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Integration of carbon nanotubes into a fiberglass reinforced polymer composite and its effects on electromagnetic shielding and mechanical properties

机译:碳纳米管集成到玻璃纤维增​​强的聚合物复合材料中及其对电磁屏蔽和机械性能的影响

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Electromagnetic (EM) waves, such as electronic noise and radio frequency interference can be regarded as an invisible electronic pollution which justifies a very active quest for effective electromagnetic interference (EMI) shielding materials. Highly conductive materials of adequate thickness are the primary solutions to shield against EMI. Equipment cases and basic structure of space aircraft and launch vehicles have traditionally been made of aluminum, steel and other electrically conductive metals. However, in recent years composite materials have been used for electronic equipment manufacturing because of their lightweight, high strength, and ease of fabrication. Despite these benefits, composite materials are not as electrically conductive as traditional metals, especially in terms of electrical grounding purposes and shielding. Therefore, extra effort must be taken to resolve these shortcomings. The present work demonstrates a study on developing hybrid composites based on fiberglass with surface grown carbon nanotubes (CNTs) for EMI applications. The choice of fiberglass is primarily because it naturally possesses poor electrical conductivity, hence growing CNTs over glass fiber surface can significantly improve the conductivity. The fabrics were sputter-coated with a thin layer of SiO_2 thermal barrier prior to growing of CNTs. The CNTs were grown on the surface of woven fiberglass fabrics utilizing a relatively low temperature technique. Raw fiberglass fabric, SiO_2 coated fabric, and SiO_2 coated fabric which was subjected to the identical heat treatment as the samples with CNTs were also prepared. Two-layers composite specimens based on different surface treated fiberglass fabrics were fabricated and their EMI shielding effectiveness (SE) was measured. The EMI SE of the hybrid CNT-fiberglass composites was shown to be 5-10 times of the reference samples. However, the tensile mechanical properties of the composites based on the different above mentioned fibers revealed significant degradation due to the elevated CNT growth temperature and the addition of coating layer and CNTs. To further probe the structure of the hybrid composites and the inter-connectivity of the CNTs from one interface to another, sets of 20-layers composites based on different surface treated fabrics were also fabricated and characterized.
机译:电磁(EM)波,例如电子噪声和射频干扰可以被视为不可见的电子污染,这证明了对有效电磁干扰(EMI)屏蔽材料的非常有效的追求。足够的厚度的高导电材料是保护EMI的主要解决方案。传统上由铝,钢和其他导电金属制成的设备箱和发动机的基本结构。然而,近年来,由于它们的轻质,高强度和易于制造,复合材料已被用于电子设备制造。尽管有这些益处,复合材料不像传统金属一样导电,尤其是在电接地目的和屏蔽方面。因此,必须采取额外的努力来解决这些缺点。本作者表明了一种基于玻璃纤维的杂种复合材料的研究,用于EMI应用的表面生长碳纳米管(CNT)。玻璃纤维的选择主要是因为它自然具​​有差的导电性差,因此在玻璃纤维表面上生长CNT可以显着提高导电性。在CNT生长之前,在生长之前,用薄的SiO_2热屏蔽晶体涂覆织物。使用相对低的温度技术在编织玻璃纤维织物的表面上生长CNT。还制备了原料玻璃纤维织物,SiO_2涂层织物和SiO_2涂覆的织物,其作为用CNT的样品进行相同的热处理。制造基于不同表面处理玻璃纤维织物的两层复合样品,并测量其EMI屏蔽有效性(SE)。杂交CNT-玻璃纤维复合材料的EMI SE显示为参考样品的5-10倍。然而,基于上述纤维的复合材料的抗拉机械性能显示出由于升高的CNT生长温度和添加涂层和CNT而显着降解。为了进一步探测混合复合材料的结构和从一个界面到另一个界面的CNT的连接,也制造出基于不同表面处理织物的20层复合材料。

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