Abstract:
—The increasing demand for batteries in various
industries has resulted in the problem of battery waste. An
industry 4.0 will need to tackle this kind of environmental
problem. With the need for a more sustainable solution, battery
refurbishment technologies have emerged as a way to reduce the
environmental impact of battery waste, conserve resources, and
save costs. In this review, we will discuss the existing battery
refurbishment technologies in the world, including their
advantages and disadvantages. The authors also discussed about
their current battery refurbishment project with the help of
artificial intelligence.
Authors:
1. Nam Nguyen-Quang (Ho Chi Minh City University of Technology, Vietnam
)
2. Khuong Nguyen-Vinh (VSB - Technical University of Ostrava & RMIT University, Vietnam
)
3. Radomír Gono (VSB - Technical University of Ostrava, Czech Republic
)
References:
1. N. Nguyen-Quang, K. Nguyen-Vinh and R. Gono, "Battery
Refurbishment Technologies in Industry 4.0: A Review," 2024 6th
International Conference on Electrical, Control and Instrumentation
Engineering (ICECIE), Pattaya, Thailand, 2024, pp. 1-5, DOI:
10.1109/ICECIE63774.2024.10815688
2. X. Yu et al., "Current Challenges in Efficient Lithium-Ion Batteries
’ Recycling: A Perspective," Global Challenges, vol. 6, no. 12, p.
2200099, 2022.
3. K. V. Nguyen and N. Nguyen-Quang, "Design and Simulation of a
photovoltaic-based energy system for mobile device chargers at public
place," International Journal of Electrical and Electronics
Engineering Research, vol. 5, no. 1, pp. 111-118, 2015.
4. S. Rangaraju, P. Vo, B. Nguyen, and K. Nguyen, "Harvest the Sun on
Water: A Review on Floating Photovoltaic Solution For Vietnam,"
International Journal of Research Publication and Reviews, vol. 2, no.
3, pp. 169-173, 2021.
5. K. Nguyen-Vinh, N. Nguyen-Quang, and H. Dewasurendra, "A review
of Low-Power Energy Harvesting technologies in Industry 4.0," in
2023 5th International Conference on Electrical, Control and
Instrumentation Engineering (ICECIE), 2023: IEEE, pp. 1-6, DOI:
10.1109/ICECIE58751.2024.10457513.
6. K. Nguyen-Vinh, Q.-N. Vo-Huynh, M. Hoang, and K. Nguyen-Minh,
"Deep Learning Models for Fault Detection and Diagnosis in
Photovoltaic Modules Manufacture," in 2023 IEEE Conference on
Artificial Intelligence (CAI), 2023: IEEE, pp. 201-202, DOI:
10.1109/CAI54212.2023.00095.
7. K. Nguyen-Vinh, Q.-N. Vo-Huynh, K. Nguyen-Minh, M. Hoang, and
S. Rangaraju, "Case Study: Utilising of Deep Learning Models for
Fault Detection and Diagnosis of Photovoltaic Modules to Improve
Solar Energy Constructions’ O&M Activities Quality," in Information
Systems Research in Vietnam, Volume 2: A Shared Vision and New
Frontiers, N. H. Thuan, D. Dang-Pham, H.-S. Le, and T. Q. Phan Eds.
Singapore: Springer Nature Singapore, 2023, pp. 53-67, DOI:
10.1007/978-981-99-4792-8_5.
8. S. Rangaraju, O. Isaac, K. Nguyen, P. Vo, and A. Arjun, "Guaranteed
O&M for Solar Plants in Vietnam-A review & Proposal on Guaranteed
O&M service to foster sustainable energy generation by maximizing
solar energy production and safeguarding investment," International
Journal of Engineering and Applied Sciences, vol. 8, no. 7, pp. 24-27,
2021, DOI: 10.31873/IJEAS.8.7.08.
9. K. V. Nguyen and N. Nguyen-Quang, “Novel Tiny 1.2kV SiC
MOSFET Gate Driver,” 2018 IEEE Workshop on Wide Bandgap
Power Devices and Applications in Asia (WiPDA Asia), Xi'an, China,
2018: IEEE, pp. 256-259, DOI: 10.1109/WiPDAAsia.2018.8734526.
10. K. Nguyen-Vinh, H. Dewasurendra, S. Gonapaladeniya, U. Sarbahi,
and N. Le, "Stack Algorithm Implementation in Robot-Based Mixed
Case Palletizing System," in 2022 4th International Conference on
Electrical, Control and Instrumentation Engineering (ICECIE), 2022:
IEEE, pp. 1-8, DOI: 10.1109/ICECIE55199.2022.10000343.
11. K. Nguyen-Vinh, D. D. Hattotuwa, and H. Dewasurendra, "Design and
Implementation of a Robotic Stone Machining System," in 2023 IEEE
IAS Global Conference on Emerging Technologies (GlobConET),
2023: IEEE, pp. 1-8.
12. K. Nguyen-Vinh, N. Nguyen-Quang, Z. Leonowicz, T. Novák, R.
Gono and E. Racz, "Comparing of Potential Energy from the Sun
During a Year in Czechia and Vietnam," 2024 24th International
Scientific Conference on Electric Power Engineering (EPE), Kouty
nad Desnou, Czech Republic, 2024, pp. 1-5, doi:
10.1109/EPE61521.2024.10559576.
13. K. Nguyen-Vinh, S. Gonapaladeniya, N. Nguyen-Quang and Z.
Leonowicz, "A Review of Photovoltaic Technology," 2024 24th
International Scientific Conference on Electric Power Engineering
(EPE), Kouty nad Desnou, Czech Republic, 2024, pp. 1-6, doi:
10.1109/EPE61521.2024.10559575.
14. S. Minami, Y. Onishi, S. J. Hou, and A. Kozawa, "A new intense pulsecharging method for the prolongation of life in lead-acid batteries,"
Journal of Asian Electric Vehicles, vol. 2, no. 1, pp. 541-544, 2004.
15. L. Colarullo and J. Thakur, "Second-life EV batteries for stationary
storage applications in Local Energy Communities," Renewable and
Sustainable Energy Reviews, vol. 169, p. 112913, 2022.
16. M. S. H. Lipu et al., "Battery management, key technologies, methods,
issues, and future trends of electric vehicles: A pathway toward
achieving sustainable development goals," Batteries, vol. 8, no. 9, p.
119, 2022.
17. A. Kampker, S. Wessel, F. Fiedler, and F. Maltoni, "Battery pack
remanufacturing process up to cell level with sorting and repurposing
of battery cells," Journal of Remanufacturing, vol. 11, pp. 1-23, 2021.
18. W. Jamratnaw, "Desulfation of lead-acid battery by high frequency
pulse," in 2017 14th International Conference on Electrical
Engineering/Electronics, Computer, Telecommunications and
Information Technology (ECTI-CON), 2017: IEEE, pp. 676-679.
19. Y. Chen et al., "A review of lithium-ion battery safety concerns: The
issues, strategies, and testing standards," Journal of Energy Chemistry,
vol. 59, pp. 83-99, 2021.
20. D. L. Thompson et al., "The importance of design in lithium ion battery
recycling–a critical review," Green Chemistry, vol. 22, no. 22, pp.
7585-7603, 2020.
21. J. N. Meegoda, S. Malladi, and I. C. Zayas, "End-of-Life Management
of Electric Vehicle Lithium-Ion Batteries in the United States," Clean
Technologies, vol. 4, no. 4, pp. 1162-1174, 2022.
22. R. P. Sheth, N. S. Ranawat, A. Chakraborty, R. P. Mishra, and M.
Khandelwal, "The Lithium-Ion Battery Recycling Process from a
Circular Economy Perspective—A Review and Future Directions,"
Energies, vol. 16, no. 7, p. 3228, 2023.
23. L. Cong, W. Liu, S. Kong, H. Li, Y. Deng, and H. Ma, "End-of-use
management of spent lithium-ion batteries from sustainability
perspective: a review," Journal of Manufacturing Science and
Engineering, vol. 143, no. 10, 2021.
24. N. Williard, B. Sood, M. Osterman, and M. Pecht, "Disassembly
methodology for conducting failure analysis on lithium–ion batteries,"
Journal of Materials Science: Materials in Electronics, vol. 22, pp.
1616-1630, 2011.
25. V. Dreißigacker, "Thermal Battery for Electric Vehicles: HighTemperature Heating System for Solid Media Based Thermal Energy
Storages," Applied Sciences, vol. 11, no. 21, p. 10500, 2021.
Page(s): 31-35
Date of Publication: 19 September 2024