首页> 外文期刊>International Journal of Heat and Mass Transfer >Superhydrophilic catenoidal aluminum micropost evaporator wicks
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Superhydrophilic catenoidal aluminum micropost evaporator wicks

机译:超硫酸皮瓣铝微孔蒸发器芯吸

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We introduce the superhydrophilic catenoidal aluminum (Al) wicks fabricated by a multi-step wet etching process followed by wet chemical oxidation. The unique three-dimensional sidewall morphology of the developed wick provides the re-pinning of the liquid meniscus during the receding, which substantially increases the thin evaporative film area and the resulting heat transfer performance. The nanostructured aluminum oxide layer (AlO(OH)) was incorporated to enhance both the corrosion resistance as well as the wettability of the wick with water. The experiment shows that the heat transfer coefficient of the developed wick rapidly increases as the heat flux increases up to ~60 W/cm~2. The maximum heat transfer coefficient of the catenoidal wick is measured to be ~117% higher than that of the previously-reported cylindrical ones. The numerical simulation clarifies that the increase in the heat transfer coefficient was due to the ~75% increase in the thin evaporative film area. The polarization scanning test shows that the corrosion resistance of the superhydrophilic catenoidal wicks was increased by ~82% compared to the unstructured ones, which clarifies the incorporated aluminum oxide layer acts as an effective corrosion barrier. This work introduces the Al evaporator wicks with substantially improved heat transfer as well as anti-corrosion performances, which will help develop ultra-light, high-performance heat spreaders.
机译:我们介绍通过多步骤湿法蚀刻工艺制造的过硫基皮质铝(Al)芯,然后进行湿化学氧化。发育灯芯的独特的三维侧壁形貌提供了在后退期间的液体弯液面的再钉扎,这基本上增加了薄的蒸发膜面积和所得的传热性能。纳米结构氧化铝层(AlO(OH))掺入以增强耐腐蚀性以及水的芯片的润湿性。实验表明,随着热通量增加至约60W / cm〜2,发育芯的传热系数迅速增加。 Catenoidal芯的最大传热系数测量比先前报告的圆柱形孔的最大传热系数为约117%。数值模拟阐明了传热系数的增加由于薄蒸发膜面积增加了〜75%。偏振扫描试验表明,与非结构化的芯片相比,超中性皮下芯片的耐腐蚀性增加了〜82%,其阐明了掺入的氧化铝层作为有效的腐蚀屏障。这项工作介绍了基本上改善的传热以及防腐性能的Al蒸发器芯,这将有助于开发超轻,高性能的散热器。

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