1. Харламенков А.С. Современные способы тушения литий-ионных аккумуляторов. Часть 3 // Пожаровзрывобезопасность. 2023. Т. 32. № 3. С. 93–98. DOI:https://doi.org/10.22227/0869-7493.2023.32.03.93-98.
2. Ignition and Fire-Related Incidents Caused by Lithium-Ion Batteries in Waste Treatment Facilities in Japan and Countermeasures / A. Terazono [et al.]. 2023. DOI:https://doi.org/10.2139/ssrn.4486179.
3. Ignition and fire-related incidents caused by lithium-ion batteries in waste treatment facilities in Japan and countermeasures / A. Terazono [et al.] // Resources, Conservation and Recycling. 2024. № 202 (3). P. 107398. DOI:https://doi.org/10.1016/j.resconrec.2023.107398.
4. Current status and outlook of recycling spent lithium-ion batteries / Yu. Lan [et al.] // Journal of Energy Storage. 2025. Vol. 110. P. 115374. DOI:https://doi.org/10.1016/j.est.2025.115374.
5. Rahman A., Afroz R., Safrin M. Recycling and Disposal of Lithium Batteries: An Economical and Environmental Approach // IIUM Engineering Journal. 2017. Vol. 18. № 2. P. 238–252.
6. Semi-Autonomous Robotic System for Efficient Recycling of Lithium-Ion Batteries /S. Gadgil [et al.]. 2024. P. 1–7.
7. Stranded Energy Assessment Techniques and Tools. DOT HS 812 789 / E. Rask [et al.]. Washington, DC: prepared for NHTSA by Plaza Argonne National Laboratory, 2020.
8. Fire Safety of Lithium-Ion Batteries in Road Vehicles / R. Bisschop [et al.] // Gothenburg: RISE Research Institutes of Sweden. 2019.
9. Grant C. C. Fire fighter safety and emergency response for electric drive and hybrid electric vehicles // Fire Protection Research Foundation. 2010.



