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Nanographene reinforced carbon/carbon composites.

机译:纳米石墨烯增强的碳/碳复合材料。

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摘要

Carbon/Carbon Composites (CCC) are made of carbon reinforcement in carbon matrix and have high thermal stability and fatigue resistance. CCC are used in nose cones, heat shields and disc brakes of aircrafts due to their exceptional mechanical properties at high temperature. The manufacturing process of CCC involves a carbonization stage in which unwanted elements, except carbon, are eliminated from the polymer precursor. Carbonization results in the formation of voids and cracks due to the thermal mismatch between the reinforcement and the matrix and expulsion of volatiles from the polymer matrix. Thermal cracks and voids decrease the density and mechanical properties of the manufactured CCC.;In this work, Nanographene Platelets (NGP) were explored as nanofillers to fill the voids/cracks and reduce thermal shrinkage in CCC. They were first compared with Vapor Grown Carbon Nanofibers (VGCNF) by dispersion of different concentrations (0.5wt%, 1.5wt%, 3wt%) in resole-type phenolic resin and were characterized to explore their effect on rheology, heat of reaction and wetting behavior. The dispersions were then cured to form nanocomposites and were characterized for morphology, flexure and thermal properties. Finally, NGP were introduced into the carbon/carboncomposites in two stages, first by spraying in different concentrations (0.5wt%, 1.5wt%, 3wt%, 5wt %) during the prepreg formation and later during densification by directly mixing in the corresponding densification mix. The manufactured NGP reinforced CCC were characterized for microstructure, porosity, bulk density and mechanical properties (Flexure and ILSS) which were further cross-checked by non-destructive techniques (vibration and ultrasonic).;In this study, it was further found that at low concentration (≤ 1.5 wt%) NGP were more effective in increasing the heat of reaction and in decreasing the viscosity of the phenolic resin. The decrease in viscosity led to better wetting properties of NGP / phenolic dispersions compared to VGCNF/phenolic dispersions. In nanocomposites, at low concentration (≤ 1.5 wt%), NGP were effective in increasing the flexure strength, char content and lowering the porosity and coefficient of thermal expansion of neat phenolic resin. At higher concentration (>1.5wt%), NGP had a tendency to agglomerate and lost their effectiveness. The behavior observed in nanocomposites continued in manufactured CCC. The highest Inter Laminar Shear Strength (ILSS), flexure strength/modulus, stiffness and density was observed at 1.5 wt% NGP. In CCC at concentrations > 1.5 wt%, the properties (ILSS, flexure, stiffness, density) decreased due to agglomeration but they were still higher compared to that of neat CCC (without NGP).
机译:碳/碳复合材料(CCC)由碳基质中的碳增强材料制成,具有很高的热稳定性和抗疲劳性。 CCC由于其在高温下的出色机械性能而被用于飞机的前锥体,隔热板和盘式制动器。 CCC的制造过程涉及碳化阶段,其中从聚合物前体中除去除碳以外的不需要的元素。由于增强材料和基体之间的热失配以及从聚合物基体中排出挥发物,碳化导致形成空隙和裂纹。热裂纹和空隙会降低所制造的CCC的密度和机械性能。在这项工作中,人们探索了纳米石墨烯薄片(NGP)作为纳米填料来填充空隙/裂纹并减少CCC中的热收缩。首先通过将不同浓度(0.5wt%,1.5wt%,3wt%)分散在甲阶酚醛树脂中与气相生长碳纳米纤维(VGCNF)进行比较,并研究它们对流变学,反应热和润湿的影响。行为。然后将分散体固化以形成纳米复合材料,并对其形态,挠曲和热性能进行表征。最后,NGP分两个阶段引入碳/碳复合材料中,首先是在预浸料坯形成过程中以不同浓度(0.5wt%,1.5wt%,3wt%,5wt%)喷涂,然后在致密化过程中直接混合进行相应的致密化混合。所制造的NGP增强型CCC具有微观结构,孔隙率,堆积密度和机械性能(挠曲度和ILSS)的特征,这些特征通过无损技术(振动和超声)进一步进行了交叉检验。低浓度(≤1.5wt%)的NGP在增加反应热和降低酚醛树脂的粘度方面更有效。与VGCNF /酚分散体相比,粘度的降低导致NGP /酚分散体具有更好的润湿性能。在低浓度(≤1.5 wt%)的纳米复合材料中,NGP可有效提高纯酚醛树脂的弯曲强度,炭含量并降低孔隙率和热膨胀系数。在较高的浓度(> 1.5wt%)下,NGP倾向于聚集并失去其有效性。在纳米复合材料中观察到的行为在制造的CCC中继续存在。在NGP为1.5重量%时,观察到最高层间剪切强度(ILSS),挠曲强度/模量,刚度和密度。在浓度> 1.5 wt%的CCC中,性能(ILSS,挠曲性,刚度,密度)由于结块而降低,但与纯CCC(无NGP)相比,仍更高。

著录项

  • 作者

    Bansal, Dhruv.;

  • 作者单位

    The University of Alabama at Birmingham.;

  • 授予单位 The University of Alabama at Birmingham.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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