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End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective

Life cycle assessment is a methodology to assess environmental impacts associated with a product or system/process by accounting resource requirements and emissions over its life cycle. The life cycle consists of four stages: material production, manufacturing, use, and end-of-life. This study highl...

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Autores principales: Petrakli, Fotini, Gkika, Anastasia, Bonou, Alexandra, Karayannis, Panagiotis, Koumoulos, Elias P., Semitekolos, Dionisis, Trompeta, Aikaterini-Flora, Rocha, Nuno, Santos, Raquel M., Simmonds, Guy, Monaghan, Glen, Valota, Giorgio, Gong, Guan, Charitidis, Costas A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7570043/
https://www.ncbi.nlm.nih.gov/pubmed/32961922
http://dx.doi.org/10.3390/polym12092129
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author Petrakli, Fotini
Gkika, Anastasia
Bonou, Alexandra
Karayannis, Panagiotis
Koumoulos, Elias P.
Semitekolos, Dionisis
Trompeta, Aikaterini-Flora
Rocha, Nuno
Santos, Raquel M.
Simmonds, Guy
Monaghan, Glen
Valota, Giorgio
Gong, Guan
Charitidis, Costas A.
author_facet Petrakli, Fotini
Gkika, Anastasia
Bonou, Alexandra
Karayannis, Panagiotis
Koumoulos, Elias P.
Semitekolos, Dionisis
Trompeta, Aikaterini-Flora
Rocha, Nuno
Santos, Raquel M.
Simmonds, Guy
Monaghan, Glen
Valota, Giorgio
Gong, Guan
Charitidis, Costas A.
author_sort Petrakli, Fotini
collection PubMed
description Life cycle assessment is a methodology to assess environmental impacts associated with a product or system/process by accounting resource requirements and emissions over its life cycle. The life cycle consists of four stages: material production, manufacturing, use, and end-of-life. This study highlights the need to conduct life cycle assessment (LCA) early in the new product development process, as a means to assess and evaluate the environmental impacts of (nano)enhanced carbon fibre-reinforced polymer (CFRP) prototypes over their entire life cycle. These prototypes, namely SleekFast sailing boat and handbrake lever, were manufactured by functionalized carbon fibre fabric and modified epoxy resin with multi-walled carbon nanotubes (MWCNTs). The environmental impacts of both have been assessed via LCA with a functional unit of ‘1 product piece’. Climate change has been selected as the key impact indicator for hotspot identification (kg CO(2) eq). Significant focus has been given to the end-of-life phase by assessing different recycling scenarios. In addition, the respective life cycle inventories (LCIs) are provided, enabling the identification of resource hot spots and quantifying the environmental benefits of end-of-life options.
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spelling pubmed-75700432020-10-29 End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective Petrakli, Fotini Gkika, Anastasia Bonou, Alexandra Karayannis, Panagiotis Koumoulos, Elias P. Semitekolos, Dionisis Trompeta, Aikaterini-Flora Rocha, Nuno Santos, Raquel M. Simmonds, Guy Monaghan, Glen Valota, Giorgio Gong, Guan Charitidis, Costas A. Polymers (Basel) Article Life cycle assessment is a methodology to assess environmental impacts associated with a product or system/process by accounting resource requirements and emissions over its life cycle. The life cycle consists of four stages: material production, manufacturing, use, and end-of-life. This study highlights the need to conduct life cycle assessment (LCA) early in the new product development process, as a means to assess and evaluate the environmental impacts of (nano)enhanced carbon fibre-reinforced polymer (CFRP) prototypes over their entire life cycle. These prototypes, namely SleekFast sailing boat and handbrake lever, were manufactured by functionalized carbon fibre fabric and modified epoxy resin with multi-walled carbon nanotubes (MWCNTs). The environmental impacts of both have been assessed via LCA with a functional unit of ‘1 product piece’. Climate change has been selected as the key impact indicator for hotspot identification (kg CO(2) eq). Significant focus has been given to the end-of-life phase by assessing different recycling scenarios. In addition, the respective life cycle inventories (LCIs) are provided, enabling the identification of resource hot spots and quantifying the environmental benefits of end-of-life options. MDPI 2020-09-18 /pmc/articles/PMC7570043/ /pubmed/32961922 http://dx.doi.org/10.3390/polym12092129 Text en © 2020 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
Petrakli, Fotini
Gkika, Anastasia
Bonou, Alexandra
Karayannis, Panagiotis
Koumoulos, Elias P.
Semitekolos, Dionisis
Trompeta, Aikaterini-Flora
Rocha, Nuno
Santos, Raquel M.
Simmonds, Guy
Monaghan, Glen
Valota, Giorgio
Gong, Guan
Charitidis, Costas A.
End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title_full End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title_fullStr End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title_full_unstemmed End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title_short End-of-Life Recycling Options of (Nano)Enhanced CFRP Composite Prototypes Waste—A Life Cycle Perspective
title_sort end-of-life recycling options of (nano)enhanced cfrp composite prototypes waste—a life cycle perspective
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7570043/
https://www.ncbi.nlm.nih.gov/pubmed/32961922
http://dx.doi.org/10.3390/polym12092129
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