首页> 外文期刊>Journal of Applied Polymer Science >Roll-to-roll printed carbon nanotubes on textile substrates as a heating layer in fiber-reinforced epoxy composites
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Roll-to-roll printed carbon nanotubes on textile substrates as a heating layer in fiber-reinforced epoxy composites

机译:纺织衬底上的卷上印刷碳纳米管作为纤维增强环氧复合材料中的加热层

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The performance of wind turbines suffers from icing in regions with extreme climate. One approach is to incorporate heating elements into the most susceptible areas of the wind turbine blade as protection against icing and for de-icing. Cost-efficient and reproducible fabrication, as well as easy integration is important due to the large area of wind turbine blades. In this work, multi-walled carbon nanotubes are applied on a 50% poly(ethylene terephthalate) and 50% polyamide non-woven textile substrate by rotary-screen printing. The printed layers function as resistive heating elements in a fiber-reinforced composite. The heating areas are provided with flexographic or screen inline-printed silver-electrodes and can be integrated by means of vacuum infusion into a glass fiber-reinforced epoxy composite laminate. These laminates, which are connected to an intelligent electrical control system, are suitable for melting ice on the surface of components or for preventing the formation of ice. The first promising experiments on heating structures in a rotor blade of a wind turbine at laboratory scale (2 m length) are the basis of studies on intelligent electrical control of heating structures and their behavior at different temperatures. The heating elements were able to melt a 3-4 mm thick ice layer within 25 min in a climate chamber at -5 degrees C. (C) 2017 Wiley Periodicals, Inc.
机译:风力涡轮机的性能受到极端气候的地区的结冰。一种方法是将加热元件结合到风力涡轮机叶片的最敏感区域中,因为防止糖霜和用于去冰。由于风力涡轮机叶片的大面积,成本高效和可重复的制造,以及易于集成是重要的。在该工作中,通过旋转丝网印刷将多壁碳纳米管施加在50%聚(对苯二甲酸乙二醇酯)和50%聚酰胺非织造织物基底上。印刷层用作纤维增强复合材料中的电阻加热元件。加热区域设有柔性漆或筛网印线印刷的银电极,并且可以通过真空输注到玻璃纤维增​​强的环氧树脂复合层压体中整合。这些层压板连接到智能电气控制系统,适用于组件表面上的冰冰或防止冰的形成。在实验室规模的风力涡轮机的转子叶片中加热结构的第一个有希望的实验是加热结构智能电气控制及其在不同温度下的行为的研究的基础。加热元件能够在-5℃的气候室内在-5℃的气候室内熔化3-4mm厚的冰层。(c)2017 Wiley期刊,Inc。

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