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Spontaneous Uphill Movement and Self Removal of Condensates on Hierarchical Tower-like Arrays

机译:分层塔状阵列上冷凝物的自发上坡运动和自去除

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Fast removal of condensates from surfaces is of great significance due to the enhanced thermal transfer coefficient and continuous condensation. However, the lost sup erhydrophobicity of lotus leaves intrigues us to determine what kind of surface morphologies meets the self-removal of condensates? The uphill movement of condensates in textured surfaces is vital to avoid flooding and facilitating self-removal. Here, superhydrophobic microtower arrays were designed to explore the spontaneous uphill movement and Wenzel to Cassie transition as well as the self-removal of condensates. The tower-like arrays enable spontaneous uphill movement of tiny condensates entrapped in microstructures due to the large upward Laplace pressure, which is 30 times larger than that on cone-like arrays. The sharp tips decrease the adhesion to suspending droplets and promote their fast self-removal. These results are important for designing desirable textured surfaces by enlarging upward Laplace pressure to facilitate condensate self-removal, which is-widely applied in self-cleaning, antifogging, anti-icing, water harvesting, and thermal management systems.
机译:由于传热系数的提高和连续的凝结,从表面快速除去凝结水具有重要意义。但是,荷叶失去的超疏水性会吸引我们确定哪种表面形貌满足冷凝水的自我去除作用?凝结水在有纹理的表面上的向上运动对于避免水浸和促进自我清除至关重要。在这里,设计了超疏水微塔阵列,以探索自发的上坡运动和Wenzel到Cassie的过渡以及冷凝物的自动清除。由于较大的向上拉普拉斯压力(比圆锥形阵列大30倍),塔状阵列使包裹在微结构中的微小凝结物能够自发向上移动。尖锐的尖端会降低对悬浮液滴的附着力,并促进其快速自我清除。这些结果对于通过增大拉普拉斯压力以促进冷凝水的自清除而设计理想的纹理表面非常重要,该方法广泛应用于自清洁,防雾,防冰,集水和热管理系统。

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