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Artigo 2025

Kinetics, thermodynamics, and product formation during pyrolysis conversion of protection board from spent lithium-ion batteries

Autores

Tong, Jiayao
Yao, Zhitong
Jiang, Jingjing
Cui, Jiuzhuo
Kumar, Akash
Reinmöller, Markus
Vegliò, Francesco
Romano, Pietro
Liu, Jie
Jin, Meiqing
Bertelsen, Michael

Journal of Energy Storage , vol. 128 , Article 117212

4
Citações
12
Autores

Resumo

© 2025 Elsevier LtdThermal treatment of spent lithium-ion batteries offers the benefits of decomposing organic components while concentrating valuable metals. This work investigated the kinetics, thermodynamics, and evolved products during the protection board pyrolysis under N2 and CO2 atmospheres. The degradation process was divided into stages of below 400 °C, 400–700 °C, and 700–900 °C. Peak temperatures at the maximum mass loss rate were observed at 359–399 °C in N₂ and 367–393 °C in CO₂. The primary products evolved from phenolics into ketones and acids, and eventually into alkanes. Brominated products such as bromomethane and 1-bromobutane were also detected, indicating the requirement of debromination to improve the usability of pyrolysis products. The average activation energies were determined to be 218.33 kJ/mol in N₂ and 308.91 kJ/mol in CO₂. D4 and D1 reaction mechanisms were found to best describe the pyrolysis process in two atmospheres. Positive values of ΔH and ΔG indicated the endothermic and non-spontaneous characteristics. The difference between ΔH and Ea values ranged from 5.26 to 7.70 kJ/mol in N₂ and 5.12–7.48 kJ/mol in CO₂, indicating a high possibility of overcoming the potential energy barrier.

Palavras-chave

Lithium-ion batteries Modeling Protection board Pyrolysis conversion Thermo-kinetics

Renewable Energy, Sustainability and the Environment (ENER) Energy Engineering and Power Technology (ENER) Electrical and Electronic Engineering (ENGI)
: Scopus
Última atualização: 2026-06-25
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PII: S2352152X25019255