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Droplet impact on cross-scale cylindrical superhydrophobic surfaces

机译:液滴对跨尺度圆柱超疏水表面的影响

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Reducing the contact time between impacting droplets and superhydrophobic surfaces has attracted much attention in recent years due to the importance of controlling heat and mass transfer. Previous researchers have proposed several methods, such as lifting the droplets before the retraction, accelerating the retraction process, or splashing the droplets. One example includes symmetry-breaking surfaces, which were used to accelerate the droplet retraction to realize the fast detachment. However, the dependence of the contact time on impact velocity and surface structure scale remains unclear. Here, we experimentally study the droplet impact dynamics on cross-scale cylindrical superhydrophobic surfaces. The reduction of the contact time is achieved on the surfaces with a ridge smaller or larger than the droplets, spanning different bouncing regimes. We describe the droplet behaviors and propose theoretical models from the view of retraction speed to explain the contact time variations. The maximum reduction is observed to occur when the ridge diameter is close to that of the droplets, which is also predicted by the models. Published by AIP Publishing.
机译:近年来,由于控制传热和传质的重要性,减少冲击液滴与超疏水表面之间的接触时间已引起广泛关注。以前的研究人员已经提出了几种方法,例如在回缩之前提起液滴,加速回缩过程或飞溅液滴。一个示例包括对称破损表面,该表面用于加速液滴回缩以实现快速分离。但是,接触时间对冲击速度和表面结构尺度的依赖性仍然不清楚。在这里,我们通过实验研究了液滴在跨尺度圆柱超疏水表面上的动力学。在具有小于或大于液滴的脊的表面上实现了接触时间的减少,跨越了不同的反弹方式。我们描述了液滴的行为,并从回缩速度的角度提出了理论模型来解释接触时间的变化。当脊的直径接近液滴的直径时,可以观察到最大的减小,这也是模型预测的。由AIP Publishing发布。

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