Self-repairing CFRPs targeted towards structural aerospace applications

材料科学 双环戊二烯 自愈 复合材料 航空航天 环氧树脂 自愈材料 聚合 聚合物 工程类 医学 替代医学 病理 航空航天工程
作者
Marialuigia Raimondo,F. De Nicola,R. Volponi,Wolfgang H. Binder,Philipp Michael,Salvatore Russo,Liberata Guadagno
出处
期刊:International Journal of Structural Integrity [Emerald Publishing Limited]
卷期号:7 (5): 656-670 被引量:37
标识
DOI:10.1108/ijsi-11-2015-0053
摘要

Purpose The purpose of this paper is to describe the first experiments to manufacture self-healing carbon fiber reinforced panels (CFRPs) for the realization of structural aeronautic components in order to address their vulnerability to impact damage in the real service conditions. Design/methodology/approach The developed self-healing system is based on ring-opening metathesis polymerizations reaction of microencapsulated 5-ethylidene-2-norbornene/dicyclopentadiene cyclic olefins using Hoveyda-Grubbs’ first generation catalyst as initiator. In this work, the self-healing resin is infused into a carbon fiber dry preform using an unconventional bulk film infusion technique that has allowed to minimize the filtration effects via a better compaction and reduced resin flow paths. Infrared spectroscopy provides a useful way to identify metathesis products and therefore catalyst activity in the self-healing panel after damage. The damage resistance of the manufactured CFRPs is evaluated through hail and drop tests. Findings The self-healing manufactured panels show, after damage, catalyst activity with metathesis product formation, as evidenced by an infrared peak at 966 cm −1 . The damage response of CFRPs, detected in accord to the requirements of hail impact for the design of a fuselage in composite material, is very good. The results are very encouraging and can constitute a solid basis for bringing this new technology to the self-healable fiber reinforced resins for aerospace applications. Originality/value In this paper, autonomically healing CFRPs with damage resistance and self-healing function are proposed. In the development of self-healing aeronautic materials it is critical that self-healing activity functions in adverse weather conditions and at low working temperatures which can reach values as low as −50°C.
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