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不同孔径泡沫铜填充对平板微热管传热特性的影响
引用本文:王岗, 杨永清, 余万, 胡涛. 不同孔径泡沫铜填充对平板微热管传热特性的影响[J]. 农业工程学报, 2022, 38(10): 54-60. DOI: 10.11975/j.issn.1002-6819.2022.10.007
作者姓名:王岗  杨永清  余万  胡涛
作者单位:1.三峡大学水电机械设备设计与维护湖北省重点实验室,宜昌 443002;2.三峡大学机械与动力学院,宜昌 443002
基金项目:江苏省"双创计划"科技副总项目(FZ20190125)
摘    要:
为提升平板微热管传热能力,该研究以毛细力为出发点,将丝网芯-泡沫铜置于平板微热管中每一独立微细热管内部,使其与微槽芯组成复合吸液芯。通过调节平板微热管蒸发段加热功率的大小,研究反重力(倾角,即平板微热管与水平面之间的夹角小于0°)、微重力(倾角等于0°)及重力(倾角大于0°)工况下的传热特性及不同孔径泡沫铜对传热性能的影响。结果表明:反重力条件下,当倾角小于-10°时,平板微热管性能明显恶化,复合吸液芯对平板微热管传热无强化作用;添加孔径分别为0.2、0.5和0.8 mm泡沫铜的平板微热管在微重力或重力作用下传热性能明显强化,最小热阻分别为0.13、0.17和0.13 K/W;有效导热系数增加率分别为3.57、2.43和3.54。研究结果可为平板微热管强化传热提供数据参考,拓展其在热控领域中的应用范围。

关 键 词:加热  温度  孔径  平板微热管  泡沫铜  热阻
收稿时间:2022-01-20
修稿时间:2022-04-24

Effects of copper foam with different pore diameters on the heat transfer of flat-plate micro heat pipe
Wang Gang, Yang Yongqing, Yu Wan, Hu Tao. Effects of copper foam with different pore diameters on the heat transfer of flat-plate micro heat pipe[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2022, 38(10): 54-60. DOI: 10.11975/j.issn.1002-6819.2022.10.007
Authors:Wang Gang  Yang Yongqing  Yu Wan  Hu Tao
Affiliation:1.Hubei Key Laboratory of Hydroelectric Machinery Design & Maintenance, China Three Gorges University, Yichang 443002, China;2.College of Mechanical & Power Engineering, China Three Gorges University, Yichang 443002, China
Abstract:
Abstract: A heat pipe is one of the heat transfer elements to effectively remove the heat from the high-temperature surface. A flat-plate micro heat pipe (FPMHP) has been developed to explore the heat transfer characteristics in previous studies. However, it is very necessary to further enhance the FPMHP heat transfer performance, particularly in antigravity. An effective way can be to increase the capillary force for the higher heat-transfer function against gravity because the capillary structure can pose a significant influence on the thermal performance during operation. In this study, the copper foam with different pore diameters was employed to place inside each micro heat pipe for the higher capillary force. The wire mesh-copper foam and micro-grooved wick were combined to form a composite wick, in order to promote the backflow of condensate for the more nucleation points at boiling. The copper foam was located between the micro-fins on the upper and lower surface, where there was no direct contact with the upper and lower surface. The main functions of copper foam were: i) To enhance the evaporation/boiling heat transfer; ii) To reduce the pressure drop of the backflow of condensate; iii) To enhance the condensation heat transfer. Three groups were also set to clarify the influence of the pore diameters of copper foam on the FPMHP thermal performance, including the anti-gravity (inclination angle of less than 0° was the angle between the FPMHP and horizontal plane), micro-gravity (inclination angle was 0°), and gravity (inclination angle was more than 0°). The results were as follows. The better heat-transfer performance of FPMHP was achieved at the micro-gravity, where the thermal resistance of FPMHP with the composite wick was lower than that with the single grooved wick. There was also an enhancement effect of composite wick on the FPMHP heat-transfer performance. But, a seriously deteriorated effect was found under anti-gravity operation, when the inclination angle was less than -10°. Furthermore, the temperature difference between the evaporation and condensation section was also analyzed to further explore the FPMHP performance. Specifically, better thermal performance was gained, as the temperature difference was reduced significantly. Therefore, the best FPMHP performance was achieved when the inclination angle was 0°, due mainly to the smaller temperature difference. The minimum thermal resistances of the FPMHP with different pore diameters were 0.13, 0.17, and 0.13 K/W, respectively, which were far lower than those with the grooved wick. Compared with the FPMHP without copper foam, the increase rates of thermal conductivity of FPMHP with pore diameters of 0.2, 0.5 and 0.8 mm were 3.57, 2.43, and 3.54, respectively, indicating the better thermal performance of the FPMHP using a composite wick. A comparison was also made on the current heat pipe, where the minimum thermal resistance of the FPMHP was significantly lower than those. Therefore, the copper foam can be expected to improve the heat transfer performance of the FPMHP with the composite wick. As such, the lower thermal resistance can rapidly remove the heat generated by the heating element. The findings can also provide strong theoretical support to enhance the heat transfer of heat pipes for the application in the field of thermal control.
Keywords:heating   temperature   pore diameter   flat-plate micro heat pipe   copper foam   thermal resistance
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