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Multifunctional Hybrid Composites with Enhanced Mechanical and Thermal Properties Based on Polybenzoxazine and Chopped Kevlar/Carbon Hybrid Fibers

机译:基于聚苯苯并嗪和切碎的Kevlar /碳杂化纤维的机械和热性能增强的多功能混合复合材料

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摘要

This work studied the structural, morphological, mechanical, and thermal properties of newly designed polymeric materials using high-performance hybrid fibers to reinforce the polybenzoxazine resins. To achieve this goal, hybrid fibers consisting of chopped Kevlar and carbon fibers were subjected to a silane surface treatment, incorporated into the resin matrix in various combinations, and then isothermally cured using the compression molding technique. The mechanical performances of the prepared composites were scrutinized in terms of bending and tensile tests. By way of illustration, the composites holding 20 wt % Kevlar fibers and 20 wt % carbon fibers accomplished a bending strength and modulus of 237.35 MPa and 7.80 GPa, respectively. Additionally, the same composites recorded a tensile stress and toughness of 77 MPa and 0.27 MPa, respectively, indicating an increase of about 234% and 32.8% when compared to the pristine resin’s properties. The thermogravimetric analysis denoted an excellent thermal resistance of the reinforced hybrid composites. Fourier transform infrared spectroscopy proved that the functional groups of the as-used coupling agent were effectively grafted on the external surfaces of the reinforcing systems, and further confirmed that the chemical reaction took place between the treated fibers and the polybenzoxazine matrix, although the scanning electron microscope showed a uniform dispersion and interfacial adhesion of the fibers within the resin matrix. In fact, the incorporation of treated fibers along with their good dispersion/adhesion could explain the progressive enhancement in terms of thermal and mechanical properties that were observed in the hybrid composites.
机译:这项工作研究了使用高性能杂交纤维的新设计的聚合物材料的结构,形态,机械和热性能,以加强聚苯异种嗪树脂。为了实现这一目标,将由切碎的Kevlar和碳纤维组成的杂化纤维对硅烷表面处理进行,以各种组合掺入树脂基质中,然后使用压缩模塑技术等温固化。在弯曲和拉伸试验方面仔细检查制备复合材料的机械性能。作为说明,保持20wt%kevlar纤维的复合材料和20wt%碳纤维分别完成了237.35MPa和7.80GPa的弯曲强度和模量。另外,与原始树脂的性质相比,相同的复合材料分别记录了77MPa和0.27MPa的拉伸应力和韧性,表明增加约234%和32.8%。热重分析表示增强混合复合材料的优异热阻。傅里叶变换红外光谱证明了用作偶联剂的官能团在增强系统的外表面上有效接枝,并进一步证实了化学反应在处理过的纤维和聚苯细胞基质之间发生了化学反应,尽管扫描电子显微镜显示树脂基质内纤维的均匀分散和界面粘附。事实上,处理过处理的纤维以及它们的良好分散/粘附可以解释在杂合复合材料中观察到的热和机械性能方面的逐渐增强。

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