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August 25, 2025Sustainability8 citationsOpen Access

Designing a Reverse Logistics Network for Electric Vehicle Battery Collection, Remanufacturing, and Recycling

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ALAristotelis LygizosEKEleni KastanakiAGApostolos Giannis

Key Points

  • The designed logistics network manages 5300 to 9600 tons of EoL electric vehicle batteries annually by 2040.
  • Using a three parameter Weibull distribution, future EoL lithium-ion battery generation is estimated under two lifetime scenarios.
  • The approach considers battery recycling, remanufacturing, and disposal strategies for sustainability and economic viability.
  • The circular economy principles emphasize the importance of managing EoL lithium-ion batteries for promoting electric vehicle growth.

Abstract

The growing concern about climate change and increased carbon emissions has promoted the electric vehicle market. Lithium-Ion Batteries (LIBs) are now the prevailing technology in electromobility, and large amounts will soon reach their end-of-life (EoL). Most counties have not designed sustainable reverse logistics networks to collect, remanufacture and recycle EoL electric vehicle batteries (EVBs). This study is focused on estimating the future EoL LIBs generation through dynamic material flow analysis using a three parameter Weibull distribution function under two scenarios for battery lifetime and then designing a reverse logistics network for the region of Attica (Greece), based on a generalizable modeling framework, to handle the discarded batteries up to 2040. The methodology considers three different battery handling strategies such as recycling, remanufacturing, and disposal. According to the estimated LIB waste generation in Attica, the designed network would annually manage between 5300 and 9600 tons of EoL EVBs by 2040. The optimal location for the collection and recycling centers considers fixed costs, processing costs, transportation costs, carbon emission tax and the number of EoL EVBs. The economic feasibility of the network is also examined through projected revenues from the sale of remanufactured batteries and recovered materials. The resulting discounted payback period ranges from 6.7 to 8.6 years, indicating strong financial viability. This research underscores the importance of circular economy principles and the management of EoL LIBs, which is a prerequisite for the sustainable promotion of the electric vehicle industry.

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Cite This Study

Lygizos et al. (2025) studied this question.

synapsesocial.com/papers/68af5d63ad7bf08b1eae0837https://doi.org/10.3390/su17177643
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