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首页> 外文期刊>Composites >The effect of amino-silane coupling agents having different molecular structures on the mechanical properties of basalt fiber-reinforced polyamide 6,6 composites
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The effect of amino-silane coupling agents having different molecular structures on the mechanical properties of basalt fiber-reinforced polyamide 6,6 composites

机译:分子结构不同的氨基硅烷偶联剂对玄武岩纤维增强聚酰胺6,6复合材料力学性能的影响

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摘要

To improve the interfacial strength between basalt fibers (BFs) and PA6,6, amino-silane coupling agents were applied to BF-reinforced polyamide 6,6 composites. The effects of their molecular structures, especially the number of amino groups and the corresponding chain lengths, on the mechanical properties of basalt fiber reinforced PA6,6 composites (BFRP) were then investigated. The results showed that even with the same type of silane coupling agent, the distinctive feature in its molecular structure is eventually displayed in the difference in the reinforcing mechanism to strengthen the interphase between BF and PA6,6, and consequently, its impact on the strength of the composites. The adhesive properties of BF to PA6,6 were promoted by the polar amino groups as well as the non-polar long CH2 chains of the silane coupling agents introduced to the BF surface. As the number of polar amino groups increased, the intermolecular hydrogen bonding with the -CONH groups in PA6,6 increased, thus leading to enhanced interfacial adhesion between BF and PA6,6. The interfacial adhesion was also improved by the physical cross-linking formed from the chain entanglement between the silane molecules and PA6,6 as the number of non-polar long CH2 chains of the silane coupling agents increased. The tensile strength of their composites showed similar interfacial shear strength tendencies between BF and PA6,6 in the order of long-chain-, tri-, di-, and mono-amino-silane-treated BFRPs. Long-chain amino-silane was shown to be the most effective in strengthening the interphase between BF and PA6,6. This is because long-chain amino-silane induces strong chemical and physical bonding with PA6,6 as it has a large amount of amino groups in the terminate part and long CH2 chains in the spacer part.
机译:为了提高玄武岩纤维(BFs)与PA6,6之间的界面强度,将氨基硅烷偶联剂应用于BF增强的聚酰胺6,6复合材料。然后研究了它们的分子结构,特别是氨基的数目和相应的链长,对玄武岩纤维增强的PA6,6复合材料(BFRP)力学性能的影响。结果表明,即使使用相同类型的硅烷偶联剂,其分子结构的独特特征最终也表现为增强BF和PA6,6间相的增强机理的差异,因此,其对强度的影响复合材料。 BF与PA6,6的粘合性能通过引入氨基表面的硅烷偶联剂的极性氨基以及非极性长CH2链得到提高。随着极性氨基数目的增加,PA6,6中与-CONH基团的分子间氢键增加,从而导致BF与PA6,6之间的界面粘合性增强。随着硅烷偶联剂的非极性长CH2链数的增加,硅烷分子与PA6,6之间的链缠结形成的物理交联也改善了界面粘合力。它们的复合材料的拉伸强度在BF和PA6,6之间表现出相似的界面剪切强度趋势,按长链,三,二和单氨基硅烷处理的BFRP的顺序排列。长链氨基硅烷被证明是最有效的强化BF和PA6,6之间的相。这是因为长链氨基硅烷会诱导与PA6,6形成牢固的化学和物理键合,因为它的末端部分具有大量氨基,而间隔基部分具有较长的CH2链。

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