Combined Effect of Fiber Hybridization and Matrix Modification on Mechanical Properties of Polymer Composites
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Date
2023
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Journal Title
Journal ISSN
Volume Title
Publisher
Sage Publications Ltd
Open Access Color
Green Open Access
No
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Publicly Funded
No
Abstract
Glass/carbon fiber reinforced hybrid composites are great candidates for wind turbine blade manufacturers to make larger blades. Variation of stacking sequences ensures design freedom to the composite engineers to optimize the composite structure's mechanical performance. On the other hand, matrix modification of polymer composites with nanoparticles is also of interest to introduce multifunctional properties. This research aims to scrutinize the influence of simultaneous fiber hybridization and matrix modification on polymer composites' tensile, flexural, and low-velocity impact properties. Hybrid glass/carbon epoxy composites and hybrid glass/carbon/multi-walled carbon nanotube (MWCNT) multiscale polymer composites of stacking sequences [GCGCGC](S), [CGCGCG](S), and [G(6)C(6)] were manufactured. Fiber hybridization dramatically improved tensile strength between 51% and 76% compared to glass fiber composite. Depending on the stacking sequence, the flexural strength of the hybrid composites was improved between 10% and 16% concerning carbon fiber composite. With the introduction of MWCNTs, a slight increase in the tensile strength for unsymmetrical hybrid composites by around 5% and decreases by 7% for symmetrical ones were observed. Similar behavior was seen for bending characteristics. Additionally, low-velocity impact tests showed that it is achievable to bring greater impact peak forces up to 70% for hybrid composites than carbon fiber epoxy composites. MWCNTs modification of the matrix restrained the impact damage propagation, as proved by C-scan analysis.
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ORCID
Keywords
Glass fiber reinforced polymer, carbon fiber reinforced polymer, carbon nanotubes, hybrid effect, low-velocity impact, fiber hybridization, Wind Turbine-Blades, Hybrid Composites, Carbon Nanotubes, Performance, Failure, Glass, Strength, Strain, Gfrp, Carbon Fiber Reinforced Polymer, Low-Velocity Impact, Performance, Hybrid Effect, Glass Fiber Reinforced Polymer, Failure, Wind Turbine-Blades, Strain, Gfrp, Hybrid Composites, Carbon Nanotubes, Fiber Hybridization, Glass, Strength
Turkish CoHE Thesis Center URL
Fields of Science
Citation
WoS Q
Q3
Scopus Q
Q2

OpenCitations Citation Count
5
Source
Proceedings Of The Institution Of Mechanical Engineers Part L-Journal Of Materials-Design And Applications
Volume
237
Issue
Start Page
1935
End Page
1951
PlumX Metrics
Citations
CrossRef : 4
Scopus : 11
Captures
Mendeley Readers : 12
SCOPUS™ Citations
11
checked on Feb 03, 2026
Web of Science™ Citations
12
checked on Feb 03, 2026
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OpenAlex FWCI
2.21413345
Sustainable Development Goals
7
AFFORDABLE AND CLEAN ENERGY


