首页> 外文会议>International Symposium on Advanced Materials >Tuning of Thermo-Mechanical Performance: Modified Multiwalled Carbon Nanotubes Reinforced SBR/NBR/SR Nanocomposites
【24h】

Tuning of Thermo-Mechanical Performance: Modified Multiwalled Carbon Nanotubes Reinforced SBR/NBR/SR Nanocomposites

机译:调整热电机能性能:改性多壁碳纳米管增强SBR / NBR / SR纳米复合材料

获取原文

摘要

The present study aimed to identify the potential of modified nano-reinforcement (multiwalled carbon nanotubes; m-MWCNTs) to attenuate the thermal transport/ decomposition/ transition and mechanical aspects of three different polymeric matrices. In order to develop strong interfacial interaction between the host matrix and the incorporated nanotubes, 3-aminopropyletrimethoxy silane (APTMS) was used to m-MWCNTs. IR spectra confirmed the silane chemical moiety attachment on the upper surface of the MWCNTs. Conventional elastomeric mixing techniques were adopted to disperse m-MWCNTs within the three polymeric matrices (Acrylonitrile butadiene rubber, Silicone rubber, and Styrene Butadiene rubber) separately. SEM images assured the uniform dispersion of m-MWCNTs within the host polymeric matrices. Experimental evaluation of thermal conductivity revealed the reduction of thermal transport through the developed composite specimens by increasing the host polymer matrix to nano-filler concentration (m-MWCNTs). The utmost insulation effect was perceived in the F-MWCNTs incorporated silicone rubber nanocomposite comparatively. Glass transition/crystallization temperatures of the nanocomposites were lessened however melting temperatures were enhanced by impregnating nanotubes into the host polymeric matrices. Maximum thermal stability improvement due to the addition of m-MWCNTs was observed in the silicone elastomeric nanocomposite as compared to the other two systems. Proper dispersion and compatibility of m-MWCNTs with the polymeric matrices effectively enhanced the ultimate tensile strength (UTS)/elongation at break along hardness of rubber of the nanocomposites. The insulation character of m-MWCNTs/silicone rubber system was found best among the explored nanocomposite formulations.
机译:本研究旨在识别改性纳米增强(多壁碳纳米管; M-MWCNT)的潜力,以衰减三种不同聚合物基质的热传输/分解/过渡和机械方面。为了在宿主基质和掺入的纳米管之间形成强的界面相互作用,将3-氨基丙基四氟甲氧基硅烷(APTMS)用于M-MWCNT。 IR光谱证实了在MWCNT的上表面上的硅烷化学部分附着。采用常规的弹性体混合技术分别用于分别分散三种聚合物基质(丙烯腈丁二烯橡胶,硅橡胶和苯乙烯丁二烯橡胶)的M-MWCNT。 SEM图像确保了M-MWCNTs在宿主聚合物基质中的均匀分散。导热率的实验评估通过增加宿主聚合物基质(M-MWCNT),通过显影复合标本揭示了通过发育的复合标本的热传输的减少。在F-MWCNT结合的硅橡胶纳米复合材料中,在F-MWCNT中感知至最大的绝缘效果。减少纳米复合材料的玻璃化转变/结晶温度,但是通过将纳米管浸渍到宿主聚合物基质中来增强熔化温度。与其他两个系统相比,在硅氧烷弹性体纳米核化学物质中观察到由于添加M-MWNTS而导致的最大热稳定性改善。与聚合物基质的M-MWCNTS的适当分散和相容性有效地增强了纳米复合材料的橡胶硬度的断裂的最终拉伸强度(UTS)/伸长率。在勘探的纳米复合配方中发现了M-MWCNT /硅橡胶系统的绝缘特性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号