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用于纤维增强复合材料除冰的可扩展MXene和PEDOT-CNT纳米涂层

Scalable MXene and PEDOT-CNT Nanocoatings for Fibre-Reinforced Composite De-Icing.

作者信息

Monastyreckis Gediminas, Siles Juan Tortosa, Knotek Petr, Omastova Maria, Aniskevich Andrey, Zeleniakiene Daiva

机构信息

Department of Mechanical Engineering, Kaunas University of Technology, Studentu St. 56, 51424 Kaunas, Lithuania.

Department of General and Inorganic Chemistry, University of Pardubice, Studentska 573, 532 10 Pardubice, Czech Republic.

出版信息

Materials (Basel). 2022 May 14;15(10):3535. doi: 10.3390/ma15103535.

Abstract

In this study, the de-icing performance is investigated between traditional carbon fibre-based coatings and novel MXene and poly(3,4-ethylenedioxythiophene)-coated single-walled carbon nanotube (PEDOT-CNT) nanocoatings, based on simple and scalable coating application. The thickness and morphology of the coatings are investigated using atomic force microscopy and scanning electron microscopy. Adhesion strength, as well as electrical properties, are evaluated on rough and glossy surfaces of the composite. The flexibility and electrical sensitivity of the coatings are studied under three-point bending. Additionally, the influence of ambient temperature on coating's electrical resistance is investigated. Finally, thermal imaging and Joule heating are analysed with high-accuracy infrared cameras. Under the same power density, the increase in average temperature is 84% higher for MXenes and 117% for PEDOT-CNT, when compared with fibre-based coatings. Furthermore, both nanocoatings result in up to three times faster de-icing. These easily processable nanocoatings offer fast and efficient de-icing for large composite structures such as wind turbine blades without adding any significant weight.

摘要

在本研究中,基于简单且可扩展的涂层应用方法,对传统碳纤维基涂层与新型的MXene和聚(3,4 - 乙烯二氧噻吩)包覆的单壁碳纳米管(PEDOT-CNT)纳米涂层之间的除冰性能进行了研究。使用原子力显微镜和扫描电子显微镜对涂层的厚度和形态进行了研究。在复合材料的粗糙和光滑表面上评估了附着力以及电学性能。在三点弯曲条件下研究了涂层的柔韧性和电灵敏度。此外,还研究了环境温度对涂层电阻的影响。最后,使用高精度红外热像仪对热成像和焦耳热进行了分析。在相同的功率密度下,与纤维基涂层相比,MXene的平均温度升高幅度高84%,PEDOT-CNT的平均温度升高幅度高117%。此外,两种纳米涂层的除冰速度都快了两倍。这些易于加工的纳米涂层可为大型复合结构(如风力涡轮机叶片)提供快速高效的除冰功能,且不会增加任何显著的重量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/155e/9144452/2c89d0778af1/materials-15-03535-g001.jpg

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