Knowledge Agora



Similar Articles

Title The role of laser additive manufacturing methods of metals in repair, refurbishment and remanufacturing - enabling circular economy
ID_Doc 2569
Authors Leino, M; Pekkarinen, J; Soukka, R
Title The role of laser additive manufacturing methods of metals in repair, refurbishment and remanufacturing - enabling circular economy
Year 2016
Published
Abstract Circular economy is an economy model where products, components, and materials are aimed to be kept at their highest utility and value at all times. Repair, refurbishment and remanufacturing processes are procedures aiming at returning the value of the product during its life cycle. Additive manufacturing (AM) is expected to be an enabling technology in circular economy based business models. One of AM process that enables repair, refurbishment and remanufacturing is Directed Energy Deposition. Respectively Powder Bed Fusion enables manufacturing of replacement components on demand. The aim of this study is to identify the current research findings and state of art of utilizing AM in repair, refurbishment and remanufacturing processes of metallic products. The focus is in identifying possibilities of AM in promotion of circular economy and expected environmental benefits based on the found literature. Results of the study indicate significant potential in utilizing AM in repair, refurbishment and remanufacturing activities. (C) 2016 The Authors. Published by Elsevier B.V.
PDF https://doi.org/10.1016/j.phpro.2016.08.077

Similar Articles

ID Score Article
16655 Rahito; Wahab, DA; Azman, AH Additive Manufacturing for Repair and Restoration in Remanufacturing: An Overview from Object Design and Systems Perspectives(2019)Processes, 7, 11
16735 Ganter, NV; Ehlers, T; Oel, M; Behrens, BA; Müller, P; Hübner, S; Althaus, P; Bode, B; Lachmayer, R Do Additive Manufacturing Processes Enable More Sustainable Products? Circulation of Metallic Components Through Repair and Refurbishment by the Example of a Deep-Drawing Tool(2023)
2499 Zhao, J; Yang, YR; Kobir, MH; Faludi, J; Zhao, F Driving additive manufacturing towards circular economy: State-of-the-art and future research directions(2024)
19177 Wurst, J; Ganter, NV; Ehlers, T; Schneider, JA; Lachmayer, R Assessment of the ecological impact of metal additive repair and refurbishment using powder bed fusion by laser beam based on a multiple case study(2023)
29855 Lahrour, Y; Brissaud, D A Technical Assessment of Product/Component Re-manufacturability for Additive Remanufacturing(2018)
1996 Colorado, HA; Velásquez, EIG; Monteiro, SN Sustainability of additive manufacturing: the circular economy of materials and environmental perspectives(2020)Journal Of Materials Research And Technology-Jmr&T, 9, 4
21179 Gouveia, JR; Pinto, SM; Campos, S; Matos, JR; Costa, C; Dutra, TA; Esteves, S; Oliveira, L Life Cycle Assessment of a Circularity Case Study Using Additive Manufacturing(2022)Sustainability, 14.0, 15
30012 Yakubov, V; Ostergaard, H; Bhagavath, S; Leung, CLA; Hughes, J; Yasa, E; Khezri, M; Löschke, SK; Li, Q; Paradowska, AM Recycled aluminium feedstock in metal additive manufacturing: A state of the art review(2024)Heliyon, 10.0, 5
2796 Tavares, TM; Ganga, GMD; Godinho, M; Rodrigues, VP The benefits and barriers of additive manufacturing for circular economy: A framework proposal(2023)
22562 Nascimento, DLD; Nepomuceno, RM; Caiado, RGG; Maqueira, JM; Moyano-Fuentes, J; Garza-Reyes, JA A sustainable circular 3D printing model for recycling metal scrap in the automotive industry(2022)Journal Of Manufacturing Technology Management, 33.0, 5
Scroll