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Enhancing Dropwise Condensation through Bioinspired Wettability Patterning

机译:通过生物启发的可湿性模式增强滴状冷凝

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Dropwise condensation (DWC) heat transfer depends strongly on the maximum diameter (D_(max)) of condensate droplets departing from the condenser surface. This study presents a facile technique implemented to gain control of D_(max) in DWC within vapor/air atmospheres. We demonstrate how this approach can enhance the corresponding heat transfer rate by harnessing the capillary forces in the removal of the condensate from the surface. We examine various hydrophilic?superhydrophilic patterns, which, respectively, sustain and combine DWC and filmwise condensation on the substrate. The material system uses laser-patterned masking and chemical etching to achieve the desired wettability contrast and does not employ any hydrophobizing agent. By applying alternating straight parallel strips of hydrophilic (contact angle ~78°) mirror-finish aluminum and superhydrophilic regions (etched aluminum) on the condensing surface, we show that the average maximum droplet size on the less-wettable domains is nearly 42% of the width of the corresponding strips. An overall improvement in the condensate collection rate, up to 19% (as compared to the control case of DWC on mirror-finish aluminum) was achieved by using an interdigitated superhydrophilic track pattern (on the mirror-finish hydrophilic surface) inspired by the vein network of plant leaves. The bioinspired interdigitated pattern is found to outperform the straight hydrophilic?superhydrophilic pattern design, particularly under higher humidity conditions in the presence of noncondensable gases (NCG), a condition that is more challenging for maintaining sustained DWC.
机译:逐滴冷凝(DWC)的传热在很大程度上取决于离开冷凝器表面的冷凝液滴的最大直径(D_(max))。这项研究提出了一种简便的技术,可用于控制蒸气/空气气氛中DWC中的D_(max)。我们演示了这种方法如何通过利用毛细作用力从表面去除凝结水来提高相应的传热速率。我们研究了各种亲水性或超亲水性图案,它们分别维持并结合了DWC和在基材上的薄膜状冷凝。该材料系统使用激光图案化的掩膜和化学蚀刻来实现所需的润湿性对比,并且不使用任何疏水剂。通过在冷凝表面上应用亲水性(接触角〜78°)镜面处理铝和超亲水性区域(蚀刻铝)的交替直线平行条,我们表明,在较不易润湿的区域上,平均最大液滴尺寸接近可湿性区域的42%。相应条的宽度。通过使用受静脉启发的交错式超亲水轨道图案(在镜面完成的亲水性表面上),冷凝水收集率的总体提高高达19%(与镜面抛光的铝上的DWC的对照例相比)。植物叶片网络。发现具有生物启发性的交叉指状图案的性能优于直接的亲水→超亲水性图案设计,尤其是在存在不凝性气体(NCG)的较高湿度条件下,该条件对维持持续的DWC更具挑战性。

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