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Damage Tolerance Enhancement of Carbon Fiber Reinforced Polymer Composites by Nanoreinforcement of Matrix.

机译:纳米增强基质增强碳纤维增强聚合物复合材料的损伤耐受性。

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摘要

Nanocomposites are a relatively new class of materials which incorporate exotic, engineered nanoparticles to achieve superior material properties. Because of their extremely small size and well-ordered structure, many nanoparticles possess properties that exceed those offered by a wide range of other known materials, making them attractive candidates for novel materials engineering development. Their small size is also an impediment to their practical use, as they typically cannot be employed by themselves to realize those properties in large structures. Furthermore, nanoparticles typically possess strong self-affinity, rendering them difficult to disperse uniformly into a composite. However, contemporary research has shown that, if well-dispersed, nanoparticles have great capacity to improve the mechanical properties of composites, especially damage tolerance, in the form of fracture toughness, fatigue life, and impact damage mitigation.;This research focuses on the development, manufacturing, and testing of hybrid micro/nanocomposites comprised of woven carbon fibers with a carbon nanotube reinforced epoxy matrix. Material processing consisted of dispersant-and-sonication based methods to disperse nanotubes into the matrix, and a vacuum-assisted wet lay-up process to prepare the hybrid composite laminates. Various damage tolerance properties of the hybrid composite were examined, including static strength, fracture toughness, fatigue life, fatigue crack growth rate, and impact damage behavior, and compared with similarly-processed reference material produced without nanoreinforcement. Significant improvements were obtained in interlaminar shear strength (15%), Mode-I fracture toughness (180%), shear fatigue life (order of magnitude), Mode-I fatigue crack growth rate (factor of 2), and effective impact damage toughness (40%). Observations by optical microscopy, scanning electron microscopy, and ultrasonic imaging showed significant differences in failure behavior and fracture morphology between the two materials, related to the differences in properties. Altogether these results provided a means for proposing an explanation of the mechanism of reinforcement (and damage tolerance enhancement) provided by carbon nanotubes in hybrid composite materials.
机译:纳米复合材料是一类相对较新的材料,它结合了奇异的工程纳米颗粒,以实现优异的材料性能。由于其极小的尺寸和有序的结构,许多纳米粒子的性能超过了许多其他已知材料所提供的性能,这使其成为新型材料工程开发的有吸引力的候选对象。它们的小尺寸也阻碍了它们的实际使用,因为它们通常不能单独用于实现大型结构中的那些特性。此外,纳米粒子通常具有很强的自亲和力,使其难以均匀地分散到复合物中。然而,当代研究表明,纳米颗粒如果分散得很好,则具有以断裂韧性,疲劳寿命和减轻冲击破坏的形式改善复合材料的机械性能,尤其是破坏耐受性的能力。开发,制造和测试由织造碳纤维和碳纳米管增强的环氧基质组成的微/纳米杂化复合材料。材料加工包括将纳米管分散到基体中的基于分散剂和超声处理的方法,以及用于制备杂化复合材料层压板的真空辅助湿法铺层工艺。研究了杂化复合材料的各种损伤耐受性能,包括静态强度,断裂韧性,疲劳寿命,疲劳裂纹扩展速率和冲击损伤行为,并与未经纳米增强的类似工艺的参考材料进行了比较。层间剪切强度(15%),I型断裂韧度(180%),剪切疲劳寿命(数量级),I型疲劳裂纹扩展率(2倍)和有效冲击破坏韧性获得了显着改善(40%)。通过光学显微镜,扫描电子显微镜和超声成像的观察表明,两种材料在破坏行为和断裂形态方面存在显着差异,这与性能差异有关。总而言之,这些结果为提出解释混合复合材料中的碳纳米管提供的增强机理(和破坏耐受性增强)提供了一种手段。

著录项

  • 作者

    Fenner, Joel Stewart.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Engineering Mechanical.;Nanotechnology.;Chemistry Polymer.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 270 p.
  • 总页数 270
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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