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Anti-icing performance of superhydrophobic surface fabricated by femtosecond laser composited dual-layers coating

机译:由飞秒激光复合双层涂层制造的超疏水表面的抗结冰性能

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摘要

Superhydrophobic surfaces have shown great potential anti-icing applications because of their low energy input, light weight and simple structure, which attract considerable attentions of researchers. The mechanical stability and chemical durability are the essential aspects that limit their practical application. In this paper, the femtosecond laser technology was applied to process the surface of titanium alloy and then the surface was functionalized by a dual-layers coating to obtain lotus leaf-like superhydrophobic surfaces. Through the treatment of femtosecond laser, periodic microstructures were created on the surface of the titanium alloy. After that, a dual-layers coating was produced and sprayed on the surface, which was used to form nanostructure and low surface energy layer. The superhydrophobic surface shows excellent superhydrophobicity with a higher contact angle of 165 degrees and lower sliding angle of 1.2 degrees. Furthermore, the testing results on adhesion strength, water resistance, heat resistance and aviation kerosene resistance of the dual-layers coating exhibited remarkable mechanical stability and chemical durability. Moreover, ice adhesion on untreated smooth surfaces (US-S), sprayed dual-layers coating surface (SN-S) and combined femtosecond laser with dual-layers coating treated surface (MN-S) were investigated in simulated application environment. The MN-S could effectively minimize the ice adhesion, which can reduce the tensile forces and shear forces by up to 26.09%, 44.12% compared to the sample SN-S and 52.78%, 58.24% than that of the sample US-S. The present study provided a chemical-assisted ultrafast femtosecond laser processing technique that could be applied to large-scale preparation of low ice adhesion superhydrophobic surface, presenting broad application prospects. (c) 2020 Elsevier B.V. All rights reserved.
机译:由于其低能量输入,重量轻,结构简单,超疏水表面具有巨大的潜在防冰应用,吸引了研究人员的相当大的注意。机械稳定性和化学耐用性是限制其实际应用的重要方面。在本文中,应用了飞秒激光技术来处理钛合金的表面,然后通过双层涂层官能化表面以获得莲花状超疏水表面。通过治疗飞秒激光,在钛合金的表面上产生周期性微观结构。之后,在表面上产生并喷洒双层涂层,其用于形成纳米结构和低表面能层。超疏水表面显示出优异的超疏水性,较高的接触角为165度,较低的滑动角为1.2度。此外,双层涂层的粘合强度,耐水性,耐热性和航空酮酮抗性的测试表现出显着的机械稳定性和化学耐用性。此外,在模拟应用环境中研究了未处理的光滑表面(US-S)上的冰附着在未处理的光滑表面(US-S),喷涂的双层涂层表面(SN-S)和双层涂层处理表面(MN-S)的联合飞秒激光。 Mn-S可以有效地减少冰粘附,与样品SN-S相比,可以将拉伸力和剪切力降低至26.09%,44.12%,而不是样品US-S的样品的58.24%。本研究提供了一种化学辅助超快的超秒激光加工技术,可以应用于低冰粘附超疏水表面的大规模制备,呈现广泛的应用前景。 (c)2020 Elsevier B.v.保留所有权利。

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