Energy-efficient, highly robust anti-icing/de-icing composites and icing wind tunnel assessment

IF 9.8 1区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES Composites Science and Technology Pub Date : 2025-05-03 Epub Date: 2025-02-27 DOI:10.1016/j.compscitech.2025.111121
Yunyun Meng , Nan Wu , Yanxin Zhang , Jinshui Yang , Song Wang , Suli Xing , Senyun Liu , Xian Yi
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Abstract

Superhydrophobic surfaces have been extensively developed as attractive anti-icing/de-icing candidate materials for fiber-reinforced polymer-based composites (FRPCs), thereby often being integrated with electrothermal effect to minimize its energy consumption. However, the structural incoordination between FRPC, superhydrophobic surfaces, and electric heating elements usually leads to high energy loss and low durability. Herein, a wet spraying method was proposed for the fabrication of robust superhydrophobic electrothermal films and that were subsequently endowed to the FRPC surfaces through pressure-assisted integrating molding. Our structural-functional integration strategy does not compromise the molding conditions and key components of FRPC, yielding a >95 % retention of the mechanical strength. Additionally, the electrothermal effect was proven well preserved, thereby enhancing the freezing-delaying effect of 1 + 1>2, reducing ice adhesion strength from 234 kPa to 5.4 kPa, and remaining unchanged superhydrophobicity after 100 cycles of icing/de-icing. The underlying mechanism can be attributed to thermal-governed heat and mass transfer at the interface facilitating synergistic regulation of phase transition and wettability of water/ice. Importantly, the practical value of multi-functionalized FRPC was assessed by icing wind tunnel, confirming the anti-icing effect at 0.3 W/cm2 and 26 % reduction in de-icing energy consumption. The prepared energy-efficient and highly robust anti-icing/de-icing FRPC should satisfy the growing demands in the aviation and energy fields.

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高能效、高鲁棒性防冰/除冰复合材料和结冰风洞评估
超疏水表面作为纤维增强聚合物基复合材料(frpc)的抗冰/除冰候选材料得到了广泛的发展,因此经常与电热效应相结合,以最大限度地减少其能耗。然而,FRPC、超疏水表面和电热元件之间的结构不协调通常会导致高能量损失和低耐久性。本文提出了一种湿喷涂方法,用于制备坚固的超疏水电热膜,并通过压力辅助集成成型将其赋予FRPC表面。我们的结构-功能一体化策略不会损害成型条件和FRPC的关键部件,产生95%的机械强度保留。此外,电热效应得到了很好的保存,从而增强了1 + 1>;2的延迟冻结效果,使冰的粘附强度从234 kPa降低到5.4 kPa,在100次冰/除冰循环后仍保持超疏水性不变。其基本机制可归因于界面处的热控制传热传质,促进了水/冰的相变和润湿性的协同调节。重要的是,通过结冰风洞评估了多功能FRPC的实用价值,确认了0.3 W/cm2的防冰效果,降低了26%的除冰能耗。所制备的高能效、高鲁棒性的抗冰/除冰FRPC应能满足航空和能源领域日益增长的需求。
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来源期刊
Composites Science and Technology
Composites Science and Technology 工程技术-材料科学:复合
CiteScore
16.20
自引率
9.90%
发文量
611
审稿时长
33 days
期刊介绍: Composites Science and Technology publishes refereed original articles on the fundamental and applied science of engineering composites. The focus of this journal is on polymeric matrix composites with reinforcements/fillers ranging from nano- to macro-scale. CSTE encourages manuscripts reporting unique, innovative contributions to the physics, chemistry, materials science and applied mechanics aspects of advanced composites. Besides traditional fiber reinforced composites, novel composites with significant potential for engineering applications are encouraged.
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