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带有铜螺旋编织网和泡沫铜复合芯体的平板微热管的传热特性

Thermal Transfer Characteristics of Flat Plate Micro Heat Pipe with Copper Spiral Woven Mesh and a Copper Foam Composite Wick.

作者信息

Zhang Yanhui, Zhao Zhengang, Luo Chuan, Zhang Dacheng

机构信息

Faculty of Information Engineering and Automation, Kunming University of Science and Technology, Kunming 650500, China.

Yunnan Key Laboratory of Computer Technology Applications, Kunming 650500, China.

出版信息

Nanomaterials (Basel). 2021 Oct 24;11(11):2821. doi: 10.3390/nano11112821.

Abstract

The thermal efficiency limitation of the Flat-plate Micro Heat Pipe (FMHP) is a major challenge in the development of the FMHP, where the effect of wick structure and wettability on its thermal performance is studied to improve the thermal efficiency of the FMHP. In this work, a copper spiral woven mesh and copper foam Composite Wick FMHP (CW-FMHP) is designed based on the conventional Copper Foam Wick FMHP (CFW-FMHP), and its thermal performance is analyzed regarding the wick structure and internal gas-liquid two-phase flow characteristics. An oxidized copper spiral woven mesh and copper foam Composite Wick FMHP (OCW-FMHP) has been further developed through the modification of composite wick wettability. The performance tests are carried out with the thermal transfer characteristics of CW-FMHP, OCW-FMHP, and CFW-FMHP under different filling rates and different thermal powers. The experimental results show that the thermal transfer performance of CW-FMHP reaches the optimal under a liquid filling rate of 150%, where the maximum thermal power is 15.7 W, 35.3% higher than that of the CFW-FMHP under the same filling rate. Moreover, the dynamic response characteristics of the CW-FMHP are significantly improved. The thermal resistance of the CW-FMHP is 0.48 °C/W under the filling rate of 150% at the thermal power of 10 W with a reduction of 9.4% compared to the CFW-FMHP under the same condition. Furthermore, the optimal filling rate for OCW-FMHP is lower compared with the CW-FMHP. The maximum thermal power of OCW-FMHP increases to 17.8 W while the thermal resistance reduces to 0.34 °C/W under the liquid filling rate of 140%. This implies that the composite wick structure designed in this work can improve the thermal transfer performance of the FMHP, and the composite wick with wettability modification is more effective regarding both thermal resistance and maximum thermal power.

摘要

平板微热管(FMHP)的热效率限制是其发展过程中的一个主要挑战,在此研究了毛细芯结构和润湿性对其热性能的影响,以提高FMHP的热效率。在这项工作中,基于传统的泡沫铜毛细芯FMHP(CFW-FMHP)设计了一种铜螺旋编织网与泡沫铜复合毛细芯FMHP(CW-FMHP),并从毛细芯结构和内部气液两相流特性方面对其热性能进行了分析。通过复合毛细芯润湿性改性,进一步开发了一种氧化铜螺旋编织网与泡沫铜复合毛细芯FMHP(OCW-FMHP)。对CW-FMHP、OCW-FMHP和CFW-FMHP在不同充液率和不同热功率下的传热特性进行了性能测试。实验结果表明,CW-FMHP在充液率为150%时传热性能达到最优,此时最大热功率为15.7 W,比相同充液率下的CFW-FMHP高35.3%。此外,CW-FMHP的动态响应特性也得到了显著改善。在热功率为10 W、充液率为150%时,CW-FMHP的热阻为0.48℃/W,与相同条件下的CFW-FMHP相比降低了9.4%。此外,OCW-FMHP的最优充液率比CW-FMHP低。在充液率为140%时,OCW-FMHP的最大热功率提高到17.8 W,而热阻降低到0.34℃/W。这意味着本文设计的复合毛细芯结构可以提高FMHP的传热性能,且经过润湿性改性的复合毛细芯在热阻和最大热功率方面更有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69bb/8625468/ce6760a1c490/nanomaterials-11-02821-g001.jpg

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