首页> 外文期刊>Journal of Reinforced Plastics and Composites >Mechanical and thermal properties of sisal fiber reinforced acrylated epoxidized castor oil toughened diglycidyl ether of bisphenol A epoxy nanocomposites
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Mechanical and thermal properties of sisal fiber reinforced acrylated epoxidized castor oil toughened diglycidyl ether of bisphenol A epoxy nanocomposites

机译:剑麻纤维增强双酚A环氧纳米复合材料丙烯酸酯化环氧蓖麻油增韧二缩水甘油醚的力学和热性能

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摘要

In this study, the bio-based epoxy nanocomposites were prepared from acrylated epoxidized castor oil toughened diglycidyl ether of bisphenol A epoxy network filled with sisal fibers and cloisite 30B clay. The chemical structure of acrylated epoxidized castor oil resin was confirmed by Fourier transform infrared and Proton nuclear magnetic resonance ((HNMR)-H-1) spectroscope techniques. Mechanical and thermal properties of the sisal fiber reinforced acrylated epoxidized castor oil toughened diglycidyl ether of bisphenol A epoxy composites and nanocomposites were investigated. Mechanical tests revealed that bio-based epoxy nanocomposites (containing 80% diglycidyl ether of bisphenol A/20% acrylated epoxidized castor oil / 30% treated sisal fiber/ 1% cloisite 30B weight ratio) were found to be higher in tensile strentgh to 78%, flexural strentgh to 44% and impact strength to 20% than the 80% diglycidyl ether of bisphenol A/20% acrylated epoxidized castor oil matrix. Thermogravimetric analysis results showed that the thermal stability of diglycidyl ether of bisphenol A /acrylated epoxidized castor oil matrix increased with the incorporation of alkali-silane-treated sisal fiber and cloisite 30B nanoclay. The apparent activation energy was increased from 236 to 273KJ/mol with the addition of 1% cloisite 30B clay and 30% alkali-silane-treated sisal fiber to the 80% diglycidyl ether of bisphenol A /20% acrylated epoxidized castor oil matrix. Scanning electron microscopy was performed to investigate the fracture behaviour at the fiber-matrix interface.
机译:在这项研究中,生物基环氧纳米复合材料是由填充有剑麻纤维和堇青石30B粘土的双酚A环氧网络的丙烯酸化的环氧化蓖麻油增韧的二缩水甘油醚制备的。丙烯酸酯化的蓖麻油树脂的化学结构通过傅里叶变换红外和质子核磁共振((HNMR)-H-1)光谱仪技术得到证实。研究了双酚A环氧复合材料和纳米复合材料的剑麻纤维增强丙烯酸酯化环氧蓖麻油增韧二缩水甘油醚的力学和热性能。力学测试表明,生物基环氧纳米复合材料(包含80%的双酚A二缩水甘油醚/ 20%丙烯酸化的环氧化蓖麻油/ 30%处理的剑麻纤维/ 1%堇青石30B重量比)的拉伸强度更高,达到78% ,与80%的双酚A / 20%丙烯酸环氧化蓖麻油基质的二缩水甘油醚相比,抗弯强度为44%,冲击强度为20%。热重分析结果表明,双酚A /丙烯酸酯化的蓖麻油基双缩水甘油醚的热稳定性随碱硅烷处理过的剑麻纤维和多氯多酚蓝30B纳米粘土的加入而增加。通过向80%双酚A / 20%丙烯酸环氧化蓖麻油基质的二缩水甘油醚中添加1%的硅藻土30B粘土和30%的碱硅烷处理过的剑麻纤维,将表观活化能从236 KJ / mol增加到273KJ / mol。进行扫描电子显微镜以研究纤维-基质界面处的断裂行为。

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