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Barrier properties of thermal and electrical conductive hydrophobic multigraphitic/epoxy coatings

机译:热电导电疏水性多书/环氧涂料的阻隔性能

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摘要

Epoxy composites doped with different content of graphene nanoplatelets (GNPs) and/or carbon nanotubes (CNTs) have been manufactured. Their chemical, thermal, electrical, and mechanical behaviors have been studied, evaluating also their performance as coatings of glass fiber composite substrates. It is confirmed that the graphitic nanofillers present different efficiency as nanofillers as a function of their geometry. CNTs are much higher efficient electrical nanofillers than graphene, but an important synergetic effect is determined in the electrical conductivity of hybrid GNP/CNT/epoxy composites. In contrast, the thermal conductivity scarcely depends on the geometry of graphitic nanofillers but on the graphitic nanofiller content. Adding up to 12 wt% GNP and 1 wt% CNT, the thermal conductivity of the epoxy resin can be increased more than 300%. GNP presents high efficiency to increase the barrier properties, reducing the water absorption up to 30%. The stiffness of nanocomposites proportionally increases with graphitic addition, up to 50%, regard to the modulus of the neat epoxy resin. The adherence of coatings over glass fiber composite substrates increases by nanofiller addition due to the nanomechanical anchoring. However, the water uptake induces a higher weakening on nanodoped composites due to the preferential water absorption by the interface.
机译:已经制造了掺杂有不同含量的石墨烯纳米片(GNP)和/或碳纳米管(CNT)的环氧复合材料。研究了它们的化学,热,电气和机械行为,也评估了它们作为玻璃纤维复合材料涂层的性能。确认石墨纳米填料作为纳米填充物的函数作为其几何形状存在不同的效率。 CNT是比石墨烯更高的高效电纳米填料,但在杂交GNP / CNT /环氧复合材料的电导率中确定了重要的协同效果。相反,导热率几乎不取决于石墨纳米填充物的几何形状,而是在石墨纳米填充物含量上。加入最多12wt%GNP和1wt%CNT,环氧树脂的导热率可以增加300%以上。 GNP呈高效率以增加阻隔性能,降低吸水率高达30%。纳米复合材料的刚度与石墨添加成比例地增加,高达50%,关于整齐环氧树脂的模量。由于纳米机械锚定,通过纳米填充剂的纳米玻璃复合材料基板上的涂层粘附增加。然而,由于界面的优先吸水性,水摄取在纳米掺杂复合材料上引起更高的弱化。

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