Battery Swapping Station with Battery Health Monitoring,



EOI: 10.11242/viva-tech.01.05.001

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Citation

Mr. Jigar Patel, Mr. Amitkumar Vishwakarma, Mr. Rohan Gawai, Prof Bhushan Save, "Battery Swapping Station with Battery Health Monitoring,", VIVA-IJRI Volume 1, Issue 6, Article 7, pp. 1-5, 2023. Published by Computer Engineering Department, VIVA Institute of Technology, Virar, India.

Abstract

India's government wants to transition to EVs because air pollution has been a significant problem there. Due to the fact that charging an EV takes longer than starting one, the need for charging stations will increase as well. This makes switching from a gasoline vehicle to an EV difficult. The proposed remedy is a battery swapping station where we can acquire a fully charged battery and exchange it for our discharged battery as a result of this idea being put out. It will save time because changing the battery will just take a few seconds. The station's screen will display data on the battery's health parameters provided by the second component of the proposed system, a battery monitoring system. An Arduino mega is a component of this system that helps with battery health monitoring. The Indian government is getting ready to switch to EVs because pollution is a major problem and there is a rising demand for them. In response, this ideology was presented. A planned system where fully charged batteries can be obtained and exchanged for discharged ones is known as a battery exchange station. The second element of the suggested system will communicate the battery status parameters shown above the screen on the Arduino Mega in order to monitor the battery status.

Keywords

Arduino Mega, Charging, Batteries, Battery Monitoring, Swapping Station, Parameters.

References

  1. Jain, S., Ahmad, Z., Alam, M. S., & Rafat, “Battery Swapping Technology”, 5th IEEE International, 2020
  2. Muhammad Nizam, Hari Maghfiroh, Rizal Abdulrozaq Rosadi and Kirana D.U. Kusumaputri, “Battery Management System Design (BMS) for Lithium-Ion Batteries”, AIP Conference, 2020.
  3. Furkan Ahmad, Mohammad Saad Alam, Ibrahim Saad Alsaidan, Samir M. Shariff, “Battery Swapping Station For Electric Vehicles: Opportunities And Challenges”, IET,2020.
  4. Xiaochuan Liu, Cheong Boon Soh, Shuhan Yao, Huajun Zhang, and Tianyang Zhao, “Operation Management of Multi-Region Battery Swapping-Charging Networks for Electrified Public Transportation Systems”, IEEE,2020.
  5. Adegbohun, F., Von Jouanne, A. and Lee, K.Y.,. “Autonomous Battery Swapping System And Methodologies Of Electric Vehicles”, Energies, 12(4), p.667. 2019.
  6. Mingfei Ban, Jilani, Mohammad Shahidehpour, Danyang Guo, Yiyun Yao, “Electric Vehicle Battery Swapping-Charging System in Power Generation Scheduling for Managing Ambient Air Quality and Human Health Conditions”, IEEE,2019.
  7. Y. Ligen, H. Vrubel, and H. Girault, “Local Energy Storage And Stochastic Modeling For Ultrafast Charging Stations”, Energies, vol. 12, no. 10, 2019.
  8. M. Ban, M. Shahidehpour, J. Yu, and Z. Li, “A Cyber-Physical Energy Management System for Optimal Sizing and Operation of Networked Nano grids with Battery Swapping Stations” IEEE Transactions on Sustainable Energy, vol. 10, no. 1, pp. 491–502, 2019
  9. McClellan, J. A. Jimenez, and G. Koutitas, Eds, “Smart Cities: Applications, Technologies, Standards, and Driving Factors”, Springer International Publishing, 2018.
  10. Sujie Shao, Shaoyong Guo, and Xuesong Qiu, “A Mobile Battery Swapping Service for Electric Vehicles Based on a Battery Swapping Van”, Energies,2017.
  11. H. Zhang, Z. Hu, Z. Xu, and Y. Song, “Optimal Planning of PEV Charging Station with Single Output Multiple Cables Charging Spots”, IEEE Trans. Smart Grid, vol. 8, no. 5, pp. 2119–2128, Sep 2017.
  12. Liu, W., Niu, S., Xu, H., and Li, “A new method to plan the capacity and location of battery swapping station for electric vehicle