An Experimental Investigation on the Heat Transfer Characteristics of Pulsating Heat Pipe with Adaptive Structured Channels" Energies 16, no. 19: 6988. https://doi.org/10.3390/en16196988
APA StyleYu, J., Hong, S., Koudai, S., Dang, C., & Wang, S. (2023). An Experimental Investigation on the Heat Transfer Characteristics of Pulsating Heat Pipe with Adaptive Structured Channels. Energies, 16(19), 6988. https://doi.org/10.3390/en16196988