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Nanocomposites of nitrile (NBR) rubber with multi-walled carbon nanotubes.

机译:丁腈橡胶(NBR)与多壁碳纳米管的纳米复合材料。

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摘要

Nanotechnology offers the promise of creating new materials with enhanced performance. There are different kinds of fillers used in rubber nanocomposites, such as carbon black, silica, carbon fibers, and organoclays. Carbon nanotube reinforced elastomers have potential for improved rubber properties in aggressive environments. The first chapter is an introduction to the literature. The second chapter investigated the incorporation of multi-walled carbon nanotubes (MWCNTs) into rubber matrix for potential use in high temperature applications. The vulcanization kinetics of acrylonitrile butadiene rubber (NBR) reinforced with multi-walled carbon nanotubes was investigated. The vulcanized NBR rubber with different loading percentages of MWCNTs was also compared to NBR reinforced with carbon black N330. The optimum curing time at 170°C (T90) was found to decrease with increasing content of MWCNTs. Increased filler loading of both carbon black and MWCNTs gave higher modulus and strength. The MWCNTs filled materials gave better retention of modulus and tensile strength at high temperatures, but lower strength as compared to the carbon black filled samples.;In the third chapter, carbon black (CB, 50phr) content in nitrile rubber (NBR) nanocomposites was partially replaced by multi-walled carbon nanotubes (MWCNTs). NBR/CB/CNTs nanocomposites with varying ratio of CB/CNTs (50/0 phr to 40/10 phr) were formulated via the melt-mixing method using an internal mixer. The reinforcing effect of single filler (CB) and mixture of fillers (CB and CNTs) on the properties of NBR nanocomposites was investigated. The cure kinetics and bound rubber content were analyzed using rheometry and solvent swelling method. In addition, mechanical behavior at both room temperature and high temperature (350°F/ 121°C) were examined. The scorch time and curing time values showed that there was no significant effect on the curing behavior of NBR nanocomposites after the partial replacement of CB with CNTs. It was observed that bound rubber content decreased with increase in CNT content for NBR/CB/CNTs nanocomposites above a loading of 1 phr CNT.;In the fourth chapter, the effect of another carbon filler, fullerene, on the properties of HNBR was studied. Fullerenes are conductive and thermally stable due to their three dimensional aromaticity and high reactivity. In this work, the effect of fullerenes (C60) on the properties of HNBR rubber for potential use in aggressive environments was investigated. The vulcanized HNBR rubber with different filler loadings of fullerenes was compared with carbon black (N330). The static mechanical, dynamic mechanical and rheological behavior of the compounds was investigated, along with the vulcanization kinetics study. Increased filler loading of both carbon black and fullerene gave higher modulus and strength. The fullerene filled materials showed improved failure properties.
机译:纳米技术有望创造出性能更高的新材料。橡胶纳米复合材料中使用了不同种类的填料,例如炭黑,二氧化硅,碳纤维和有机粘土。碳纳米管增强的弹性体具有在侵蚀性环境中改善橡胶性能的潜力。第一章是文献介绍。第二章研究了将多壁碳纳米管(MWCNT)掺入橡胶基体中的潜在用途,以供高温应用。研究了多壁碳纳米管增强的丙烯腈丁二烯橡胶(NBR)的硫化动力学。还比较了具有不同碳纳米管负载百分比的硫化NBR橡胶与碳黑N330增强的NBR。发现在170°C(T90)下的最佳固化时间会随着MWCNT含量的增加而减少。炭黑和MWCNT的填料填充量增加,则模量和强度更高。 MWCNTs填充材料在高温下具有更好的模量和拉伸强度保持性,但与炭黑填充样品相比具有较低的强度。第三章,丁腈橡胶(NBR)纳米复合材料中的炭黑(CB,50phr)含量为部分被多壁碳纳米管(MWCNT)取代。通过使用内部混合器的熔融混合方法配制出具有不同比例的CB / CNT(50/0 phr至40/10 phr)的NBR / CB / CNTs纳米复合材料。研究了单一填料(CB)和填料混合物(CB和CNT)对NBR纳米复合材料性能的增强作用。使用流变法和溶剂溶胀法分析硫化动力学和结合橡胶含量。此外,还检查了室温和高温(350°F / 121°C)下的机械性能。焦烧时间和固化时间值表明,用CNTs代替CB后,对NBR纳米复合材料的固化行为没有显着影响。观察到Nphr / CB / CNTs纳米复合材料的载量超过1 phr时,结合橡胶的含量随CNT含量的增加而降低。;第四章研究了另一种碳填料富勒烯对HNBR性能的影响。 。富勒烯具有三维芳香性和高反应活性,因此具有导电性和热稳定性。在这项工作中,研究了富勒烯(C60)对HNBR橡胶性能的影响,以便在侵蚀性环境中潜在使用。将富勒烯填充量不同的硫化HNBR橡胶与炭黑(N330)进行了比较。研究了这些化合物的静态力学,动态力学和流变行为,以及硫化动力学研究。炭黑和富勒烯的填料含量增加,模量和强度更高。富勒烯填充的材料显示出改进的破坏性能。

著录项

  • 作者

    Warasitthinon, Nuthathai.;

  • 作者单位

    University of Massachusetts Lowell.;

  • 授予单位 University of Massachusetts Lowell.;
  • 学科 Plastics Technology.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 84 p.
  • 总页数 84
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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