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Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing

Due to a lack of long-term experience with burgeoning material extrusion-based additive manufacturing technology, also known as fused filament fabrication (FFF), considerable amounts of expensive material will continue to be wasted until a defect-free 3D-printed component can be finalized. In order...

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Autores principales: Spoerk, Martin, Arbeiter, Florian, Raguž, Ivan, Holzer, Clemens, Gonzalez-Gutierrez, Joamin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6723500/
https://www.ncbi.nlm.nih.gov/pubmed/31394766
http://dx.doi.org/10.3390/polym11081318
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author Spoerk, Martin
Arbeiter, Florian
Raguž, Ivan
Holzer, Clemens
Gonzalez-Gutierrez, Joamin
author_facet Spoerk, Martin
Arbeiter, Florian
Raguž, Ivan
Holzer, Clemens
Gonzalez-Gutierrez, Joamin
author_sort Spoerk, Martin
collection PubMed
description Due to a lack of long-term experience with burgeoning material extrusion-based additive manufacturing technology, also known as fused filament fabrication (FFF), considerable amounts of expensive material will continue to be wasted until a defect-free 3D-printed component can be finalized. In order to lead this advanced manufacturing technique toward cleaner production and to save costs, this study addresses the ability to remanufacture a wide range of commercially available filaments. Most of them either tend to degrade by chain scission or crosslinking. Only polypropylene (PP)-based filaments appear to be particularly thermally stable and therefore suitable for multiple remanufacturing sequences. As the extrusion step exerts the largest influence on the material in terms of temperature and shear load, this study focused on the morphological, rheological, thermal, processing, tensile, and impact properties of a promising PP composite in the course of multiple consecutive extrusions as well as the impact of additional heat stabilizers. Even after 15 consecutive filament extrusions, the stabilized additively manufactured PP composite revealed an unaltered morphology and therefore the same tensile and impact strength as the initial material. As the viscosity of the material of the 15th extrusion was nearly identical to that of the 1st extrusion sequence, the processability both in terms of extrusion and FFF was outstanding, despite the tremendous amount of shear and thermal stress that was undergone. The present work provides key insights into one possible step toward more sustainable production through FFF.
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spelling pubmed-67235002019-09-10 Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing Spoerk, Martin Arbeiter, Florian Raguž, Ivan Holzer, Clemens Gonzalez-Gutierrez, Joamin Polymers (Basel) Article Due to a lack of long-term experience with burgeoning material extrusion-based additive manufacturing technology, also known as fused filament fabrication (FFF), considerable amounts of expensive material will continue to be wasted until a defect-free 3D-printed component can be finalized. In order to lead this advanced manufacturing technique toward cleaner production and to save costs, this study addresses the ability to remanufacture a wide range of commercially available filaments. Most of them either tend to degrade by chain scission or crosslinking. Only polypropylene (PP)-based filaments appear to be particularly thermally stable and therefore suitable for multiple remanufacturing sequences. As the extrusion step exerts the largest influence on the material in terms of temperature and shear load, this study focused on the morphological, rheological, thermal, processing, tensile, and impact properties of a promising PP composite in the course of multiple consecutive extrusions as well as the impact of additional heat stabilizers. Even after 15 consecutive filament extrusions, the stabilized additively manufactured PP composite revealed an unaltered morphology and therefore the same tensile and impact strength as the initial material. As the viscosity of the material of the 15th extrusion was nearly identical to that of the 1st extrusion sequence, the processability both in terms of extrusion and FFF was outstanding, despite the tremendous amount of shear and thermal stress that was undergone. The present work provides key insights into one possible step toward more sustainable production through FFF. MDPI 2019-08-07 /pmc/articles/PMC6723500/ /pubmed/31394766 http://dx.doi.org/10.3390/polym11081318 Text en © 2019 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
Spoerk, Martin
Arbeiter, Florian
Raguž, Ivan
Holzer, Clemens
Gonzalez-Gutierrez, Joamin
Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title_full Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title_fullStr Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title_full_unstemmed Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title_short Mechanical Recyclability of Polypropylene Composites Produced by Material Extrusion-Based Additive Manufacturing
title_sort mechanical recyclability of polypropylene composites produced by material extrusion-based additive manufacturing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6723500/
https://www.ncbi.nlm.nih.gov/pubmed/31394766
http://dx.doi.org/10.3390/polym11081318
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