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Tuning Superhydrophobic Nanostructures To Enhance Jumping-Droplet Condensation

机译:调整超疏水纳米结构,增强跳跃液滴冷凝

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摘要

It was recently discovered that condensation.growing on a nanostructured superhydrophobic surface can spontaneously jump off the surface, triggered by naturally occurring coalescence events. Many reports have observed that droplets must grow to a size of order 10 pm before jumping is enabled upon coalescence; however, it remains unknown how the critical jumping size relates to the topography of the underlying nanostructure. Here, we characterize the dynamic behavior of condensation growing on six different superhydrophobic nanostructures, where the topography of the nanopillars was systematically varied. The critical jumping diameter was observed to be highly dependent upon the height, diameter, and pitch of the nanopillars: tall and slender nanopillars promoted 2 itm jumping choplets, whereas short and stout nanopillars increased the critical size to over 20 mu m. The topology, of each surface is successfully correlated to the critical jumping diameter by constructing an energetic model that predicts how large a nucleating embryo needs to grow before it can inflate into the air with an apparent contact angle large enough for jumping. By extending our model to consider any possible surface, it is revealed that properly designed nanostructures should enable nanometric jumping droplets, which would further enhance jumping -droplet condensers for heat transfer, antifogging, and antifrosting applications.
机译:最近发现缩合。在纳米结构的超疏水表面上喷射可以自然地跳过表面,由天然存在的聚结事件引发。许多报道已经观察到,在聚结时跳跃之前,液滴必须增长到10点的大小;然而,它仍然未知临界跳跃尺寸如何涉及底层纳米结构的形貌。这里,我们表征在六种不同的超疏水纳米结构上生长的冷凝的动态行为,其中纳米粒子的形貌系统地变化。观察到临界直径高度依赖于纳米米的高度,直径和间距:高度和细长的纳米粒子促进了2个ITM跳跃鞋面,而短且粗糙的纳米粒子将临界大小增加到超过20μm。每个表面的拓扑通过构建能量模型来成功地相关,该能量模型预测成核胚胎需要多大的胚胎需要生长,在它可以充气到空气中,具有足够大的表观接触角来跳跃。通过扩展我们的模型来考虑任何可能的表面,揭示了适当设计的纳米结构应使纳米跳动液滴能够进一步增强用于传热,防雾和防磨机的跳跃 - 图。

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