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中国物理学会期刊

复合结构吸液芯超薄热管传热性能

Heat Transfer Performance of Ultrathin Heat Pipe with Composite Structure Wick

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  • 为突破超薄热管在制造工艺复杂性与传热性能之间的矛盾,本文成功开发了一种厚度仅为0.4 mm的超薄热管,其吸液芯采用创新的“铜槽道—植物纤维”分层复合结构。以化学刻蚀铜槽道(深0.16 mm)为骨架,以植物纤维为毛细功能层,通过结构自限位实现一体化集成,从而省去了传统复杂的界面处理工艺。以去离子水为工质,通过实验研究揭示了刻蚀参数、充液率及工作倾角对热管传热性能的协同影响机制。结果表明:槽深与刻蚀时间近似呈线性正相关,而与温度则呈二次多项式关系;适当提高刻蚀温度并缩短时间,能够有效增大槽道表面粗糙度并增强其亲水性,为高效毛细输运奠定结构基础。在不同倾角下,热管的总体热性能随工作倾角由逆重力向顺重力方向变化而持续改善。在水平布置、充液率为30.6%、加热功率为7 W的工况下,该0.4 mm超薄热管的热阻为0.75 K/W,对应等效导热系数达11500 W/(m· K),在结构高度紧凑的同时展现出优异的传热性能。

    This study presents the development of a high-performance ultrathin heat pipe (UTHP) with a thickness of only 0.40 mm, featuring an innovative “copper groove–plant fiber” hierarchical composite wick. The structure utilizes chemically etched copper micro-grooves (depth: 0.16 mm) as a structural backbone, with degreased cotton fibers embedded via geometric confinement by the groove ridges—eliminating the need for high-temperature sintering or adhesives and thereby avoiding interfacial thermal resistance associated with conventional composite wicks. Using deionized water as the working fluid, systematic experiments were conducted to investigate the synergistic effects of etching parameters, filling ratio (20.3%, 30.6%, and 40.8%), and orientation angle (–90°, 0°, 90°, 180°) on thermal performance under heating powers ranging from 1 W to 10 W. The results show that groove depth is approximately linearly proportional to etching time and can be described by a quadratic polynomial function of etching temperature; increasing etching temperature while shortening duration effectively enhances surface roughness and wettability, providing a favorable foundation for capillary transport. Among the tested conditions, the UTHP with a 30.6% filling ratio exhibits the best overall thermal performance: it achieves the lowest total thermal resistance of 0.75 K/W at 7 W in horizontal orientation, corresponding to an equivalent thermal conductivity of 11,500 W/(m· K). Transient response tests under 0→7 W step heating further confirm that this filling ratio yields the most balanced temperature rise across symmetric evaporation-zone sensors, indicating uniform liquid distribution and stable phase-change behavior. Orientation tests reveal that thermal resistance is highly sensitive to gravity direction: total resistance is minimized at 90° (favorable gravity) and maximized at –90° (adverse gravity). Detailed resistance decomposition shows that condensation resistance dominates under adverse or inverted orientations (contributing over 50% of total resistance), whereas evaporative resistance becomes the primary limitation (~69%) in horizontal or favorable-gravity configurations. These findings demonstrate that the proposed UTHP successfully integrates structural compactness, simplified fabrication, and excellent thermal performance, offering a promising, low-cost, and eco-friendly solution for thermal management in ultra-thin electronic devices.

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