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Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes

3D printing PLA wastes were recovered from a well-known reference grade and from different sources. The recovered wastes were subjected to an energic washing step and then reprocessed into films by melt-extrusion, followed by compression molding to simulate the industrial processing conditions. The...

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Autores principales: Beltrán, Freddys R., Arrieta, Marina P., Moreno, Eduardo, Gaspar, Gerald, Muneta, Luisa M., Carrasco-Gallego, Ruth, Yáñez, Susana, Hidalgo-Carvajal, David, de la Orden, María U., Martínez Urreaga, Joaquín
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8069463/
https://www.ncbi.nlm.nih.gov/pubmed/33921369
http://dx.doi.org/10.3390/polym13081247
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author Beltrán, Freddys R.
Arrieta, Marina P.
Moreno, Eduardo
Gaspar, Gerald
Muneta, Luisa M.
Carrasco-Gallego, Ruth
Yáñez, Susana
Hidalgo-Carvajal, David
de la Orden, María U.
Martínez Urreaga, Joaquín
author_facet Beltrán, Freddys R.
Arrieta, Marina P.
Moreno, Eduardo
Gaspar, Gerald
Muneta, Luisa M.
Carrasco-Gallego, Ruth
Yáñez, Susana
Hidalgo-Carvajal, David
de la Orden, María U.
Martínez Urreaga, Joaquín
author_sort Beltrán, Freddys R.
collection PubMed
description 3D printing PLA wastes were recovered from a well-known reference grade and from different sources. The recovered wastes were subjected to an energic washing step and then reprocessed into films by melt-extrusion, followed by compression molding to simulate the industrial processing conditions. The obtained materials were characterized and the optical, structural, thermal and crystallization behavior are reported. The mechanical recycling process leads to an increase of the crystallinity and a decrease of the intrinsic viscosity of the formulations, particularly in the sample based on blends of different 3D-PLA wastes. Moreover, the obtained films were disintegrated under composting conditions in less than one month and it was observed that recycled materials degrade somewhat faster than the starting 3D-PLA filament, as a consequence of the presence of shorter polymer chains. Finally, to increase the molecular weight of the recycled materials, the 3D-PLA wastes were submitted to a solid-state polymerization process at 110, 120, and 130 °C, observing that the recycled 3D-wastes materials based on a well-known reference grade experiences an improvement of the intrinsic viscosity, while that coming from different sources showed no significant changes. Thus, the results show that 3D printing PLA products provides an ideal environment for the implementation of distributed recycling program, in which wastes coming from well-known PLA grades can successfully be processed in films with good overall performance.
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spelling pubmed-80694632021-04-26 Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes Beltrán, Freddys R. Arrieta, Marina P. Moreno, Eduardo Gaspar, Gerald Muneta, Luisa M. Carrasco-Gallego, Ruth Yáñez, Susana Hidalgo-Carvajal, David de la Orden, María U. Martínez Urreaga, Joaquín Polymers (Basel) Article 3D printing PLA wastes were recovered from a well-known reference grade and from different sources. The recovered wastes were subjected to an energic washing step and then reprocessed into films by melt-extrusion, followed by compression molding to simulate the industrial processing conditions. The obtained materials were characterized and the optical, structural, thermal and crystallization behavior are reported. The mechanical recycling process leads to an increase of the crystallinity and a decrease of the intrinsic viscosity of the formulations, particularly in the sample based on blends of different 3D-PLA wastes. Moreover, the obtained films were disintegrated under composting conditions in less than one month and it was observed that recycled materials degrade somewhat faster than the starting 3D-PLA filament, as a consequence of the presence of shorter polymer chains. Finally, to increase the molecular weight of the recycled materials, the 3D-PLA wastes were submitted to a solid-state polymerization process at 110, 120, and 130 °C, observing that the recycled 3D-wastes materials based on a well-known reference grade experiences an improvement of the intrinsic viscosity, while that coming from different sources showed no significant changes. Thus, the results show that 3D printing PLA products provides an ideal environment for the implementation of distributed recycling program, in which wastes coming from well-known PLA grades can successfully be processed in films with good overall performance. MDPI 2021-04-12 /pmc/articles/PMC8069463/ /pubmed/33921369 http://dx.doi.org/10.3390/polym13081247 Text en © 2021 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
Beltrán, Freddys R.
Arrieta, Marina P.
Moreno, Eduardo
Gaspar, Gerald
Muneta, Luisa M.
Carrasco-Gallego, Ruth
Yáñez, Susana
Hidalgo-Carvajal, David
de la Orden, María U.
Martínez Urreaga, Joaquín
Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title_full Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title_fullStr Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title_full_unstemmed Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title_short Evaluation of the Technical Viability of Distributed Mechanical Recycling of PLA 3D Printing Wastes
title_sort evaluation of the technical viability of distributed mechanical recycling of pla 3d printing wastes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8069463/
https://www.ncbi.nlm.nih.gov/pubmed/33921369
http://dx.doi.org/10.3390/polym13081247
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