首页> 外文期刊>Journal of Industrial Textiles >Synergistic effect of nano-ZrO_2/graphene oxide hybrid system on the high-velocity impact behavior and interlaminar shear strength of basalt fiber/epoxy composite
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Synergistic effect of nano-ZrO_2/graphene oxide hybrid system on the high-velocity impact behavior and interlaminar shear strength of basalt fiber/epoxy composite

机译:纳米ZrO_2 /石墨烯氧化物混合系统对玄武岩纤维/环氧复合材料高速冲击行为和层间剪切强度的协同作用

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The aim of this work was to study the influence of nano-zirconium oxide, graphene oxide, and nano-zirconium oxide + graphene oxide hybrid system on the high-velocity impact behavior and interlaminar shear strength of basalt fiber/epoxy composite. Initially, the nano-zirconium oxide and graphene oxide were functionalized by using a silane-coupling agent namely 3-aminopropyltrimethoxysilane. In order to confirm the surface functionalization of nano-zirconium oxide and graphene oxide, Fourier transform infrared spectroscopy and energy-dispersive X-ray spectroscopy were carried out on both untreated and silanized fillers. Then, 15 types of specimens containing various amounts of nano-zirconium oxide (1, 2, and 3 wt.%), graphene oxide (0.1, 0.3, and 0.5 wt.%), or nano-zirconium oxide + graphene oxide hybrid in the matrix were prepared. The comparative results of the experiments showed that the specimen with 2 wt.% nano-zirconium oxide + 0.1 wt.% graphene oxide had the highest values of energy absorption, impact limit velocity, and interlaminar shear strength. The energy absorption and limit velocity of this specimen enhanced by 67 and 30%, respectively, as compared to the neat basalt fiber/epoxy composite, while its interlaminar shear strength increased by 77%. The fracture surfaces of the specimens demonstrated that the introduction of nanofillers in the matrix improved the adhesion between the basalt fibers and polymeric matrix. The findings of this work clearly showed that the simultaneous addition of graphene oxide and nano-zirconium oxide is a promising method for improving the high-velocity impact properties and interlaminar shear strength of fibrous composites.
机译:这项工作的目的是研究纳米氧化锆,石墨烯氧化物和纳米氧化锆+石墨烯氧化物混合系统对玄武岩纤维/环氧复合材料的高速冲击性能和层间剪切强度的影响。最初,通过使用硅烷偶联剂即3-氨基丙基三甲氧基硅烷来官能化纳米氧化锆和石墨烯氧化物。为了确认纳米氧化锆和氧化铟烯的表面官能化,对未处理的和硅烷化填料进行傅里叶变换红外光谱和能量分散X射线光谱。然后,含有各种量的纳米氧化锆(1,2和3重量%),石墨烯(0.1,0.3和0.5重量%)的含有各种量的样品,或纳米氧化锆+石墨烯氧化物杂种制备基质。实验的对比结果表明,具有2重量%的标本。%纳米氧化锆+ 0.1重量%。%石墨烯氧化物具有最高的能量吸收值,冲击极限速度和层间剪切强度。与整齐的玄武岩纤维/环氧复合材料相比,该样品的能量吸收和极限速度分别增强了67和30%,而其层间剪切强度增加了77%。标本的断裂表面表明,在基质中引入纳米填充物改善了玄武岩纤维和聚合物基质之间的粘附性。该工作的发现清楚地表明,氧化石墨烯和纳米氧化锆的同时加入是用于改善纤维复合材料的高速冲击性能和层间剪切强度的有希望的方法。

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