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Combined mechanical process recycling technology for recovering copper and aluminium components of spent lithium-iron phosphate batteries

机译:结合机械工艺回收技术来回收废磷酸铁锂电池中的铜和铝成分

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摘要

The recycling processes of spent lithium iron phosphate batteries comprise thermal, wet, and biological and mechanical treatments. Limited research has been conducted on the combined mechanical process recycling technology and such works are limited to the separation of metal and non-metal materials, which belongs to mechanical recovery. In this article the combined mechanical process recycling technology of spent lithium iron phosphate batteries and the separation of metals has been investigated. The spent lithium iron phosphate batteries monomer with the completely discharged electrolyte was subjected to perforation discharge. The shell was directly recycled and the inner core was directly separated into a positive electrode piece, dissepiment, and negative electrode piece. The dissociation rate of the positive and negative materials reached 100.0% after crushing when the temperature and time reached 300 degrees C and 120 min. The crushed products were collected and sequentially sieved after the low-temperature thermal treatment. Then, nonferrous metals (copper and aluminium) were separated from the crushed spent lithium iron phosphate batteries by eddy current separation with particle size -4 + 0.4. The optimised operation parameters of eddy current separation were fed at speeds of 40 r min(-1), and the rotation speed of the magnetic field was 800 r min(-1). The nonferrous metals of copper and aluminium were separated by the method of pneumatic separation. The optimal air speed was 0.34 m s(-1) for the particle-size -1.6 + 0.4 mm and 12.85-14.23 m s(-1) for the particle-size -4 + 1.6 mm. The present recycling process is eco-friendly and highly efficient and produces little waste.
机译:废磷酸铁锂电池的回收过程包括热处理,湿法以及生物和机械处理。对组合的机械过程回收技术进行的研究有限,这些工作仅限于金属和非金属材料的分离,这属于机械回收。本文研究了废磷酸铁锂电池的机械过程回收技术与金属分离的结合。将具有完全放电的电解质的废磷酸铁锂电池单体进行穿孔放电。将壳直接再循环,并将内芯直接分离为正极片,分散体和负极片。当温度和时间达到300摄氏度和120分钟时,粉碎后的正极材料和负极材料的离解率达到100.0%。收集压碎的产物,并在低温热处理后顺序筛分。然后,通过涡流分离从粉碎的废磷酸锂铁电池中分离出有色金属(铜和铝),粒度为-4 + 0.4。涡流分离的优化操作参数以40 r min(-1)的速度馈入,磁场的旋转速度为800 r min(-1)。铜和铝的有色金属通过气动分离的方法分离。对于-1.6 + 0.4 mm的粒径,最佳风速为0.34 m s(-1);对于-4 + 1.6 mm的粒径,最佳风速为12.85-14.23 m s(-1)。当前的回收过程是环保的和高效的,并且几乎没有浪费。

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