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Multifunctional and specific interactions of CNTs in NBR and HNBR

机译:NBR和HNBR中CNT的多功能相互作用和特定相互作用

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摘要

There are different techniques in practice to disperse multiwalled carbon nanotubes (MWCNTs) in elastomers. In the present work, commercially available MWCNTs NANOCYL NC 7000™ are used as filler. A synthetic Nitrile Butadiene Rubber (NBR) and Hydrogenated Nitrile Butadiene Rubber (HNBR) were used as polymer matrix for the composites prepared by melt blending. The filler dispersion in HNBR was studied through Transmission Electron Microscopy (TEM). The mechanical properties are investigated through strain sweep and tensile tests. Dielectric measurements are carried out to study electrical conductivity of the nanocomposites. Dynamic mechanical measurements showed an enhanced Payne effect and improvement in stiffness with increase in CNTs content into rubber matrix An improvement in electrical and mechanical properties in both NBR and HNBR system resulted by an increase in filler loading. The mechanical and electric percolation threshold of CNTs was found at very low filler volume fraction. Equilibrium swelling experiments were used to study polymer-filler interaction with the help of Kraus plot and diffusion coefficient. NBR showed higher polymer-filler interaction compared to HNBR. In NBR nanocomposites, CNTs showed higher interaction than carbon black. Good dispersion and effective interaction of the CNTs with the polymer led to significant mechanical reinforcing effects.
机译:在实践中,有多种技术可将多壁碳纳米管(MWCNT)分散在弹性体中。在本工作中,使用市售的MWCNT NANOCYL NC 7000™作为填料。合成丁腈橡胶(NBR)和氢化丁腈橡胶(HNBR)被用作聚合物基体,用于熔融共混制备的复合材料。通过透射电子显微镜(TEM)研究了填料在HNBR中的分散性。通过应变扫描和拉伸试验研究了机械性能。进行介电测量以研究纳米复合材料的电导率。动态力学测量表明,随着橡胶基体中CNT含量的增加,Payne效应增强,刚度提高。NBR和HNBR系统的电气和机械性能均得到改善,这是由于填料用量增加所致。发现在非常低的填料体积分数下,CNT的机械和电气渗透阈值。借助Kraus图和扩散系数,使用平衡溶胀实验研究聚合物与填料的相互作用。与HNBR相比,NBR显示出更高的聚合物-填料相互作用。在NBR纳米复合材料中,CNT比炭黑显示出更高的相互作用。 CNT与聚合物的良好分散和有效相互作用导致显着的机械增强效果。

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