Techno-Environmental Evaluation of Recycling Pretreatment of Cylindrical Lithium-Ion Battery: Discharging via Salt-Based Solution

A. Pražanová, Dominik Pilnaj, Zbyněk Plachý, V. Knap
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Abstract

The popularity of lithium-ion batteries (LIBs) as crucial power sources has increased in recent years. LIBs represent a perspective technology for recycling because they comprise a high portion of valuable metals, such as nickel, manganese, cobalt, or lithium, and other metals, including aluminium, copper, and iron. Battery discharging represents an essential step in end-of-life (EOL) pretreatment, as it reduces the risk of fire or explosion in further processing. As a simple, quick, and inexpensive technique, an electrochemical discharging process via salt-based solutions is preferred for cylindrical cells. Nevertheless, it is necessary to consider the composition of obtained waste products and the possible environmental risks leading to their safe and non-hazardous EOL processing. This work evaluated discharging efficiency and environmental perspective for cylindrical LIB cells, which were treated using NaCl solution. All battery cells were discharged to the safe voltage limit (0.75 V) within 24 hours. Major organic components, including volatile solvents with high toxic hazards, such as carbonic acid esters, methyl salicylate, and propanoic acid esters, were identified in the waste solutions using gas chromatography with mass spectrometry (GC-MS). Moreover, the metal proportion in the solution was determined using inductively coupled plasma - optical emission spectrometry (ICP-OES) analysis; it is recommended to recover metals from the wastewater before EOL or cleaning treatment.
圆柱形锂离子电池回收预处理技术-环境评价:盐基溶液放电
近年来,锂离子电池(LIBs)作为重要的电源越来越受欢迎。锂离子电池代表了一种有前途的回收技术,因为它们包含了很大一部分有价值的金属,如镍、锰、钴或锂,以及其他金属,包括铝、铜和铁。电池放电是寿命终止(EOL)预处理的重要步骤,因为它可以降低进一步处理中发生火灾或爆炸的风险。作为一种简单、快速、廉价的技术,通过盐基溶液的电化学放电过程是圆柱形电池的首选方法。然而,有必要考虑所获得的废物产品的组成和可能导致其安全和无害的EOL处理的环境风险。本研究评估了NaCl溶液处理圆柱形锂离子电池的放电效率和环境前景。所有电池在24小时内放电到安全电压极限(0.75 V)。利用气相色谱-质谱联用技术(GC-MS)鉴定了废液中的主要有机成分,包括具有高毒性危害的挥发性溶剂,如碳酸酯、水杨酸甲酯和丙酸酯。采用电感耦合等离子体-光学发射光谱法(ICP-OES)测定了溶液中的金属比例;建议在EOL或清洗处理之前从废水中回收金属。
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