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Impact damage sensing in glass fiber reinforced composites based on carbon nanotubes by electrical resistance measurements

机译:通过电阻测量感测基于碳纳米管的玻璃纤维增​​强复合材料的冲击损伤

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In this article, we report an interesting employment of multi-walled carbon nanotubes as a filler in the epoxy matrix of a glass fiber reinforced composite (FRP). The intrinsic electrical conductivity of carbon nanotubes made the development of a nanocomposite with enhanced electrical properties possible. The manufactured nanocomposite was subsequently employed in the production of a glass FRP. Due to the high aspect ratio of carbon nanotubes, very small amounts of these particles were sufficient to modify the electrical properties of the obtained glass fiber composites. Basically, a three-phases material was developed, in which two phases were electrically insulating-epoxy matrix and glass fiber-and one phase highly conductive, the carbon nanotubes. The main goal of this study was to investigate the possibility of developing a glass fiber reinforced nanocomposite (GFRN), which is able to provide measurable electrical signals when subjected to a low-velocity impact on its surface. Following this goal, the drop in the mechanical performance of the composite was evaluated before and after the impact. At the same time, the variation in its electrical resistance was measured. The results have shown that it is possible to associate the increase in electrical resistance of the composite with the formation of damages caused by impact.
机译:在本文中,我们报告了在玻璃纤维增​​强复合材料(FRP)的环氧基质中使用多壁碳纳米管作为填料的有趣方法。碳纳米管的固有电导率使得开发具有增强的电性能的纳米复合材料成为可能。随后将制造的纳米复合材料用于玻璃纤维增​​强塑料的生产中。由于碳纳米管的高长径比,非常少量的这些颗粒足以改变获得的玻璃纤维复合材料的电性能。基本上,开发了一种三相材料,其中两相是电绝缘环氧树脂基体和玻璃纤维,而一相是高导电性的碳纳米管。这项研究的主要目的是研究开发玻璃纤维增​​强纳米复合材料(GFRN)的可能性,该复合材料在表面受到低速冲击时能够提供可测量的电信号。遵循这个目标,评估了冲击前后复合材料的机械性能下降。同时,测量其电阻的变化。结果表明,可以将复合材料的电阻的增加与冲击引起的损伤的形成联系起来。

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