Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites

Limitation in practical applications of biopolymer-fiber composite is mainly at higher temperatures. Thus, this study highlights the effects of fiber orientation on the durability of polylactic acid (PLA) reinforced with unidirectional (UD) continuous kenaf fibers at elevated temperatures. PLA and l...

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Published in:Reviews on Advanced Materials Science
Main Author: Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
Format: Article
Language:English
Published: Walter de Gruyter GmbH 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85146714673&doi=10.1515%2frams-2022-0275&partnerID=40&md5=fde540015f579a0a4eebfe7719466612
id 2-s2.0-85146714673
spelling 2-s2.0-85146714673
Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
2023
Reviews on Advanced Materials Science
62
1
10.1515/rams-2022-0275
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85146714673&doi=10.1515%2frams-2022-0275&partnerID=40&md5=fde540015f579a0a4eebfe7719466612
Limitation in practical applications of biopolymer-fiber composite is mainly at higher temperatures. Thus, this study highlights the effects of fiber orientation on the durability of polylactic acid (PLA) reinforced with unidirectional (UD) continuous kenaf fibers at elevated temperatures. PLA and long kenaf fiber were fabricated using the hot-pressing method and stacked at fiber orientations of 0°, 45°, or 90°, relative to the tensile force. Dynamic mechanical analysis of the composites shows excellent anti-shock and temperature-resistant properties of the composite. UD PLA-kenaf composites with a 0° fiber orientation showed an ultimate tensile of ∼190 MPa and a flexural strength of ∼235 MPa, and the strength of the composite was able to retain up to 120°C temperature. The debonding behavior of the fiber from the matrix (fiber pull-out) supported by microscopy proved that interfacial failure occurs from the local strains, which initiate cracking. Interfacial failure and stress transfer have caused a remarkable reduction in composite strength when fibers were oriented at 90°. Hence, this current improvement in the performance of the UD PLA-kenaf fiber composite may potentially replace conventional synthetic fibers, especially for structural automotive applications. © 2023 the author(s), published by De Gruyter.
Walter de Gruyter GmbH
16065131
English
Article
All Open Access; Gold Open Access
author Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
spellingShingle Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
author_facet Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
author_sort Tharazi I.; Abdul Azam F.A.; Muhamad N.; Hui D.; Sulong A.B.; Gaff M.
title Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
title_short Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
title_full Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
title_fullStr Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
title_full_unstemmed Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
title_sort Effect of fiber orientation and elevated temperature on the mechanical properties of unidirectional continuous kenaf reinforced PLA composites
publishDate 2023
container_title Reviews on Advanced Materials Science
container_volume 62
container_issue 1
doi_str_mv 10.1515/rams-2022-0275
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85146714673&doi=10.1515%2frams-2022-0275&partnerID=40&md5=fde540015f579a0a4eebfe7719466612
description Limitation in practical applications of biopolymer-fiber composite is mainly at higher temperatures. Thus, this study highlights the effects of fiber orientation on the durability of polylactic acid (PLA) reinforced with unidirectional (UD) continuous kenaf fibers at elevated temperatures. PLA and long kenaf fiber were fabricated using the hot-pressing method and stacked at fiber orientations of 0°, 45°, or 90°, relative to the tensile force. Dynamic mechanical analysis of the composites shows excellent anti-shock and temperature-resistant properties of the composite. UD PLA-kenaf composites with a 0° fiber orientation showed an ultimate tensile of ∼190 MPa and a flexural strength of ∼235 MPa, and the strength of the composite was able to retain up to 120°C temperature. The debonding behavior of the fiber from the matrix (fiber pull-out) supported by microscopy proved that interfacial failure occurs from the local strains, which initiate cracking. Interfacial failure and stress transfer have caused a remarkable reduction in composite strength when fibers were oriented at 90°. Hence, this current improvement in the performance of the UD PLA-kenaf fiber composite may potentially replace conventional synthetic fibers, especially for structural automotive applications. © 2023 the author(s), published by De Gruyter.
publisher Walter de Gruyter GmbH
issn 16065131
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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