Publication:
Mechanical and physical properties of recycled-carbon-fiber-reinforced polylactide fused deposition modelling filament

cris.author.scopus-author-id 57390609100
cris.author.scopus-author-id 25628938500
cris.author.scopus-author-id 57201674852
cris.author.scopus-author-id 57202737293
cris.author.scopus-author-id 55898764800
cris.virtual.department Universiti Malaysia Perlis
cris.virtual.department Universiti Malaysia Perlis
cris.virtual.department Universiti Malaysia Perlis
cris.virtual.department Universiti Malaysia Perlis
cris.virtualsource.department 8bbe501e-eae5-41c0-b743-a19744d19c5b
cris.virtualsource.department 3237fc54-0c98-400a-9a04-c74fac9a400e
cris.virtualsource.department 09244f75-facc-4efc-a799-6f016384c56a
cris.virtualsource.department 58a3d7a7-18fa-4ea9-99eb-b28b160b08be
dc.contributor.author Omar N.W.Y.
dc.contributor.author Norshah Aizat Shuaib
dc.contributor.author Mohd Haidiezul Jamal Ab Hadi
dc.contributor.author Azwan Iskandar Azmi
dc.contributor.author Muhamad Nur Misbah
dc.date.accessioned 2024-09-30T05:05:31Z
dc.date.available 2024-09-30T05:05:31Z
dc.date.issued 2022-01-01
dc.description.abstract Carbon-fiber-reinforced plastic materials have attracted several applications, including the fused deposition modelling (FDM) process. As a cheaper and more environmentally friendly alternative to its virgin counterpart, the use of milled recycled carbon fiber (rCF) has received much attention. The quality of the feed filament is important to avoid filament breakage and clogged nozzles during the FDM printing process. However, information about the effect of material parameters on the mechanical and physical properties of short rCF-reinforced FDM filament is still limited. This paper presents the effect of fiber loading (10 wt%, 20 wt%, and 30 wt%) and fiber size (63 µm, 75 µm, and 150 µm) on the filament’s tensile properties, surface roughness, microstructure, porosity level, density, and water absorptivity. The results show that the addition of 63 µm fibers at 10 wt% loading can enhance filament tensile properties with minimal surface roughness and porosity level. The addition of rCF increased the density and reduced the material’s water intake. This study also indicates a clear trade-off between the optimized properties. Hence, it is recommended that the optimization of rCF should consider the final application of the product. The findings of this study provide a new manufacturing strategy in utilizing milled rCF in potential 3D printing-based applications.
dc.identifier.doi 10.3390/ma15010190
dc.identifier.scopus 2-s2.0-85121962555
dc.identifier.uri https://hdl.handle.net/20.500.14170/6564
dc.language.iso en
dc.publisher MDPI
dc.relation.funding Ministry of Higher Education, Malaysia
dc.relation.grantno FRGS/1/2018/TK03/UNIMAP/02/15
dc.relation.ispartof Materials
dc.relation.ispartofseries Materials
dc.rights open access
dc.subject 3D printing
dc.subject Composite recycling
dc.subject Fused deposition modelling
dc.subject Recycled carbon fiber
dc.subject Reinforced filament composite
dc.title Mechanical and physical properties of recycled-carbon-fiber-reinforced polylactide fused deposition modelling filament
dc.type Journal
dspace.entity.type Publication
oaire.citation.issue 1
oaire.citation.volume 15
oairecerif.affiliation.orgunit Universiti Malaysia Perlis
oairecerif.affiliation.orgunit Universiti Malaysia Perlis
oairecerif.affiliation.orgunit Universiti Malaysia Perlis
oairecerif.affiliation.orgunit Universiti Malaysia Perlis
oairecerif.affiliation.orgunit Universiti Malaysia Perlis
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oairecerif.author.affiliation Universiti Malaysia Perlis
oairecerif.author.affiliation Universiti Malaysia Perlis
oairecerif.author.affiliation Universiti Malaysia Perlis
oairecerif.author.affiliation Universiti Malaysia Perlis
oairecerif.citation.number 190
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person.identifier.scopus-author-id 57390609100
person.identifier.scopus-author-id 25628938500
person.identifier.scopus-author-id 57201674852
person.identifier.scopus-author-id 57202737293
person.identifier.scopus-author-id 55898764800
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