pisco_log
banner

A Review of Battery Recycling Models from the Blockchain Perspective

Junqi Ran

Abstract


With the continuous growth in the number of new energy vehicles, a large quantity of used batteries urgently requires effective recycling. Based on relevant research by domestic and international scholars, this paper elaborates on the economic and environmental benefits of
power battery recycling, the selection of recycling models, and the application of blockchain technology. Analysis reveals that current research
on power battery recycling is relatively mature, but studies on the interaction mechanisms between cooperative recycling models and block-chain technology from a dynamic perspective remain scarce. Additionally, there is a lack of in-depth research on the high investment costs
associated with blockchain technology in the field of power battery recycling.

Keywords


Power battery recycling; Blockchain; Literature Review

Full Text:

PDF

Included Database


References


[1] Wang W B, Liu Y, Zhong L S, QI J Y & TONG P. (2023). Research on recovery decision of waste power battery under subsidy-penalty

policy[J]. Chinese Journal of Management Science, 31(11), 90-102.

[2] Feng Z W, Luo N, Shalpegin T & Cui H. (2024). The influence of carbon emission reduction instruments on blockchain technology

adoption in recycling batteries of the new energy vehicles[J]. International Journal of Production Research, 62(3), 891-908.

[3] Feng Z Y, Du B S, Yu Z Y & Mu S D. (2025). Recycling and traceability technology introducing strategy of new energy vehicles' power

battery driven by blockchain[J]. Chinese Journal of Management Science, 33(04):313-314.

[4] Lima M C C, Pontes L P, Vasconcelos A S M, et al. Economic aspects for recycling of used lithium-ion batteries from electric

vehicles[J]. Energies, 2022, 15(6): 2203.

[5] Lander L, Cleaver T, Rajaeifar M A, et al. Financial viability of electric vehicle lithium-ion battery recycling[J]. Iscience, 2021, 24(7).

[6] Das P K, Bhat M Y, Sajith S. Life cycle assessment of electric vehicles: a systematic review of literature[J]. Environmental Science and

Pollution Research, 2024, 31(1): 73-89.

[7] Aichberger C, Jungmeier G. Environmental life cycle impacts of automotive batteries based on a literature review[J]. Energies, 2020,

13(23): 6345.

[8] Hu W J, Zhou J, Ma C L, Zhao H & Dong T. (2024). Mode selection for dual-channel retired power battery recycling closed-loop supply

chain[J]. Systems Engineering -Theory & Practice, 44 (08), 2572-2595.

[9] Wu W Q & Zhang M. (2024). Pricing and Coordination Strategy of Power Battery Closed-loop Supply Chain Under Policy [J]. Industrial Engineering and Management, 29(05):147-158.

[10] Song H, Li X, Chen J, Mitkova L & Li G. (2024). Dynamic decisions of the manufacturer-led closed-loop supply chain considering altruistic behavior in EV battery[J]. Journal of Cleaner Production, 472, 143385.

[11] Ma D, Qin H & Hu J. (2022). Achieving triple sustainability in closed-loop supply chain: The optimal combination of online platform

sales format and blockchain-enabled recycling[J]. Computers & Industrial Engineering, 174, 108763.

[12] Xing P, & Wang M. (2025). The interplay of recycling channel selection and blockchain adoption in the new energy vehicle supply chain

under the government reward-penalty scheme[J]. Journal of Cleaner Production, 487, 144384.

[13] Shao L L, Li P, & Zhang Z X. (2024). Blockchain Technology-driven Information Sharing Mechanism and Contract Coordination in

Closed-loop Supply Chains for Power Battery[J]. Science and Technology Management Research, 44 (03), 195-204.

[14] Bui Q T, Le S T. Barriers to Blockchain Technology Implementation in Small and Medium-Sized Logistics Enterprises[J]. SAGE Open,

2025, 15(3): 21582440251367622.




DOI: http://dx.doi.org/10.70711/frim.v4i8.10032

Refbacks

  • There are currently no refbacks.