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Property characterization of carbon nanotube reinforced S-glass and carbon fiber composites.

机译:碳纳米管增强的S玻璃和碳纤维复合材料的性能表征。

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摘要

In this work, unidirectional multi-scale composites were manufactured and mechanically tested. Carbon nanotubes (CNTs) were grown onto the surfaces of AGY S2-Glass fibers, Grafil 34-700 carbon fibers and Hexcel IM7 carbon fibers using an in-line continuous chemical vapor deposition-based growth process. The processing parameters peculiar to the growth system were growth chamber temperature, catalyst concentration and line speed. These were varied to observe the effect on the CNT growth and parent filament degradation. These processed filaments were wound into unidirectional panels and infused with EPON(TM) 828 Epoxy. Unidirectional tension and compression tests were conducted in the reinforcement direction and the in-plane and interlaminar shear responses were also characterized.;The effects of processing on micro-morphology were observed via electron microscopy of the CNT-enhanced filaments. The concentration and type of growth directly affected the composite physical properties, specifically fiber volume and bulk density. Increases in growth chamber temperature, chamber residence time and catalyst concentrations each led to a greater volume of CNTs grown on the filament surfaces. Greater volume of CNTs prevents close packing of the filaments, thus decreasing fiber volume and density.;The fiber volume directly affects composite mechanical properties in the reinforcement direction. A uniform coating of short CNTs creates a multi-length scale composite that exhibits increases in strength, stiffness and functional extension in the fiber direction. For in-plane and interlaminar shear, a larger volume of CNTs was shown to increase ultimate shear strength and post-failure toughness. These Fiber-CNT-Epoxy composites can be tailored for specific applications based on mechanical property requirements.
机译:在这项工作中,制造了单向多尺度复合材料并进行了机械测试。使用基于在线连续化学气相沉积的生长工艺,将碳纳米管(CNT)生长在AGY S2-玻璃纤维,Grafil 34-700碳纤维和Hexcel IM7碳纤维的表面上。生长系统特有的加工参数是生长室温度,催化剂浓度和线速度。改变这些以观察对CNT生长和母体丝降解的影响。将这些加工过的长丝缠绕成单向板,并注入EPON TM 828环氧树脂。在增强方向上进行了单向拉伸和压缩试验,并表征了平面内和层间剪切响应。通过电子显微镜观察了增强CNT的长丝,观察了加工对微观形貌的影响。生长的浓度和类型直接影响复合物的物理性能,特别是纤维的体积和堆积密度。生长室温度,室停留时间和催化剂浓度的增加各自导致长丝表面上生长的更大体积的CNT。较大的CNT体积会阻止长丝紧密堆积,从而降低纤维的体积和密度。纤维的体积直接影响增强方向上的复合机械性能。短CNT的均匀涂层形成了多长度的复合材料,该复合材料在纤维方向上显示出强度,刚度和功能扩展的增强。对于面内和层间剪切,显示较大体积的CNT可增加极限剪切强度和破坏后的韧性。这些纤维-CNT-环氧树脂复合材料可根据机械性能要求量身定制,以适合特定应用。

著录项

  • 作者

    Markkula, Samuel Juhani.;

  • 作者单位

    University of Maryland, Baltimore County.;

  • 授予单位 University of Maryland, Baltimore County.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.
  • 学位 M.S.
  • 年度 2009
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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