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Eddy current separation for recovering aluminium and lithium-iron phosphate components of spent lithium-iron phosphate batteries

机译:涡流分离法回收废磷酸铁锂电池中的铝和磷酸铁锂成分

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With the rapid development of the electric vehicle market since 2012, lithium-iron phosphate (LFP) batteries face retirement intensively. Numerous LFP batteries have been generated given their short service life. Thus, recycling spent LFP batteries is crucial. However, published information on the recovery technology of spent LFP batteries is minimal. Traditional separators and separation theories of recovering technologies were unsuitable for guiding the separation process of recovering metals from spent LFP batteries. The separation rate of the current method for recovering spent LFP batteries was rather low. Furthermore, some wastewater was produced. In this study, spent LFP batteries were dismantled into individual parts of aluminium shells, cathode slices, polymer diaphragms and anode slices. The anode pieces were scraped to separate copper foil and anode powder. The cathode pieces were thermally treated to reduce adhesion between the cathode powder and the aluminium foil. The dissociation rate of the cathode slices reached 100% after crushing when the temperature and time reached 300celcius and 120 min, respectively. Eddy current separation was performed to separate nonferrous metals (aluminium) from aluminium and LFP mixture. The optimized operation parameters for the eddy current separation were feeding speed of 1 m/s and magnetic field rotation speed of 4 m/s. The separation rate of the eddy current separation reached 100%. Mass balance of the recovered materials was conducted. Results showed that the recovery rate of spent LFP can reach 92.52%. This study established a green and full material recovery process for spent LFP batteries.
机译:自2012年以来,随着电动汽车市场的快速发展,磷酸铁锂(LFP)电池面临着大量退役的风险。由于使用寿命短,已经生产了许多LFP电池。因此,回收用过的LFP电池至关重要。但是,关于用过的LFP电池回收技术的公开信息很少。传统的分离器和回收技术的分离理论不适用于指导从废旧LFP电池中回收金属的分离过程。当前回收废旧LFP电池的方法的分离率很低。此外,产生了一些废水。在这项研究中,废旧的LFP电池被分解成铝壳,阴极片,聚合物隔膜和阳极片的各个部分。刮去阳极片以分离铜箔和阳极粉。对阴极片进行热处理以减少阴极粉末和铝箔之间的粘附。当温度和时间分别达到300摄氏度和120分钟时,阴极片的解离率达到100%。进行涡流分离以从铝和LFP混合物中分离出有色金属(铝)。涡流分离的最佳操作参数是进给速度1 m / s和磁场旋转速度4 m / s。涡流分离的分离率达到100%。进行回收材料的质量平衡。结果表明,废旧LFP的回收率可达到92.52%。这项研究为废旧LFP电池建立了绿色且完整的材料回收过程。

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