Mechanical Properties, Critical Length, and Interfacial Strength of Seven-Islands-Sedge Fibers ( Cyperus malaccensis ) for Possible Epoxy Matrix Reinforcement.
Lucas de Mendonça NeubaRaí Felipe Pereira JunioAndressa Teixeira SouzaMatheus Pereira RibeiroPedro Henrique Poubel Mendonça da SilveiraThuane Teixeira da SilvaArtur Camposo PereiraAndré Ben-Hur da Silva FigueiredoPublished in: Polymers (2022)
The growing concern about the limitation of non-renewable resources has brought a focus on the development of environmentally sustainable and biodegradable composite materials. In this context, a trend in the development of natural fibers used as a reinforcement in composites is ever-increasing. In this work, for the first-time, fibers extracted from the seven-islands-sedge plant ( Cyperus malaccensis ) have been characterized by X-ray diffraction (XRD) to calculate the crystallinity index and the microfibrillar angle (MFA). Also, an evaluation of the ultimate tensile strength by diameter intervals has been investigated and statistically analyzed by both the Weibull method and the analysis of variance (ANOVA). Moreover, the maximum deformation and tensile modulus have been found from the data acquired. Pullout tests have been conducted to investigate the critical length and interfacial strength when sedge fibers, are incorporated into epoxy resin matrix. Microstructure analysis by scanning electron microscopy (SEM) was performed to observe the mechanism responsible for causing rupture of the fiber as well as the effective fiber interfacial adhesion to the epoxy matrix.
Keyphrases
- electron microscopy
- ionic liquid
- high resolution
- molecular dynamics simulations
- electron transfer
- perovskite solar cells
- drug delivery
- big data
- magnetic resonance imaging
- staphylococcus aureus
- biofilm formation
- magnetic resonance
- multiple sclerosis
- data analysis
- electronic health record
- reduced graphene oxide
- pseudomonas aeruginosa
- cell migration
- optic nerve
- high speed
- aqueous solution