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从回收废旧锂离子电池的预处理过程中产生和检测金属离子和挥发性有机化合物(VOCs)的排放。

Generation and detection of metal ions and volatile organic compounds (VOCs) emissions from the pretreatment processes for recycling spent lithium-ion batteries.

机构信息

School of Environmental Science and Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, People's Republic of China.

School of Environmental Science and Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, People's Republic of China.

出版信息

Waste Manag. 2016 Jun;52:221-7. doi: 10.1016/j.wasman.2016.03.011. Epub 2016 Mar 22.

DOI:10.1016/j.wasman.2016.03.011
PMID:27021697
Abstract

The recycling of spent lithium-ion batteries brings benefits to both economic and environmental terms, but it can also lead to contaminants in a workshop environment. This study focused on metals, non-metals and volatile organic compounds generated by the discharging and dismantling pretreatment processes which are prerequisite for recycling spent lithium-ion batteries. After discharging in NaCl solution, metal contents in supernate and concentrated liquor were detected. Among results of condition #2, #3, #4 and #5, supernate and concentrated liquor contain high levels of Na, Al, Fe; middle levels of Co, Li, Cu, Ca, Zn; and low levels of Mn, Sn, Cr, Zn, Ba, K, Mg, V. The Hg, Ag, Cr and V are not detected in any of the analyzed supernate. 10wt% NaCl solution was a better discharging condition for high discharge efficiency, less possible harm to environment. To collect the gas released from dismantled LIB belts, a set of gas collecting system devices was designed independently. Two predominant organic vapour compounds were dimethyl carbonate (4.298mgh(-1)) and tert-amylbenzene (0.749mgh(-1)) from one dismantled battery cell. To make sure the concentrations of dimethyl carbonate under recommended industrial exposure limit (REL) of 100mgL(-1), for a workshop on dismantling capacity of 1000kg spent LIBs, the minimum flow rate of ventilating pump should be 235.16m(3)h(-1).

摘要

废旧锂离子电池的回收在经济和环境方面都有好处,但也会导致车间环境中的污染物。本研究集中于放电和拆解预处理过程中产生的金属、非金属和挥发性有机化合物,这些都是回收废旧锂离子电池的前提条件。在 NaCl 溶液中放电后,检测了上清液和浓缩液中的金属含量。在条件#2、#3、#4 和#5 的结果中,上清液和浓缩液中含有高浓度的 Na、Al、Fe;中等浓度的 Co、Li、Cu、Ca、Zn;低浓度的 Mn、Sn、Cr、Zn、Ba、K、Mg、V。Hg、Ag、Cr 和 V 在任何分析的上清液中均未检出。10wt%NaCl 溶液是一种更好的放电条件,具有更高的放电效率,对环境的潜在危害更小。为了收集从拆解的 LIB 带上释放的气体,我们自主设计了一套气体收集系统设备。从一个拆解的电池中,我们收集到了两种主要的有机蒸气化合物:碳酸二甲酯(4.298mgh(-1))和叔戊基苯(0.749mgh(-1))。为了确保碳酸二甲酯的浓度低于推荐的工业暴露限值(REL)100mgL(-1),对于一个拆解能力为 1000kg 废旧 LIBs 的车间,通风泵的最小流量应为 235.16m(3)h(-1)。

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