Development and Mechanical Characterization of Short Curauá Fiber-Reinforced PLA Composites Made via Fused Deposition Modeling

The increase in the use of additive manufacturing (AM) has led to the need for filaments with specific and functional properties in face of requirements of structural parts production. The use of eco-friendly reinforcements (i.e., natural fibers) as an alternative to those more traditional synthetic...

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Veröffentlicht in:Polymers 2022-11, Vol.14 (22), p.5047
Hauptverfasser: Cavalcanti, Daniel K K, Neto, Jorge S S, Queiroz, Henrique F M de, Wu, Yiyun, Neto, Victor F S, Banea, Mariana D
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container_end_page
container_issue 22
container_start_page 5047
container_title Polymers
container_volume 14
creator Cavalcanti, Daniel K K
Neto, Jorge S S
Queiroz, Henrique F M de
Wu, Yiyun
Neto, Victor F S
Banea, Mariana D
description The increase in the use of additive manufacturing (AM) has led to the need for filaments with specific and functional properties in face of requirements of structural parts production. The use of eco-friendly reinforcements (i.e., natural fibers) as an alternative to those more traditional synthetic counterparts is still scarce and requires further investigation. The main objective of this work was to develop short curauá fiber-reinforced polylactic acid (PLA) composites made via fused deposition modeling. Three different fiber lengths (3, 6, and 8 mm), and three concentrations in terms of weight percentage (2, 3.5, and 5 wt.%) were used to fabricate reinforced PLA filaments. Tensile and flexural tests in accordance with their respective American Society for Testing and Materials (ASTM) standards were performed. A thermal analysis was also carried out in order to investigate the thermal stability of the new materials. It was found that the main driving factor for the variation in mechanical properties was the fiber weight fraction. The increase in fiber length did not provide any significant benefit on the mechanical properties of the curauá fiber-reinforced PLA composite printed parts. The composites produced with PLA filaments reinforced by 3 mm 2% curauá fiber presented the overall best mechanical and thermal properties of all studied groups. The curauá fiber-reinforced PLA composites made via fused deposition modeling may be a promising innovation to improve the performance of these materials, which might enable them to serve for new applications.
doi_str_mv 10.3390/polym14225047
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source MDPI - Multidisciplinary Digital Publishing Institute; Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals; PubMed Central; PubMed Central Open Access
subjects 3-D printers
3D printing
Analysis
Biodegradable materials
Biopolymers
Cellulose
Composite materials
Deposition
Fiber composites
Filaments
Fused deposition modeling
Laboratories
Lignin
Mechanical properties
Polylactic acid
Tensile strength
Thermal analysis
Thermal properties
Thermal stability
Thermodynamic properties
title Development and Mechanical Characterization of Short Curauá Fiber-Reinforced PLA Composites Made via Fused Deposition Modeling
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