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Thermal oxidation induced degradation of carbon fiber reinforced composites and carbon nanotube sheet enhanced fiber/matrix interface for high temperature aerospace structural applications.

机译:热氧化引起的碳纤维增强复合材料的降解以及碳纳米管片增强的纤维/基质界面的降解,用于高温航空航天结构应用。

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摘要

Recent increase in the use of carbon fiber reinforced polymer matrix composite, especially for high temperature applications in aerospace primary and secondary structures along with wind energy and automotive industries, have generated new challenges to predict its failure mechanisms and service life. This dissertation reports the experimental study of a unidirectional carbon fiber reinforced bismaleimide (BMI) composites (CFRC), an excellent candidate for high temperature aerospace components, undergoing thermal oxidation at 260 °C in air for over 3000 hours. The key focus of the work is to investigate the mechanical properties of the carbon fiber BMI composite subjected to thermal aging in three key aspects - first, studying its bulk flexural properties (in macro scale), second, characterizing the crack propagation along the fiber direction, representing the interfacial bonding strength between fiber and matrix (in micro scale), and third, introducing nano-structured materials to modify the interface (in nano scale) between the carbon fiber and BMI resin and mechanical characterization to study its influence on mitigating the aging effect. Under the first category, weight loss and flexural properties have been monitored as the oxidation propagates through the fiber/matrix interface. Dynamic mechanical analysis and micro-computed tomography analysis have been performed to analyze the aging effects. In the second category, the long-term effects of thermal oxidation on the delamination (between the composite plies) and debonding (between fiber and matrix) type fracture toughness have been characterized by preparing two distinct types of double cantilever beam specimens. Digital image correlation has been used to determine the deformation field and strain distribution around the crack propagation path. Finally the resin system and the fiber/matrix interface have been modified using nanomaterials to mitigate the degradations caused by oxidation. Nanoclay modified epoxy resin has been characterized for hardness and modulus using nanoindentation technique. A significant reduction of oxidation, which is anticipated to eventually translate into improvement in mechanical properties, has been observed as the nanoclay particles have worked as a retarding agent for the oxidation propagation. Carbon nanotube sheet scrolled carbon fiber tows embedded in epoxy matrix have been investigated for interfacial properties using nanoindentation (push-out test), in micro scale, and using tensile testing (pull-out test), in macro scale. A significant increase in interfacial shear strength has been achieved by this unique materials combination.
机译:最近碳纤维增强聚合物基复合材料的使用增加,特别是在航空一级和二级结构以及风能和汽车行业的高温应用中,对预测其失效机理和使用寿命提出了新的挑战。本文报道了一种单向碳纤维增强双马来酰亚胺(CFRC)复合材料(CFRC)的实验研究,该复合材料是高温航空航天组件的理想候选材料,它在260°C的空气中经历了3000多个小时的热氧化。这项工作的重点是从三个关键方面研究经受热老化的碳纤维BMI复合材料的机械性能-首先,研究其整体弯曲性能(宏观尺度),其次,表征沿纤维方向的裂纹扩展代表纤维与基体之间的界面粘结强度(以微米为单位),其三,引入纳米结构材料来修饰碳纤维与BMI树脂之间的界面(以纳米级为单位),并进行机械表征,以研究其对减轻碳纤维与BMI的影响。老化作用。在第一类中,随着氧化传播通过纤维/基质界面,已经监测了重量损失和弯曲性能。已经进行了动态力学分析和计算机断层扫描分析以分析老化效应。在第二类中,通过制备两种不同类型的双悬臂梁试样来表征热氧化对分层(复合层之间)和脱粘(纤维与基质之间)型断裂韧性的长期影响。数字图像相关已用于确定裂纹扩展路径周围的变形场和应变分布。最后,已使用纳米材料对树脂体系和纤维/基质界面进行了改性,以减轻由氧化引起的降解。使用纳米压痕技术已对纳米粘土改性环氧树脂的硬度和模量进行了表征。由于纳米粘土颗粒已经用作氧化传播的阻滞剂,已经观察到氧化的显着降低,预计最终将转化为机械性能的改善。埋入环氧树脂基体中的碳纳米管片状滚动碳纤维丝束已在纳米尺度上使用纳米压痕(拉出测试),在宏观上使用了拉伸测试(拉出测试)进行了界面性能研究。通过这种独特的材料组合,可以显着提高界面剪切强度。

著录项

  • 作者

    Haque, Mohammad Hamidul.;

  • 作者单位

    The University of Texas at Dallas.;

  • 授予单位 The University of Texas at Dallas.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 康复医学;
  • 关键词

  • 入库时间 2022-08-17 11:43:28

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