Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen’s Fabrication
- (i)
- in the first method (referred to as SB, hereafter), the hot-cure resin was directly applied onto the substrates (skins and core), and then the resulting sandwich was vacuum bagged and cured for two hours at 60 °C and eight hours at 120 °C.
- (ii)
- in the second method (referred to as SBC, hereafter), the magnesium bonding surfaces were pre-coated with a thin layer of cold-cure resin, cured for 24 h under vacuum. In a second step, another layer of cold-cure resin was applied to both adherends and they were sealed under vacuum and let cure at room temperature for 24 h. This second method was developed by the authors and the resulting gain in the interface bond strength under different loading conditions, including axial impact loading, was reported in [67].
2.3. Testing Apparatus, Procedures and Data Acquisition
2.3.1. Case Studies I
2.3.2. Case Study II
- (i)
- included only in the resin used to coat the magnesium skins was reinforced with the GNPs (these specimens are identified as “C” specimens);
- (ii)
- included in the resin used to coat the skins and in the resin used for bonding the skins to FRP were both reinforced with the GNPs (specimens of this category are identified by “CA”).
2.3.3. Impact Testing Apparatus
2.3.4. Case Study III
2.4. Data Processing
3. Results and Discussion
3.1. Case Study I
3.2. Case Study II
3.3. Case Study III
4. Summary and Conclusions
- The presence of initial delamination greatly affected the load-bearing capacity of the specimens, but its length had a negligible effect.
- For the intact specimens (i.e., with no initial delamination), the incorporation of GNPs showed its maximum enhancing effect when the specimens were subjected to the highest impact energy (7 J). The observed enhancements were 12.5%, 10.9%, and 10.7% corresponding to GNP contents of 0.5 wt%, 1 wt%, and 2 wt%, respectively. Ironically, a degradation of the strength was noted in specimens that were subjected to 4.5 J impact energy.
- Among the specimens that hosted a delamination, the specimens that were reinforced with 0.5 wt% of GNP content exhibited the most gain in strength under three out of the four impact energies tried. The exceptions were the specimens that were subjected to 4.5 J impact energy, for which 2 wt% GNP content produced the best results.
- Microscopic examination revealed the existence of some voids at the bonding interface of the 3D-FMLs.
- The delamination propagated in an unstable manner.
- A higher GNP content led to a higher delamination length, with a 100% increase in delamination growth observed in the CA specimens.
- The use of a fiberglass veil interleaved between the magnesium and the FRP core mitigated the delamination extension by an average of 46% and increased the load-bearing capacity by 6%.
- The GNPs inclusion produced either no effect on the load capacity of most specimens or led to even negative effect in some (a reduction of 8% was observed in the CA specimens).
- The void content in the bonding region was drastically reduced when the SBC method was employed and voids were completely nullified when the veil or GNPs were incorporated within the interface; nonetheless, the delamination growth persisted owing to the lack of optimal chemical compatibility between magnesium and epoxy resin.
- The specimens’ apparent stiffness changed marginally when exposed to the sub-freezing temperature.
- The buckling load capacity was positively affected by the sub-freezing temperature, especially when the veil was used.
- The sub-freezing environment caused an increase in delamination growth, especially in the GNP-reinforced specimens.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations and Acronyms
3D-FGF | 3D fiberglass fabric |
3D-FML | 3D fiber-metal laminate |
C | nanoparticles included in the coating |
CA | nanoparticles included in the coating and the adhesive |
CNT | carbon nano-tubes |
FML | fiber-metal laminate |
FRP | fiber-reinforced polymer |
GNP | graphene nanoplatelets |
LN2 | liquid nitrogen |
N | specimens with neat resin |
ND | no initial delamination |
NP | nanoparticles |
RMS | root-mean square |
RT | room temperature |
V | fiberglass veil |
wt% | weight percentage |
x% | percentage of initial delamination |
Note | “s” following above acronyms make them plural |
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De Cicco, D.; Taheri, F. Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates. Nanomaterials 2019, 9, 1482. https://doi.org/10.3390/nano9101482
De Cicco D, Taheri F. Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates. Nanomaterials. 2019; 9(10):1482. https://doi.org/10.3390/nano9101482
Chicago/Turabian StyleDe Cicco, Davide, and Farid Taheri. 2019. "Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates" Nanomaterials 9, no. 10: 1482. https://doi.org/10.3390/nano9101482
APA StyleDe Cicco, D., & Taheri, F. (2019). Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates. Nanomaterials, 9(10), 1482. https://doi.org/10.3390/nano9101482