H2020Докторантска мрежа2015–2019

DEMETER · Training Network for the Design and Recycling of Rare-Earth Permanent Magnet Motors and Generators in Hybrid and Full Electric Vehicles

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2015-09-01 → 2019-08-31
Финансиране от ЕС
3 802 512 €
Участници
11
Схема
MSCA-ITN-ETN

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Накратко на български

Рециклирането на редкоземни магнити от двигатели на електрически автомобили се изследва чрез подобряване на начина им на извличане и повторна употреба. Това е важно, защото тези материали са незаменими за много индустрии и техника, а доставките им са критични за Европа.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Training Network for the Design and Recycling of Rare-Earth Permanent Magnet Motors and Generators in Hybrid and Full Electric Vehicles

a. What is the problem/issue being addressed? As increasing numbers of vehicles on our roads become powered by electricity, the problem of how to effectively recycle the rare-earth magnets contained in the motors and generators of these hybrid and full-electric vehicles (EVs) intensifies. In response to this the DEMETER project – the European Training Network for the Design and Recycling of Rare-Earth Permanent Magnet Motors and Generators in Hybrid and Full Electric Vehicles – has looked to solve many of the scientific and technical problems that are currently preventing the effective recycling of these critical materials. Firstly, the magnets must be identified and removed from existing devices. Then they need to be reprocessed, with the properties of the new magnets being good enough for them to be incorporated into new motors, which of course must be designed in such a way that at their end-of-life (EoL) they can be more easily recycled. b. Why is it important for society? Rare earths are vital because they have unique properties, which means that in many cases they cannot be substituted with another element without greatly reducing performance. And this is not just for permanent magnets – although this is probably the largest single use at the moment – but for the many other industries that rely on them. We find rare earths in camera and telescope lenses, catalytic converters, aircraft engines, visors to protect welders and glassmakers, X-ray and MRI scanning systems, televisions and computer screens and other devices that have visual displays. If the supply of rare earths was restricted or even halted, then European society would be very severely affected, probably within weeks. Many industries would be severely hit, jobs would be lost, and manufacturers of products reliant on rare earths would have to stop production. Being able to guarantee the supply of rare earths through a large-scale programme of recycling is Europe’s only option. c. What are the overall objectives? The DEMETER project focused on the extraction and recycling of the relatively large rare-earth permanent magnets in electrical drives. In addition to this, DEMETER developed recycling for Nd-Fe-B and Sm-Co magnets, and designed electric motors for the next generation of electric vehicles. Finally, the project developed a complete, “urban-mine to machine”, lifecycle assessment and lifecycle costing methodology for rare-earth permanent magnets to ensure the most environmentally friendly and economical routes are applied for recycling. d. The conclusions of the action The 15 ESRs in the project, individually took on huge challenges. They moved to a new country, began work on a new research project, and the majority of them flourished and are now establishing themselves as self-assured, independently minded researchers who are looking forward to interesting careers. They have received top-class training which means they are ready to tackle future challenges with confidence and make a contribution to society. Their individual research projects have generated some remarkable results. There have been a number of publications in high-impact journals and some very important conference presentations. The ideas relating to the recycling of rare-earth magnets have been advanced on many fronts, and we can conclude that DEMETER has done much to further European aims for a healthier, greener and more sustainable economy.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Hybrid and Full Electric Vehicles ((H)EVs) are essential for the transition towards sustainable e-mobility. The permanent magnets in motors/generators of (H)EVs are either NdFeB or SmCo magnets, which contain large quantities of rare earths, which are critical metals with the highest supply risk for Europe. As highlighted by the European Rare Earths Competency Network, recycling of rare-earth magnets from (H)EVs should receive top priority. Reclaiming of rare-earth magnet motors/generators used in (H)EVs is a major challenge because the magnets are difficult to remove from the assemblies. The conventional hydrometallurgical routes for the recovery of rare earths from End-of-Life permanent magnets have a high environmental impact due to inefficient use of chemicals, whereas the conventional pyrometallurgical routes for the production of magnet master alloys are energy-inefficient. DEMETER, the European Training Network for the Design and Recycling of Rare-Earth Permanent Magnet Motors and Generators in Hybrid and Full Electric Vehicles, concurrently develops (1) innovative, environmentally-friendly direct and indirect recycling strategies for the permanent magnets in the motors and generators of (H)EVs that are currently already on the market and (2) design-for-reuse solutions for motors and generators in the (H)EVs of the future. An intersectoral and interdisciplinary consortium of leading EU universities, research institutes and manufacturers from the automotive and magnet sector trains 15 Early Stage Researchers (ESRs). The research challenges include the development of hydrogen-based grain-refinement technologies to produce nanograin magnets directly from scrap magnets, the recovery of rare earths from SmCo and NdFeB magnets of motors/generators by ionometallurgical methods, and the design of motors/generators with reusable magnets, where the designs are based on 2D and 3D flux paths as well as non-traditional materials.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз