School of Industrial Engineering , Purdue University , 315 N Grant St , West Lafayette , Indiana 47907 , United States.
Urban Mining Company, Suite 150, 8201 East Riverside Drive , Austin , Texas 78744 , United States.
Environ Sci Technol. 2018 Mar 20;52(6):3796-3802. doi: 10.1021/acs.est.7b05442. Epub 2018 Mar 9.
Neodymium-iron-boron (NdFeB) magnets offer the strongest magnetic field per unit volume, and thus, are widely used in clean energy applications such as electric vehicle motors. However, rare earth elements (REEs), which are the key materials for creating NdFeB magnets, have been subject to significant supply uncertainty in the past decade. NdFeB magnet-to-magnet recycling has recently emerged as a promising strategy to mitigate this supply risk. This paper assesses the environmental footprint of NdFeB magnet-to-magnet recycling by directly measuring the environmental inputs and outputs from relevant industries and compares the results with production from "virgin" materials, using life cycle assessments. It was found that magnet-to-magnet recycling lowers environmental impacts by 64-96%, depending on the specific impact categories under investigation. With magnet-to-magnet recycling, key processes that contribute 77-95% of the total impacts were identified to be (1) hydrogen mixing and milling (13-52%), (2) sintering and annealing (6-24%), and (3) electroplating (6-75%). The inputs from industrial sphere that play key roles in creating these impacts were electricity (24-93% of the total impact) and nickel (5-75%) for coating. Therefore, alternative energy sources such as wind and hydroelectric power are suggested to further reduce the overall environmental footprint of NdFeB magnet-to-magnet recycling.
钕铁硼(NdFeB)磁铁具有单位体积最强的磁场,因此广泛应用于电动汽车电机等清洁能源应用。然而,作为制造 NdFeB 磁铁的关键材料,稀土元素(REEs)在过去十年中一直面临着供应的巨大不确定性。NdFeB 磁铁对磁铁的回收最近成为缓解这种供应风险的一种有前途的策略。本文通过直接测量相关行业的环境投入和产出,并用生命周期评估方法将结果与“原始”材料的生产进行比较,评估了 NdFeB 磁铁对磁铁回收的环境足迹。结果发现,根据具体研究的影响类别,磁铁对磁铁的回收可降低 64-96%的环境影响。通过磁铁对磁铁的回收,可以确定对总影响贡献 77-95%的关键过程是:(1)氢混合和研磨(13-52%)、(2)烧结和退火(6-24%)以及(3)电镀(6-75%)。在产生这些影响的过程中,来自工业领域的关键投入是电力(占总影响的 24-93%)和用于涂层的镍(5-75%)。因此,建议使用风能和水力发电等替代能源,以进一步降低 NdFeB 磁铁对磁铁回收的整体环境足迹。