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Effect of droplet morphology on growth dynamics and heat transfer during condensation on superhydrophobic nanostructured surfaces

机译:液滴形态对超疏水纳米结构表面凝结过程中生长动力学和传热的影响

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Condensation on superhydrophobic nanostructured surfaces offers new opportunities for enhanced energy conversion, efficient water harvesting, and high performance thermal management. These surfaces are designed to be Cassie stable and favor the formation of suspended droplets on top of the nanostructures as compared to partially wetting droplets which locally wet the base of the nanostructures. These suspended droplets promise minimal contact line pinning and promote passive droplet shedding at sizes smaller than the characteristic capillary length. However, the gas films underneath such droplets may significantly hinder the overall heat and mass transfer performance. We investigated droplet growth dynamics on superhydrophobic nanostructured surfaces to elucidate the importance of droplet morphology on heat and mass transfer. By taking advantage of well-controlled functionalized silicon nanopillars, we observed the growth and shedding behavior of suspended and partially wetting droplets on the same surface during condensation. Environmental scanning electron microscopy was used to demonstrate that initial droplet growth rates of partially wetting droplets were 6× - larger than that of suspended droplets. We subsequently developed a droplet growth model to explain the experimental results and showed that partially wetting droplets had 4-6× - higher heat transfer rates than that of suspended droplets. On the basis of these findings, the overall performance enhancement created by surface nanostructuring was examined in comparison to a flat hydrophobic surface. We showed these nanostructured surfaces had 56% heat flux enhancement for partially wetting droplet morphologies and 71% heat flux degradation for suspended morphologies in comparison to flat hydrophobic surfaces. This study provides insights into the previously unidentified role of droplet wetting morphology on growth rate, as well as the need to design Cassie stable nanostructured surfaces with tailored droplet morphologies to achieve enhanced heat and mass transfer during dropwise condensation.
机译:超疏水纳米结构表面上的冷凝为增强能量转换,高效集水和高性能热管理提供了新的机会。这些表面被设计为卡西稳定的,并且与局部润湿纳米结构的基底的局部润湿的液滴相比,有利于在纳米结构的顶部上形成悬浮的液滴。这些悬浮液滴保证了最小的接触线固定,并促进了小于特征毛细管长度的被动液滴脱落。但是,在这些小滴下方的气体膜可能会严重阻碍整体的传热和传质性能。我们研究了超疏水纳米结构表面上的液滴生长动力学,以阐明液滴形态对传热和传质的重要性。通过利用受控良好的功能化硅纳米柱,我们观察到冷凝过程中同一表面上悬浮和部分润湿的液滴的生长和脱落行为。使用环境扫描电子显微镜证明部分润湿的液滴的初始液滴生长速率比悬浮液滴的初始液滴生长速率高6倍。随后,我们建立了液滴生长模型来解释实验结果,并表明部分润湿的液滴的传热速率比悬浮液滴的传热速率高4-6倍。基于这些发现,与平坦的疏水性表面相比,检查了由表面纳米结构产生的总体性能增强。我们显示,与平坦的疏水性表面相比,这些纳米结构表面对部分润湿的液滴形态具有56%的热通量提高,对于悬浮形态具有71%的热通量降低。这项研究提供了关于液滴润湿形态对生长速率的先前未知作用的见解,以及需要设计具有定制液滴形态的Cassie稳定纳米结构表面,以在液滴冷凝过程中实现增强的传热和传质。

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