Cargando…

Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material

Fused deposition modeling (FDM) uses lattice arrangements, known as infill, within the fabricated part. The mechanical properties of parts fabricated via FDM are dependent on these infill patterns, which make their study of great relevance. One of the advantages of FDM is the wide range of materials...

Descripción completa

Detalles Bibliográficos
Autores principales: Cuan-Urquizo, Enrique, Álvarez-Trejo, Alberto, Robles Gil, Andrés, Tejada-Ortigoza, Viridiana, Camposeco-Negrete, Carmita, Uribe-Lam, Esmeralda, Treviño-Quintanilla, Cecilia D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8780086/
https://www.ncbi.nlm.nih.gov/pubmed/35054743
http://dx.doi.org/10.3390/polym14020337
_version_ 1784637744538976256
author Cuan-Urquizo, Enrique
Álvarez-Trejo, Alberto
Robles Gil, Andrés
Tejada-Ortigoza, Viridiana
Camposeco-Negrete, Carmita
Uribe-Lam, Esmeralda
Treviño-Quintanilla, Cecilia D.
author_facet Cuan-Urquizo, Enrique
Álvarez-Trejo, Alberto
Robles Gil, Andrés
Tejada-Ortigoza, Viridiana
Camposeco-Negrete, Carmita
Uribe-Lam, Esmeralda
Treviño-Quintanilla, Cecilia D.
author_sort Cuan-Urquizo, Enrique
collection PubMed
description Fused deposition modeling (FDM) uses lattice arrangements, known as infill, within the fabricated part. The mechanical properties of parts fabricated via FDM are dependent on these infill patterns, which make their study of great relevance. One of the advantages of FDM is the wide range of materials that can be employed using this technology. Among these, polylactic acid (PLA)-wood has been recently gaining attention as it has become commercially available. In this work, the stiffness of two different lattice structures fabricated from PLA-wood material using FDM are studied: hexagonal and star. Rectangular samples with four different infill densities made of PLA-wood material were fabricated via FDM. Samples were subjected to 3-point bending to characterize the effective stiffness and their sensitivity to shear deformation. Lattice beams proved to be more sensitive to shear deformations, as including the contribution of shear in the apparent stiffness of these arrangements leads to more accurate results. This was evaluated by comparing the effective Young’s modulus characterized from 3-point bending using equations with and without shear inclusion. A longer separation between supports yielded closer results between both models (~41% for the longest separation tested). The effective stiffness as a function of the infill density of both topologies showed similar trends. However, the maximum difference obtained at low densities was the hexagonal topology that was ~60% stiffer, while the lowest difference was obtained at higher densities (star topology being stiffer by ~20%). Results for stiffness of PLA-wood samples were scattered. This was attributed to the defects at the lattice element level inherent to the material employed in this study, confirmed via micro-characterization.
format Online
Article
Text
id pubmed-8780086
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-87800862022-01-22 Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material Cuan-Urquizo, Enrique Álvarez-Trejo, Alberto Robles Gil, Andrés Tejada-Ortigoza, Viridiana Camposeco-Negrete, Carmita Uribe-Lam, Esmeralda Treviño-Quintanilla, Cecilia D. Polymers (Basel) Article Fused deposition modeling (FDM) uses lattice arrangements, known as infill, within the fabricated part. The mechanical properties of parts fabricated via FDM are dependent on these infill patterns, which make their study of great relevance. One of the advantages of FDM is the wide range of materials that can be employed using this technology. Among these, polylactic acid (PLA)-wood has been recently gaining attention as it has become commercially available. In this work, the stiffness of two different lattice structures fabricated from PLA-wood material using FDM are studied: hexagonal and star. Rectangular samples with four different infill densities made of PLA-wood material were fabricated via FDM. Samples were subjected to 3-point bending to characterize the effective stiffness and their sensitivity to shear deformation. Lattice beams proved to be more sensitive to shear deformations, as including the contribution of shear in the apparent stiffness of these arrangements leads to more accurate results. This was evaluated by comparing the effective Young’s modulus characterized from 3-point bending using equations with and without shear inclusion. A longer separation between supports yielded closer results between both models (~41% for the longest separation tested). The effective stiffness as a function of the infill density of both topologies showed similar trends. However, the maximum difference obtained at low densities was the hexagonal topology that was ~60% stiffer, while the lowest difference was obtained at higher densities (star topology being stiffer by ~20%). Results for stiffness of PLA-wood samples were scattered. This was attributed to the defects at the lattice element level inherent to the material employed in this study, confirmed via micro-characterization. MDPI 2022-01-15 /pmc/articles/PMC8780086/ /pubmed/35054743 http://dx.doi.org/10.3390/polym14020337 Text en © 2022 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
Cuan-Urquizo, Enrique
Álvarez-Trejo, Alberto
Robles Gil, Andrés
Tejada-Ortigoza, Viridiana
Camposeco-Negrete, Carmita
Uribe-Lam, Esmeralda
Treviño-Quintanilla, Cecilia D.
Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title_full Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title_fullStr Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title_full_unstemmed Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title_short Effective Stiffness of Fused Deposition Modeling Infill Lattice Patterns Made of PLA-Wood Material
title_sort effective stiffness of fused deposition modeling infill lattice patterns made of pla-wood material
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8780086/
https://www.ncbi.nlm.nih.gov/pubmed/35054743
http://dx.doi.org/10.3390/polym14020337
work_keys_str_mv AT cuanurquizoenrique effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT alvareztrejoalberto effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT roblesgilandres effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT tejadaortigozaviridiana effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT camposeconegretecarmita effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT uribelamesmeralda effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial
AT trevinoquintanillaceciliad effectivestiffnessoffuseddepositionmodelinginfilllatticepatternsmadeofplawoodmaterial