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Two-Level Copper Oxide Nanostructured Surfaces for Condensation Heat Transfer

机译:两级氧化铜纳米结构表面的冷凝传热

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Condensation has been widely explored because of its importance in numerous applications including water desalination, water harvesting, and power generation. Previous studies have shown that the enhancement in condensation heat transfer can be achieved by the design of structured surfaces with desired surface chemistry. Especially, nanostructured surfaces have enhanced thermal transport performance by promoting dropwise condensation that shows lower thermal resistances than film condensation. Thus, the control of surface wettability has drawn significant interest by modulating surface morphology and surface chemistry. In this study, we explore microscopic-level droplet dynamics using various copper surfaces. Nanostructured copper surfaces are prepared by chemical immersion methods using alkaline solution, and further functionalized by using dodecanoic acid in order to provide hydrophobicity. Their wetting properties and condensation process are investigated using an optical microscope by capturing real-time phase change process. The results show that the surface morphology with the highest feature size ratio enables to achieve the highest droplet volume growth rate due to the hindering of pinning of droplets and droplet jumping events. The understanding of condensation behaviors using the copper oxide nanostructured surfaces can provide design rules for efficient surface structures for numerous condensation applications.
机译:由于凝结在许多应用中的重要性,包括水脱盐,集水和发电,凝结已被广泛研究。先前的研究表明,冷凝水传热的增强可以通过设计具有所需表面化学性质的结构化表面来实现。尤其是,纳米结构表面通过促进逐滴冷凝而显示出比薄膜冷凝更低的热阻,从而提高了热传输性能。因此,通过调节表面形态和表面化学来控制表面润湿性引起了极大的兴趣。在这项研究中,我们探索使用各种铜表面的微观水平的液滴动力学。纳米结构的铜表面是通过使用碱溶液的化学浸渍法制备的,并通过使用十二烷酸进行进一步功能化以提供疏水性。通过捕获实时相变过程,使用光学显微镜研究了它们的润湿性能和冷凝过程。结果表明,由于阻碍了液滴的钉扎和液滴跳跃事件,具有最高特征尺寸比的表面形态能够实现最高的液滴体积生长速率。对使用氧化铜纳米结构化表面的冷凝行为的理解可以为众多冷凝应用的有效表面结构提供设计规则。

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