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Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites

The objective of this study is to characterize the micromechanical properties of poly-l-lactic acid (PLLA) composites reinforced by grade 420 stainless steel (SS) particles with a specific focus on the interphase properties. The specimens were manufactured using 3D printing techniques due to its man...

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Autores principales: Mozafari, Hozhabr, Dong, Pengfei, Hadidi, Haitham, Sealy, Michael P., Gu, Linxia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337234/
https://www.ncbi.nlm.nih.gov/pubmed/30577421
http://dx.doi.org/10.3390/ma12010001
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author Mozafari, Hozhabr
Dong, Pengfei
Hadidi, Haitham
Sealy, Michael P.
Gu, Linxia
author_facet Mozafari, Hozhabr
Dong, Pengfei
Hadidi, Haitham
Sealy, Michael P.
Gu, Linxia
author_sort Mozafari, Hozhabr
collection PubMed
description The objective of this study is to characterize the micromechanical properties of poly-l-lactic acid (PLLA) composites reinforced by grade 420 stainless steel (SS) particles with a specific focus on the interphase properties. The specimens were manufactured using 3D printing techniques due to its many benefits, including high accuracy, cost effectiveness and customized geometry. The adopted fused filament fabrication resulted in a thin interphase layer with an average thickness of 3 µm. The mechanical properties of each phase, as well as the interphase, were characterized by nanoindentation tests. The effect of matrix degradation, i.e., imperfect bonding, on the elastic modulus of the composite was further examined by a representative volume element (RVE) model. The results showed that the interphase layer provided a smooth transition of elastic modulus from steel particles to the polymeric matrix. A 10% volume fraction of steel particles could enhance the elastic modulus of PLLA polymer by 31%. In addition, steel particles took 37% to 59% of the applied load with respect to the particle volume fraction. We found that degradation of the interphase reduced the elastic modulus of the composite by 70% and 7% under tensile and compressive loads, respectively. The shear modulus of the composite with 10% particles decreased by 36%, i.e., lower than pure PLLA, when debonding occurred.
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spelling pubmed-63372342019-01-22 Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites Mozafari, Hozhabr Dong, Pengfei Hadidi, Haitham Sealy, Michael P. Gu, Linxia Materials (Basel) Article The objective of this study is to characterize the micromechanical properties of poly-l-lactic acid (PLLA) composites reinforced by grade 420 stainless steel (SS) particles with a specific focus on the interphase properties. The specimens were manufactured using 3D printing techniques due to its many benefits, including high accuracy, cost effectiveness and customized geometry. The adopted fused filament fabrication resulted in a thin interphase layer with an average thickness of 3 µm. The mechanical properties of each phase, as well as the interphase, were characterized by nanoindentation tests. The effect of matrix degradation, i.e., imperfect bonding, on the elastic modulus of the composite was further examined by a representative volume element (RVE) model. The results showed that the interphase layer provided a smooth transition of elastic modulus from steel particles to the polymeric matrix. A 10% volume fraction of steel particles could enhance the elastic modulus of PLLA polymer by 31%. In addition, steel particles took 37% to 59% of the applied load with respect to the particle volume fraction. We found that degradation of the interphase reduced the elastic modulus of the composite by 70% and 7% under tensile and compressive loads, respectively. The shear modulus of the composite with 10% particles decreased by 36%, i.e., lower than pure PLLA, when debonding occurred. MDPI 2018-12-20 /pmc/articles/PMC6337234/ /pubmed/30577421 http://dx.doi.org/10.3390/ma12010001 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mozafari, Hozhabr
Dong, Pengfei
Hadidi, Haitham
Sealy, Michael P.
Gu, Linxia
Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title_full Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title_fullStr Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title_full_unstemmed Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title_short Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites
title_sort mechanical characterizations of 3d-printed plla/steel particle composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337234/
https://www.ncbi.nlm.nih.gov/pubmed/30577421
http://dx.doi.org/10.3390/ma12010001
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