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Investigation of ice shedding properties of superhydrophobic coatings on helicopter blades

机译:直升机叶片超疏水涂层的除冰性能研究

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The state-of-the-art of icing protection systems for helicopter rotor blades is based on active thermal de-icing systems that require large amounts of power. This work focused on assessing the potential icephobicity of superhydrophobic coatings as an alternative passive strategy. Ice shedding tests were conducted in a helicopter blade icing chamber, to simulate atmospheric icing conditions. Ice accretion and shedding were tested on four different materials, including two common metals and two superhydrophobic materials, with the objective of evaluating icephobic potential for anti-icing purposes. Coating test results showed a strong influence of temperature and surface roughness on the ice adhesion: the strength increased when temperature decreased and roughness increased. Ice regime was independent of the type of surface used, but superhydrophobic surfaces resulted in a thinner ice shape in comparison with common metals, which resulted in a shorter shedding time, especially in rime ice conditions. The relationship between ice regime and adhesion load showed that ice adhesion load substantially increases in rime ice conditions, demonstrating that ice regime is an important parameter in the ice adhesion process. Additional results showed that superhydrophobic surfaces were associated with a decrease in the adhesion load with respect to the baseline materials ranging from the 16% to the 70% in the best case; but this reduction may not be revealing for practical applications as ice reduction mechanisms need to be first understood.
机译:直升机旋翼桨叶的最新防冰系统是基于需要大量动力的主动除冰系统。这项工作的重点是评估超疏水性涂料的潜在防冰性,作为替代性的被动策略。在直升机的叶片结冰室中进行了除冰试验,以模拟大气的结冰条件。在四种不同的材料(包括两种常见的金属和两种超疏水的材料)上测试了冰的积聚和脱落,目的是评估用于防冰目的的憎冰潜力。涂层测试结果表明温度和表面粗糙度对冰的附着力有很大的影响:温度降低而粗糙度增加,强度增加。冰的使用方式与所使用的表面类型无关,但是与普通金属相比,超疏水性表面的冰形状更薄,从而缩短了脱落时间,尤其是在冰霜条件下。冰态和附着力之间的关系表明,冰霜条件下冰的附着力显着增加,这表明冰态是冰附着过程中的重要参数。其他结果表明,在最佳情况下,超疏水性表面与附着力的降低有关,相对于基线材料,其范围从16%到70%。但是这种减少对于实际应用而言可能并没有揭示出来,因为首先需要了解减少冰的机制。

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