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Superhydrophobic Nanocomposite Surface Topography and Ice Adhesion

机译:超疏水纳米复合材料的表面形貌和冰附着力

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A method to reduce the surface roughness of a spray-casted polyurethane/silica/fluoroacrylic superhydrophobic nanocomposite coating was demonstrated. By changing the main slurry carrier fluid, fluoropolymer medium, surface pretreatment, and spray parameters, we achieved arithmetic surface roughness values of 8.7, 2.7, and 1.6 μm on three test surfaces. The three surfaces displayed superhydrophobic performance with modest variations in skewness and kurtosis. The arithmetic roughness level of 1.6 μm is the smoothest superhydrophobic surface yet produced with these spray-based techniques. These three nanocomposite surfaces, along with a polished aluminum surface, were impacted with a supercooled water spray in icing conditions, and after ice accretion occurred, each was subjected to a pressurized tensile test to measure ice-adhesion. All three superhydrophobic surfaces showed lower ice adhesion than that of the polished aluminum surface. Interestingly, the intermediate roughness surface yielded the best performance, which suggests that high kurtosis and shorter autocorrelation lengths improve performance. The most ice-phobic nanocomposite showed a 60% reduction in ice-adhesion strength when compared to polished aluminum.
机译:对减少喷涂聚氨酯/二氧化硅/氟丙烯酸超疏水纳米复合涂层表面粗糙度的方法进行了说明。通过更改主要浆料载液,含氟聚合物介质,表面预处理和喷涂参数,我们在三个测试表面上获得了8.7、2.7和1.6μm的算术表面粗糙度值。这三个表面显示出超疏水性能,并且偏度和峰度变化适中。 1.6微米的算术粗糙度水平是使用这些基于喷涂的技术所产生的最光滑的超疏水表面。在结冰条件下,这三个纳米复合材料表面以及抛光的铝表面都受到过冷喷水的冲击,并且在结冰发生后,每个都要进行加压拉伸试验以测量冰的附着力。所有三个超疏水表面均显示出比抛光铝表面更低的冰附着力。有趣的是,中等粗糙度的表面产生了最佳性能,这表明峰度高和自相关长度越短,性能越好。与抛光铝相比,憎冰性最高的纳米复合材料的冰附着强度降低了60%。

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