Imre-Lucaci Árpád, Imre-Lucaci Florica, Fogarasi Szabolcs
Department of Chemical Engineering, Faculty of Chemistry and Chemical Engineering, Babeş-Bolyai University, RO-400028 Cluj Napoca, Romania.
Institute for Interdisciplinary Research in Bio-Nano-Science, Babeş-Bolyai University, RO-400271 Cluj Napoca, Romania.
Materials (Basel). 2025 Aug 7;18(15):3715. doi: 10.3390/ma18153715.
The literature clearly indicates that both academia and industry are strongly committed to developing comprehensive processes for spent Li-ion battery (LIB) recycling. In this regard, the current study presents an original contribution by providing a quantitative assessment of a large-scale recycling plant designed for the treatment of completely spent LIBs. In addition to a concept of the basic process, this assessment also considers a case study of a thermal integration and CO capture subsystem. Process flow modeling software was used to evaluate the contribution of all process steps and equipment to overall energy consumption and to mass balance the data required for the technical assessment of the large-scale recycling plant. To underline the advantages and identify the optimal novel process concept, several key performance indicators were determined, such as recovery efficiency, specific energy/material consumption, and specific CO emissions. In addition, the economic potential of the recycling plants was evaluated for the defined case studies based on capital and O&M costs. The results indicate that, even with CO capture applied, the thermally integrated process with the combustion of hydrogen produced in the recycling plant remains the most promising large-scale configuration for spent LIB recycling.
文献明确表明,学术界和工业界都坚定致力于开发用于废旧锂离子电池(LIB)回收的综合工艺。在这方面,当前的研究通过对一个设计用于处理完全废旧LIB的大规模回收工厂进行定量评估,做出了原创性贡献。除了基本工艺概念外,该评估还考虑了一个热集成和CO捕获子系统的案例研究。使用工艺流程建模软件来评估所有工艺步骤和设备对总能耗的贡献,并对大规模回收工厂技术评估所需的数据进行质量平衡。为了突出优势并确定最佳的新型工艺概念,确定了几个关键性能指标,如回收效率、比能量/材料消耗和特定CO排放量。此外,基于资本成本和运维成本,对定义的案例研究评估了回收工厂的经济潜力。结果表明,即使应用了CO捕获,在回收工厂中燃烧产生的氢气进行热集成的工艺仍然是废旧LIB回收最有前景的大规模配置。