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Sustainable self-healing structural composites

机译:可持续自愈结构复合材料

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摘要

Self-healing composites are composite materials capable of automatic recovery when damaged. They are inspired by biological systems such as the human skin which are naturally able to heal themselves. Over the past two decades, two major self-healing concepts – based respectively on the use of capsules and vascular networks containing healing agents - have been proposed and material property recovery has been enhanced from 60% to nearly 100%. However, this improvement is still not sufficient to allow self-healing composites to be applied in practice because the healing capability varies with many external factors such as ambient temperatures and damage conditions. The key to the practical application of self-healing composites is to promote the sustainability of healing capacity to make the recovery robust.udThe thesis presents various techniques to enhance the healing capacity of fibre-reinforced composites to realise strong recovery regardless of ambient temperatures or material types. It presents the effects of various popular configurations of vascular networks on the flexural properties and healing performances of fibre-reinforced composites. The thesis demonstrates a design enabling recovery at ultra-low temperatures by using hollow vascular networks and porous heating elements. It also presents a new healing mechanism to repair the broken structural carbon fibres by incorporating conventional healing agents with short carbon fibres which could be aligned in an in situ electric field. The mechanism was also adopted to enable the restoration of the conductivity of a fibre-reinforced composite incorporating a porous conductive element, a carbon nanotube sheet, which could be used as a heating actuator or a sensing component. Thus, the development reported in this thesis have contributed to promoting the sustainability of the recovery of self-healing composites.
机译:自愈复合材料是能够在受损时自动恢复的复合材料。它们受到自然可以自愈的生物系统(如人体皮肤)的启发。在过去的二十年中,已经提出了两个主要的自我修复概念-分别基于使用含有治疗剂的胶囊和血管网络的使用,并且材料性能的恢复率已从60%提高到接近100%。但是,这种改进仍不足以使自修复复合材料在实践中得到应用,因​​为其愈合能力会随许多外部因素(例如环境温度和损坏条件)而变化。自愈复合材料实际应用的关键是提高愈合能力的可持续性,以使恢复牢固。 ud本文提出了各种技术来增强纤维增强复合材料的愈合能力,无论环境温度或温度如何,均能实现强大的恢复能力。材料类型。它提出了各种常见的血管网络配置对纤维增强复合材料的弯曲性能和愈合性能的影响。论文论证了通过使用中空血管网络和多孔加热元件能够在超低温下恢复的设计。它还提出了一种新的修复机制,通过将常规的修复剂与短碳纤维结合使用来修复断裂的结构碳纤维,该短碳纤维可以在原位电场中排列。还采用了该机制以使包含多孔导电元件,碳纳米管片的纤维增强复合材料的电导率得以恢复,该复合材料可以用作加热执行器或传感组件。因此,本论文报道的发展为促进自愈复合材料恢复的可持续性做出了贡献。

著录项

  • 作者

    Wang Yongjing;

  • 作者单位
  • 年度 2017
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
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