Heat transfer enhancement of three-dimensional oscillating heat pipe based on evaporation surface hydrophilicity regulation for thermal management

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL International Journal of Heat and Mass Transfer Pub Date : 2024-06-29 DOI:10.1016/j.ijheatmasstransfer.2024.125911
Kaibao Liu, Zeyu Xu, Guotao Meng, Haolin Gan, Changhui Liu, Jiateng Zhao
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Abstract

To improve the thermal management performance of high heat flux components in confined spaces, two three-dimensional oscillating heat pipes (3D-OHPs) with different adiabatic section lengths were designed in this work. 3D-OHPs with surfaces of different hydrophilicity was fabricated using alkaline-assisted oxidation technology, and the impact of surface hydrophilicity on the heat transfer performance of 3D-OHPs was investigated experimentally. The results indicated that the greater the hydrophilicity of the 3D-OHP, the better its start-up and heat transfer performance. A 3D-OHP with a shorter adiabatic section demonstrates slightly inferior start-up performance under identical hydrophilicity conditions but exhibits better overall heat transfer performance. It is also found that the 3D-OHP can initiate at 20 W under four distinct hydrophilicity conditions. Compared to the untreated 3D-OHP, the super-hydrophilic 3D-OHP reduces start-up temperature by 17.76 % and start-up time by 35.31 %. Under high-power conditions, the super-hydrophilic 3D-OHP exhibits a 37.6 % increase in thermal conductivity and a 61.5 % improvement in temperature uniformity compared to the untreated 3D-OHP. Furthermore, the thermal resistance and evaporation section temperature of the super-hydrophilic 3D-OHP are reduced by 56.69 % and 14.33 %, respectively. This study can broaden the approach to enhance the heat transfer performance of 3D-OHP and provide more application scenarios for the thermal management of power devices.

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基于蒸发表面亲水性调节的三维振荡热管传热增强技术,用于热管理
为了改善密闭空间中高热流量元件的热管理性能,本研究设计了两种具有不同绝热截面长度的三维振荡热管(3D-OHPs)。利用碱辅助氧化技术制作了表面亲水性不同的三维振荡热管,并通过实验研究了表面亲水性对三维振荡热管传热性能的影响。结果表明,3D-OHP 的亲水性越大,其启动和传热性能越好。在亲水性相同的条件下,绝热截面较短的 3D-OHP 的启动性能稍差,但总体传热性能较好。研究还发现,在四种不同的亲水性条件下,3D-OHP 可以在 20 W 的功率下启动。与未经处理的 3D-OHP 相比,超亲水 3D-OHP 的启动温度降低了 17.76%,启动时间缩短了 35.31%。在高功率条件下,与未经处理的 3D-OHP 相比,超亲水 3D-OHP 的热导率提高了 37.6%,温度均匀性提高了 61.5%。此外,超亲水 3D-OHP 的热阻和蒸发段温度分别降低了 56.69% 和 14.33%。这项研究拓宽了提高 3D-OHP 热传导性能的途径,为功率器件的热管理提供了更多的应用场景。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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