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采用预分离与还原焙烧相结合的方法,从废旧锂离子电池中高质量回收石墨和锂。

Pre-separation combined with reduction roasting for high-quality recovery of graphite and lithium from spent lithium ion batteries.

机构信息

School of Environment Science and Spatial Informatics, China University of Mining and Technology, No.1 Daxue Road, Xuzhou, Jiangsu 221116, China.

School of Chemical Engineering and Technology, China University of Mining and Technology, No.1 Daxue Road, Xuzhou, Jiangsu 221116, China.

出版信息

Waste Manag. 2024 Oct 1;187:244-251. doi: 10.1016/j.wasman.2024.07.030. Epub 2024 Jul 28.

Abstract

The recycling of spent lithium ion batteries is of great significance because it contains large amounts of valuable metals. But current recovery methods exhibit limited efficiency in selectively extracting lithium from spent electrode materials and spent graphite becomes metallurgical residues. In this study, we propose a novel recycling flowchart that combines flotation with multi-stage water-leaching to enhance the recovery of graphite and lithium from black mass derived from spent lithium ion batteries. Removal of organics can be conducted by pyrolysis, at the same time, the spent ternary cathode material was decomposed into CoO, NiO, and MnO at a temperature of 600 °C for 60 min using pyrolysis product-derived reductant. The sub-microlevel migration behavior of lithium ions in electrode materials was also examined. The electrode material aggregates were broken up by water crushing, and 38.67 % lithium dissolves into water for recycling. Bubble flotation was used to recycle the excess graphite from the black mass while the residual graphite was used as reductant for the carbothermal reduction. Using the developed scheme, we were able to recover 95.51 % of lithium after carbothermal reduction with 12.31 % carbon residue. Based on basic research, a novel recycling flowchart of spent lithium-ion batteries has been proposed.

摘要

从废旧锂离子电池中回收具有重要意义,因为其中含有大量有价值的金属。但目前的回收方法在从废旧电极材料中选择性地提取锂方面效率有限,而废旧石墨则成为冶金残渣。在这项研究中,我们提出了一种新的回收流程图,将浮选与多阶段水浸相结合,以提高从废旧锂离子电池的黑块中回收石墨和锂的效率。有机物可以通过热解去除,同时,用过的三元阴极材料在 600°C 下用热解产物衍生的还原剂分解成 CoO、NiO 和 MnO60 分钟。还研究了锂离子在电极材料中的亚微观迁移行为。通过水破碎破坏电极材料团聚体,38.67%的锂溶解在水中进行回收。气泡浮选用于从黑块中回收多余的石墨,而残余石墨则用作碳热还原的还原剂。使用所开发的方案,我们能够在碳热还原后回收 95.51%的锂,碳残渣为 12.31%。基于基础研究,提出了一种废旧锂离子电池的新型回收流程图。

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