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Recent progress in interfacial toughening and damage self-healing of polymer composites based on electrospun and solution-blown nanofibers: An overview (Review)

机译:基于静电纺丝和溶液吹塑纳米纤维的聚合物复合材料的界面增韧和损伤自我修复的最新进展:概述(综述)

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摘要

In this article, we provide an overview of recent progress in toughening and damage self-healing of polymer-matrix composites (PMCs) reinforced with electrospun nanofibers at interfaces with an emphasis on the innovative processing techniques and toughening and damage self-healing characterization. Because of their in-plane fiber architecture and layered structure, high-performance laminated PMCs typically carry low interfacial strengths and interlaminar fracture toughnesses in contrast to their very high in-plane mechanical properties. Delamination is commonly observed in these composite structures. Continuous polymer and polymer-derived carbon nanofibers produced by electrospinning, solution blowing, and other recently developed techniques can be incorporated into the ultrathin resin-rich interlayers (with thicknesses of a few to dozens of micrometers) of these high-performance PMCs to form nanofiber-reinforced interlayers with enhanced interlaminar fracture toughnesses. When incorporated with core-shell healing-agent-loaded nanofibers, these nanofiber-richened interlayers can yield unique interfacial damage self-healing. Recent experimental investigations in these topics are reviewed and compared, and recently developed techniques for the scalable, continuous fabrication of advanced nanofibers for interfacial toughening and damage self-healing of PMCs are given. Developments in the near future in this field are predicted.
机译:在本文中,我们概述了用电纺纳米纤维在界面处增强的聚合物基复合材料(PMC)的增韧和破坏自修复的最新进展,重点是创新的加工技术以及增韧和破坏自修复的特性。由于它们的面内纤维结构和层状结构,与它们非常高的面内机械性能相比,高性能层压式PMC通常具有较低的界面强度和层间断裂韧性。在这些复合结构中通常观察到分层。通过静电纺丝,溶液吹塑和其他最新开发的技术生产的连续聚合物和聚合物衍生的碳纳米纤维可以掺入这些高性能PMC的超薄树脂富中间层(厚度为几十到几十微米)以形成纳米纤维。增强的中间层,具有增强的层间断裂韧性。当与装载有核-壳愈合剂的纳米纤维结合使用时,这些富含纳米纤维的中间层可以产生独特的界面损伤自我修复。这些主题的最新实验研究进行了审查和比较,并给出了可扩展,连续制造先进纳米纤维以实现PMC的界面增韧和损伤自我修复的技术。预计该领域在不久的将来会有所发展。

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