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首页> 外文期刊>Nanoscale and microscale thermophysical engineering >Fabrication and Thermal Characterization of Composite Cu-CNT Micropillars for Capillary-driven Phase-Change Cooling Devices
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Fabrication and Thermal Characterization of Composite Cu-CNT Micropillars for Capillary-driven Phase-Change Cooling Devices

机译:用于毛细管驱动的相变冷却装置的复合Cu-CNT微米的制备和热表征

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摘要

This paper presents the fabrication, testing, and modeling of an array of composite copper-carbon nanotubes (Cu-CNT) micropillars as a wick structure for potential application in passive phase-change cooling systems. This novel wick structure has a larger spacing at the base of the micropillars to provide a higher liquid permeability and mushroom-like structures on the top surface of the micropillars with a smaller spacing to provide a greater capillary pressure. The composite Cu-CNT micropillars were fabricated by an electrochemical deposition method on a patterned copper template. Cauliflower-like nanostructures were then grown on the top surface of the micropillars using chronoamperometry technique to improve the capillary pressure and thermal performance of the wick structure. After successful fabrication of the micropillars, a series of tests were conducted to quantify the thermal performance of the wick structures. The results demonstrate superior thermal and corrosion performances for composite Cu-CNT micropillars compared to those of copper micropillars. Additionally, a thermal resistance network analysis was conducted to model the thermal performance of the fabricated mushroom-shaped micropillar array. Model predictions were compared with the experimental results and good agreement was observed.
机译:本文介绍了一种复合铜 - 碳纳米管(Cu-CNT)微米作为芯结构的制造,测试和建模,作为芯结构,用于被动相变冷却系统中的潜在应用。该新型芯层结构在微米的底部具有更大的间隔,以提供更高的液态渗透率和蘑菇状结构,在微米的顶表面上具有较小的间隔以提供更大的毛细管压力。通过在图案化的铜模板上通过电化学沉积方法制造复合Cu-CNT微粒。然后使用计时率技术在微米的顶表面上生长花椰菜状纳米结构,以改善芯片结构的毛细管压力和热性能。在成功制造微米之后,进行了一系列测试以量化芯结构的热性能。结果表明,与铜微米相比,复合Cu-CNT微米的优异的热和腐蚀性能。另外,进行了热阻网络分析以模拟制造的蘑菇形微米阵列的热性能。模型预测与实验结果进行了比较,观察到良好的一致性。

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