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首页> 外文期刊>Journal of nanomaterials >Experimental Investigation on the Durability of Glass Fiber-Reinforced Polymer Composites Containing Nanocomposite
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Experimental Investigation on the Durability of Glass Fiber-Reinforced Polymer Composites Containing Nanocomposite

机译:纳米复合材料玻璃纤维增​​强聚合物复合材料耐久性的实验研究

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Nanoclay layers incorporated into polymer/clay nanocomposites can inhibit the harmful penetration of water and chemicals into the material, and thus the durability of glass fiber-reinforced polymer (GFRP) composites should be enhanced by using polymer/clay nanocomposite as the matrix material. In this study, 1.5 wt% vinyl ester (VE)/organoclay and 2 wt% epoxy (EP)/organoclay nanocomposites were prepared by an in situ polymerization method. The dispersion states of clay in the nanocomposites were studied by performing XRD analysis. GFRP composites were then fabricated with the prepared 1.5 wt% VE/clay and 2.0 wt% EP/clay nanocomposites to investigate the effects of a nanocomposite matrix on the durability of GFRP composites. The durability of the two kinds of GFRP composites was characterized by monitoring tensile properties following degradation of GFRP specimens aged in water and alkaline solution at 60°C, and SEM was employed to study fracture behaviors of aged GFRP composites under tension. The results show that tensile properties of the two types of GFRP composites with and without clay degrade significantly with aging time. However, the GFRP composites with nanoclay show a lower degradation rate compared with those without nanoclay, supporting the aforementioned hypothesis. And the modification of EP/GFRP enhanced the durability more effectively.
机译:纳入聚合物/粘土纳米复合材料中的纳米铬层可以抑制水和化学物质的有害渗入材料,因此应通过使用聚合物/粘土纳米复合材料作为基质材料来提高玻璃纤维增​​强聚合物(GFRP)复合材料的耐久性。在该研究中,通过原位聚合方法制备1.5wt%乙烯基酯(Ve)/有机粘土和2wt%环氧(EP)/有机粘土纳米复合材料。通过进行XRD分析研究纳米复合材料中粘土的分散状态。然后用制备的1.5wt%Ve /粘土和2.0wt%EP /粘土纳米复合材料制备GFRP复合材料,以研究纳米复合材料基质对GFRP复合材料耐久性的影响。两种GFRP复合材料的耐久性通过监测在60℃的水和碱性溶液中的GFRP样品降解后监测拉伸性质,并且使用SEM在张力下研究老化GFRP复合材料的裂缝行为。结果表明,随着老化时间,具有和不具有粘土的两种类型的GFRP复合材料的拉伸性能显着降低。然而,与纳米粘土的GFRP复合材料与没有纳米粘土的那些相比,较低的降解速率,支持上述假设。 EP / GFRP的修改更有效地增强了耐用性。

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