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首页> 外文期刊>Journal of Materials Science >Self-healing of delamination fatigue cracks in carbon fibre-epoxy laminate using mendable thermoplastic
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Self-healing of delamination fatigue cracks in carbon fibre-epoxy laminate using mendable thermoplastic

机译:碳纤维环氧树脂层压板中可修补热塑性材料的分层疲劳裂纹的自修复

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摘要

This article examines the self-healing repair of delamination damage in mendable carbon fibre-epoxy laminates under static or fatigue interlaminar loading. The healing of delamination cracks in laminates containing particles or fibres of the mendable thermoplastic poly[ethylene-co-(methacrylic acid)] (EMAA) was investigated. The results showed that the formation of largescale bridging zone of EMAA ligaments along the crack upon healing yielded a large increase (300%) in the static mode I interlaminar fracture toughness, exceeding the requirement of full restoration. The mendable laminates retained high healing efficiency with multiple repair cycles because of the capability of EMAA to reform the bridging zone under static delamination crack growth conditions. Under fatigue loading, healing by the EMAA was found to restore the mode I fatigue crack growth resistance, with the rates of growth being slightly less than that pertinent to the unmodified laminate. The EMAA bridging zone, which generated high toughness under static loading conditions, does not develop under fatigue loading because of rapid fatigue failure of the crack bridging ligaments. Similar to the multiple healing capability of EMAA under static loading, multiple healing of delamination fatigue cracks is confirmed, with the fatigue crack growth rates remaining approximately unchanged. This study shows that EMAA was capable of full recovery of fatigue crack growth resistance and superior healing efficiency for static loading.
机译:本文研究了在静态或疲劳层间载荷下可修补的碳纤维环氧树脂层压板中脱层损伤的自愈修复。研究了包含可修补的热塑性聚乙烯[乙烯-共-(甲基丙烯酸)](EMAA)的颗粒或纤维的层压板的分层裂纹的修复。结果表明,沿愈合过程沿裂纹形成的EMAA韧带的大范围桥接区在静态模式I层间断裂韧度方面产生了大幅增加(300%),超过了完全恢复的要求。由于EMAA在静态分层裂纹扩展条件下能够重塑桥接区,因此可修补的层压板在多个修复周期中仍保持了较高的修复效率。在疲劳载荷下,发现通过EMAA的修复可恢复I型疲劳裂纹扩展的抵抗力,其增长速率略低于未改性层压板的增长速率。在静态载荷条件下产生高韧性的EMAA桥接区在疲劳载荷下不会出现,因为裂纹桥接韧带的快速疲劳破坏。与EMAA在静态载荷下的多重修复能力相似,可以确认分层疲劳裂纹的多重修复,而疲劳裂纹的增长率几乎保持不变。这项研究表明,EMAA能够完全恢复抗疲劳裂纹增长的能力,并具有出色的静态载荷修复效率。

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