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Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands

The growing demand for plant fiber-reinforced composites offers new opportunities to compete against glass fiber (GF)-reinforced composites, but their performance must be assessed, revised, and improved as much as possible. This work reports on the production and the flexural strength of composites...

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Autores principales: Vallejos, María E., Aguado, Roberto J., Morcillo-Martín, Ramón, Méndez, José A., Vilaseca, Fabiola, Tarrés, Quim, Mutjé, Pere
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867195/
https://www.ncbi.nlm.nih.gov/pubmed/36679252
http://dx.doi.org/10.3390/polym15020371
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author Vallejos, María E.
Aguado, Roberto J.
Morcillo-Martín, Ramón
Méndez, José A.
Vilaseca, Fabiola
Tarrés, Quim
Mutjé, Pere
author_facet Vallejos, María E.
Aguado, Roberto J.
Morcillo-Martín, Ramón
Méndez, José A.
Vilaseca, Fabiola
Tarrés, Quim
Mutjé, Pere
author_sort Vallejos, María E.
collection PubMed
description The growing demand for plant fiber-reinforced composites offers new opportunities to compete against glass fiber (GF)-reinforced composites, but their performance must be assessed, revised, and improved as much as possible. This work reports on the production and the flexural strength of composites from polypropylene (PP) and hemp strands (20–50 wt.%), using maleic anhydride-grafted PP (MAPP) as a compatibilizer. A computational assessment of the reaction between cellulose and MAPP suggested the formation of only one ester bond per maleic anhydride unit as the most stable product. We determined the most favorable MAPP dosage to be 0.06 g per gram of fiber. The maximum enhancement in flexural strength that was attained with this proportion of MAPP was 148%, corresponding to the maximum fiber load. The modified rule of mixtures and the assumption of similar coupling factors for tensile and flexural strength allowed us to estimate the intrinsic flexural strength of hemp strands as 953 ± 116 MPa. While falling short of the values for sized GF (2415 MPa), the reinforcement efficiency parameter of the natural fibers (0.209) was found to be higher than that of GF (0.045).
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spelling pubmed-98671952023-01-22 Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands Vallejos, María E. Aguado, Roberto J. Morcillo-Martín, Ramón Méndez, José A. Vilaseca, Fabiola Tarrés, Quim Mutjé, Pere Polymers (Basel) Article The growing demand for plant fiber-reinforced composites offers new opportunities to compete against glass fiber (GF)-reinforced composites, but their performance must be assessed, revised, and improved as much as possible. This work reports on the production and the flexural strength of composites from polypropylene (PP) and hemp strands (20–50 wt.%), using maleic anhydride-grafted PP (MAPP) as a compatibilizer. A computational assessment of the reaction between cellulose and MAPP suggested the formation of only one ester bond per maleic anhydride unit as the most stable product. We determined the most favorable MAPP dosage to be 0.06 g per gram of fiber. The maximum enhancement in flexural strength that was attained with this proportion of MAPP was 148%, corresponding to the maximum fiber load. The modified rule of mixtures and the assumption of similar coupling factors for tensile and flexural strength allowed us to estimate the intrinsic flexural strength of hemp strands as 953 ± 116 MPa. While falling short of the values for sized GF (2415 MPa), the reinforcement efficiency parameter of the natural fibers (0.209) was found to be higher than that of GF (0.045). MDPI 2023-01-10 /pmc/articles/PMC9867195/ /pubmed/36679252 http://dx.doi.org/10.3390/polym15020371 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Vallejos, María E.
Aguado, Roberto J.
Morcillo-Martín, Ramón
Méndez, José A.
Vilaseca, Fabiola
Tarrés, Quim
Mutjé, Pere
Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title_full Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title_fullStr Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title_full_unstemmed Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title_short Behavior of the Flexural Strength of Hemp/Polypropylene Composites: Evaluation of the Intrinsic Flexural Strength of Untreated Hemp Strands
title_sort behavior of the flexural strength of hemp/polypropylene composites: evaluation of the intrinsic flexural strength of untreated hemp strands
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867195/
https://www.ncbi.nlm.nih.gov/pubmed/36679252
http://dx.doi.org/10.3390/polym15020371
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