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Mechanical and Functional Properties of Carbon Nanotubes- High Performance Fibre Hybrid Composites.

机译:碳纳米管-高性能纤维杂化复合材料的机械和功能特性。

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摘要

Two approaches have been considered to optimize specific properties of Fibre Reinforced Composites (FRP). Firstly, carbon nanotubes (CNT)-epoxy nanocomposites are applied directly onto the brittle glass fibre surface as 'healing coatings' to reduce the stress concentrations, thus improving the reinforcing efficiency in the composite. Secondly, while using CNT-epoxy as bulk matrix, the processing and fabrication of CNTs containing hybrid composites is considered through 'prepregging'.;The effects of CNT/epoxy nanocomposite coatings applied to the fibre surface on tensile strength of single glass fibres are evaluated at different gauge lengths. It is shown that 0.3wt% CNT/epoxy nanocomposite coating gives rise to a significant increase in tensile strength of the fibre for all gauge lengths, better than the neat epoxy coating. The changes in prevailing failure mechanisms influenced by the epoxy and nanocomposite coatings have been identified. Effects of CNT structure, morphology and dispersion characteristics affected by CNT content, on crack healing efficiencies are also evaluated. The crack healing efficiency is much higher for the fibres coated with straight, less entangled CNTs than those with highly entangled CNTs, indicating the CNT dispersion state in the coating played an important role.;Prepregs of carbon fibre-reinforced polymer composites containing CNTs are produced based on a solvent-less prepregging process. This work provides the comprehensive evaluation of the processing and curing parameters affected by the incorporation of CNT in CFRP prepreg manufacturing. The viscosity difference between the epoxies with and without CNTs is reduced by employing a temperature slightly higher than ambient. Based on the findings obtained from the rheological studies, suitable processing parameters are chosen for lab-scale production of CFRP prepregs. The effects of surfactant-treated CNTs on cure behaviour of epoxy and CFRP prepreg are also evaluated. The interlaminar shear strength, torsional shear modulus and strength of the 0.5wt% CNT-CFRP increased by 12%, 18% and 25%, respectively, compared with the neat CFRP, an indication of the improved properties of the matrix material. The changes in the fracture mechanism occurring after addition of a higher CNT content are identified.
机译:已经考虑了两种方法来优化纤维增强复合材料(FRP)的特定性能。首先,将碳纳米管(CNT)-环氧纳米复合材料直接涂在脆性玻璃纤维表面上作为“愈合涂层”以减少应力集中,从而提高复合材料的增强效率。其次,在使用碳纳米管环氧树脂作为整体基质的同时,通过“预浸”考虑了含有杂化复合材料的碳纳米管的加工和制备。评估了碳纳米管/环氧纳米复合涂料在纤维表面的应用对单玻璃纤维拉伸强度的影响。在不同的标距长度结果表明,在所有标准长度下,0.3wt%的CNT /环氧纳米复合材料涂层均显着提高了纤维的拉伸强度,优于纯环氧涂层。已经确定了受环氧树脂和纳米复合材料涂层影响的主要失效机理的变化。还评估了受CNT含量影响的CNT结构,形态和分散特性对裂纹愈合效率的影响。涂覆有直的,较少缠结的CNT的纤维的裂纹愈合效率要比具有高缠结的CNT的纤维的裂纹愈合效率高得多,这表明涂层中的CNT分散状态起着重要作用。基于无溶剂的预浸工艺。这项工作提供了对碳纤维增强塑料预浸料生产中掺入碳纳米管影响的加工和固化参数的综合评估。通过采用比环境温度稍高的温度,可以降低具有和不具有CNT的环氧树脂之间的粘度差。根据从流变学研究中获得的发现,选择合适的加工参数以实验室规模生产CFRP预浸料。还评估了表面活性剂处理的CNT对环氧树脂和CFRP预浸料的固化行为的影响。与纯CFRP相比,0.5wt%CNT-CFRP的层间剪切强度,扭转剪切模量和强度分别增加了12%,18%和25%,这表明基质材料的性能有所改善。确定了在添加更高的CNT含量之后发生的断裂机理的变化。

著录项

  • 作者

    Siddiqui, Naveed Ahmed.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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