Quantifying the energy withdrawn from the lithium-ion battery during electrochemical discharge

Hassan Rouhi , Rodrigo Serna-Guerrero , Annukka Santasalo-Aarnio
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Abstract

The rising demand for electric vehicles (EVs) has led to an increased demand for lithium-ion batteries (LIBs). Due to the limited natural sources of battery materials, the need for safe and efficient recycling of LIBs is critical. Batteries at their end-of-life still might have residual energy. Therefore, safe discharge of batteries prior to recycling is needed to minimize the risk of explosion and thermal runaway. This study investigates the electrochemical discharge of LIBs by sodium chloride (NaCl) and potassium carbonate (K₂CO₃) solutions, with a focus on the impact of discharge current. A novel methodology enables the real-time monitoring of the voltage and current of the battery during electrochemical discharge. This, in turn, can be used to optimize the discharge process for safe and efficient recycling. The results reveal that K₂CO₃ outperforms the traditionally preferred NaCl electrolyte, providing a higher energy recovery in a shorter time despite retaining higher steady-state voltages (around 76% when 20 wt% K₂CO₃ was used as a discharge medium). Additionally, an excessive discharge current can lead to overheating and a higher voltage rebound. This should be considered when optimizing the electrochemical discharge process. By balancing the discharge rate, discharge time, and energy recovery, this study provides tools to increase the sustainability and safety of LIB preprocessing before recycling.
量化锂离子电池在电化学放电过程中所消耗的能量
随着电动汽车(ev)需求的增加,对锂离子电池(LIBs)的需求也在增加。由于电池材料的天然来源有限,需要安全有效地回收锂电池是至关重要的。电池在使用寿命结束时可能仍有剩余能量。因此,需要在回收之前对电池进行安全放电,以尽量减少爆炸和热失控的风险。本文研究了氯化钠(NaCl)和碳酸钾(K₂CO₃)溶液对锂离子电池的电化学放电,重点研究了放电电流的影响。一种新颖的方法能够实时监测电池在电化学放电过程中的电压和电流。反过来,这可以用来优化排放过程,以实现安全和有效的回收。结果表明,K₂CO₃优于传统上首选的NaCl电解质,在保持更高的稳态电压(当使用20 wt% K₂CO₃作为放电介质时,约为76%)的情况下,在更短的时间内提供更高的能量回收率。此外,过大的放电电流会导致过热和更高的电压反弹。在优化电化学放电过程时应考虑到这一点。通过平衡放电速率、放电时间和能量回收,本研究为提高锂电池回收前预处理的可持续性和安全性提供了工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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