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首页> 外文期刊>Journal of Applied Polymer Science >Preparation and characterization of modified-clay-reinforced and toughened epoxy-resin nanocomposites
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Preparation and characterization of modified-clay-reinforced and toughened epoxy-resin nanocomposites

机译:改性粘土增强和增韧环氧树脂纳米复合材料的制备与表征

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Epoxy-clay nanocomposites were prepared by the dispersion of an organically modified layered clay in an epoxy resin (diglycidyl ether of bisphenol A) and curing in the presence of methyl tetrahydro acid anhydride at 80-160degreesC. The nanometer-scale dispersion of layered clay within the crosslinked epoxy-resin matrix was confirmed by X-ray diffraction and transmission electron microscopy, and the basal spacing of the silicate layer was greater than 100-150 Angstrom. Experiments indicated that the hydroxyethyl groups of the alkyl ammonium ions, which were located in the galleries of organically modified clay, participated in the curing reaction and were directly linked to the epoxy-resin matrix network. Experimental results showed that the properties of epoxy were improved, evidently because of the loading of organically modified clay. The impact strength and tensile strength of the nanocomposites increased by 87.8 and 20.9%, respectively, when 3 wt % organic clay was loaded, and this demonstrated that the composites were toughened and strengthened. The thermal-decomposition and heat-distortion temperatures were heightened in comparison with those of pure epoxy resin, and so were the dynamic mechanical properties, including the storage modulus and glass-transition temperature. Moreover, experiments showed that most properties of the composites were ameliorated with low clay contents. (C) 2003 Wiley Periodicals, Inc. [References: 7]
机译:通过将有机改性的层状粘土分散在环氧树脂(双酚A的二缩水甘油醚)中,并在甲基四氢酐存在下于80-160℃下固化,制备环氧树脂粘土纳米复合材料。通过X射线衍射和透射电子显微镜证实了层状粘土在交联的环氧树脂基质内的纳米级分散,并且硅酸盐层的基础间距大于100-150埃。实验表明,位于有机改性粘土画廊中的烷基铵离子的羟乙基参与了固化反应,并直接与环氧树脂基质网络相连。实验结果表明,由于有机改性粘土的负载,环氧树脂的性能得到了改善。当负载3wt%的有机粘土时,纳米复合材料的冲击强度和拉伸强度分别增加了87.8%和20.9%,这表明复合材料是增韧和增强的。与纯环氧树脂相比,其热分解和热变形温度提高了,动态力学性能也随之提高,包括储能模量和玻璃化转变温度。此外,实验表明,低粘土含量可改善复合材料的大多数性能。 (C)2003 Wiley Periodicals,Inc. [参考:7]

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