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Microstructure and Mechanical Properties of Carboxylated Nitrile Butadiene Rubber/Epoxy/XNBR-grafted Halloysite Nanotubes Nanocomposites

机译:羧基化丁腈橡胶/环氧树脂/ XNBR接枝的埃洛石纳米管纳米复合材料的微观结构和力学性能

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摘要

The effect of various amounts of carboxylated nitrile butadiene rubber (XNBR) functionalized halloysite nanotubes (XHNTs) on the cure characteristics, mechanical and swelling behavior of XNBR/epoxy compounds was experimentally and theoretically investigated. The morphology of the prepared XNBR/epoxy/XHNTs nanocomposites was imaged using scanning electron microscopy (SEM). The effects of various XNBR-grafted nanotubes on the damping factor of nanocomposites were evaluated by dynamic mechanical thermal analysis (DMTA). The cure behavior characterization indicated a fall in the scorch time, but a rise in the cure rate with higher loading of XHNTs into the XNBR/epoxy nanocomposites. SEM micrographs of tensile fracture surfaces were indicative of a rougher fracture surface with a uniform dispersion state of nanotubes into the polymer matrix in the XNBR/epoxy/XHNTs nanocomposites. The stress–strain behavior studies of XNBR/epoxy/XHNTs nanocomposites showed a higher tensile strength up to 40% with 7 wt % XHNTs loading. The theoretical predictions of uniaxial tensile behavior of nanocomposites using Bergström–Boyce model revealed that some of the material parameters were considerably changed with the XHNTs loading. Furthermore, the used theoretical model precisely predicted the nonlinear large strain hyperelastic behavior of nanocomposites.
机译:实验和理论研究了各种数量的羧化丁腈橡胶(XNBR)官能化的埃洛石纳米管(XHNTs)对XNBR /环氧化合物的固化特性,力学性能和溶胀行为的影响。使用扫描电子显微镜(SEM)对制得的XNBR /环氧树脂/ XHNTs纳米复合材料的形态进行成像。通过动态机械热分析(DMTA)评估了各种XNBR接枝的纳米管对纳米复合材料阻尼因子的影响。固化行为的表征表明焦烧时间减少,但是随着XHNTs负载到XNBR /环氧树脂纳米复合材料中的量增加,固化速率增加。拉伸断裂表面的SEM显微照片表明断裂表面较粗糙,纳米管在XNBR /环氧树脂/ XHNTs纳米复合材料中均匀分散在聚合物基质中。 XNBR /环氧树脂/ XHNTs纳米复合材料的应力-应变行为研究显示,在负载7 wt%的XHNTs时,其抗张强度最高可达40%。使用Bergström-Boyce模型对纳米复合材料的单轴拉伸行为进行的理论预测表明,某些材料参数随XHNTs负载而发生了很大变化。此外,所使用的理论模型可以精确地预测纳米复合材料的非线性大应变超弹性行为。

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