Knowledge Agora



Similar Articles

Title Towards an Alloy Recycling of Nd-Fe-B Permanent Magnets in a Circular Economy
ID_Doc 5340
Authors Diehl, O; Schönfeldt, M; Brouwer, E; Dirks, A; Rachut, K; Gassmann, J; Güth, K; Buckow, A; Gauss, R; Stauber, R; Gutfleisch, O
Title Towards an Alloy Recycling of Nd-Fe-B Permanent Magnets in a Circular Economy
Year 2018
Published Journal Of Sustainable Metallurgy, 4, 2
Abstract Rare earth permanent magnets are an integral part of many electrical and electronic devices as well as numerous other applications, including emerging technologies like wind power, electric vehicles, fully automized industrial machines, and robots. Due to their outstanding properties, magnets based on Nd-Fe-B alloys are often not substitutable by employing less critical material systems. Today, WEEE (Waste Electrical and Electronic Equipment) take-back systems for a variety of products containing Nd-Fe-B magnets are well established. They form an ideal basis for a systematic provision of scrap magnets that can be recycled. Hydrometallurgical approaches that aim at completely dissolving the material to regain elements or oxides are energy and time consuming. Thus, they are costly and come with a large environmental footprint. Recycled rare earth elements and oxides would have to compete with virgin materials from China and can hardly be processed in Europe, due to the lack of respective industries. This paper presents material-to-material recycling approaches, which would maintain the magnet alloys and use them directly for a new magnet production loop. The recycled magnets compete well with those made from primary materials, that is, in terms of magnetic properties as well as in terms of production costs. They excel by far rare earth permanent magnets made from primary materials regarding the environmental footprint. Regarding the shift towards a Green Economy, humanity will consume less fuels in combustion processes but rather exploit functional materials in renewable energy and mobility technologies in the future. This shift fundamentally depends on a circular economy of noble as well as less-noble technology metals.
PDF

Similar Articles

ID Score Article
61858 Kaya, M An overview of NdFeB magnets recycling technologies(2024)
25333 Nlebedim, IC; King, AH Addressing Criticality in Rare Earth Elements via Permanent Magnets Recycling(2018)Jom, 70, 2
63974 Cherkezova-Zheleva, Z; Burada, M; Sobetkii, AE; Paneva, D; Fironda, SA; Piticescu, RR Green and Sustainable Rare Earth Element Recycling and Reuse from End-of-Life Permanent Magnets(2024)Metals, 14, 6
14985 Bolis, K; Goulart, GS; Krohling, AC; Mendonça, R; Fernandez-Outon, LE; Ardisson, JD Structural and Magnetic Characterization of Nd-Pr-Fe-B Sintered Magnet Machining Wastes(2023)Acs Omega, 8, 13
25911 Ihne, T; Hahn, R; Wieprecht, N; Franke, J; Kühl, A Recycling Concept for Electric Vehicle Drives in the Context of Rare Earth Recovery(2024)
61905 Burkhardt, C; van Nielen, S; Awais, M; Bartolozzi, F; Blomgren, J; Ortiz, P; Xicotencatl, MB; Degri, M; Nayebossadri, S; Walton, A An overview of Hydrogen assisted (Direct) recycling of Rare earth permanent magnets(2023)
21359 Poskovic, E; Franchini, F; Ceroni, M; Innocenti, C; Ferraris, L; Sangregorio, C; Caneschi, A; Grande, MA Study of an Impact Mill-Based Mechanical Method for NdFeB Magnet Recycling(2023)Metals, 13.0, 6
21590 Keszler, M; Grosswendt, F; Assmann, AC; Krengel, M; Maccari, F; Gutfleisch, O; Sebold, D; Guillon, O; Weber, S; Bram, M Direct Recycling of Hot-Deformed Nd-Fe-B Magnet Scrap by Field-Assisted Sintering Technology(2024)Advanced Energy And Sustainability Research, 5.0, 1
10213 Borra, VL; Jena, A; Sistla, NS; Venkatesan, P; Onal, MAR; Borra, CR Synergetic recycling of permanent magnet and Li-ion battery cathode material for metals recovery(2024)
14217 Magrini, C; Jagodzinska, K Can bioleaching of NIB magnets be an answer to the criticality of rare earths? An ex-ante Life Cycle Assessment and Material Flow Cost Accounting(2022)
Scroll