Toughening and Healing of CFRPs by Diels–Alder-Based Nano-Modified Resin through Melt Electro-Writing Process Technique
Author(s)
Kotrotsos, Athanasios; Michailidis, George; Geitona, Anna; Tourlomousis, Filippos; Kostopoulos, Vassilis
Downloadijms-23-03663-v2.pdf (4.393Mb)
Publisher with Creative Commons License
Publisher with Creative Commons License
Creative Commons Attribution
Terms of use
Metadata
Show full item recordAbstract
In the current study, a novel approach in terms of the incorporation of self-healing agent (SHA) into unidirectional (UD) carbon fiber reinforced plastics (CFRPs) has been demonstrated. More precisely, Diels–Alder (DA) mechanism-based resin (Bis-maleimide type) containing or not four layered graphene nanoplatelets (GNPs) at the amount of 1 wt% was integrated locally in the mid-thickness area of CFRPs by melt electro-writing process (MEP). Based on that, CFRPs containing or not SHA were fabricated and further tested under Mode I interlaminar fracture toughness experiments. According to experimental results, modified CFRPs exhibited a considerable enhancement in the interlaminar fracture toughness properties (peak load (P<sub>max</sub>) and fracture toughness energy I (G<sub>IC</sub>) values). After Mode I interlaminar fracture toughness testing, the damaged samples followed the healing process and then were tested again under identical experimental conditions. The repeating of the tests revealed moderate healing efficiency (H.E.) since part of the interlaminar fracture toughness properties were restored. Furthermore, three-point bending (3PB) experiments were conducted, with the aim of assessing the effect of the incorporated SHA on the in-plane mechanical properties of the final CFRPs. Finally, optical microscopy (OM) examinations were performed to investigate the activated/involved damage mechanisms.
Date issued
2022-03Department
Program in Media Arts and Sciences (Massachusetts Institute of Technology)Journal
International Journal of Molecular Sciences
Publisher
Multidisciplinary Digital Publishing Institute
Citation
International Journal of Molecular Sciences 23 (7): 3663 (2022)
Version: Final published version
ISSN
1422-0067