Hoverboard-Assisted Smart Ride System

Authors

  • Dharshan K
  • H. U. Khan
  • Murthy
  • Sahana H. S.
  • Sapna P. J.

Keywords:

Eco-friendly, Electronic control unit, Gyroscope sensor, Radio-frequency identification (RFID), Rechargeable batteries, Segway E-bike, Telegram notification

Abstract

The development of the e-bike aims to increase mobility and energy efficiency in personal transportation. In this paper, the motor powers the scooter’s wheels, resulting in a smooth and efficient ride. It has a standard braking system and an accelerator to control speed. Because it uses rechargeable batteries, the scooter is an eco-friendly mode of transportation. Its performance and functionality are enhanced by incorporating a variety of electronic components. The scooter’s electronic control unit (ECU) is based on ESP32 with advanced features and functions. This paper aims to create a sustainable and effective way to travel on foot using technology and mobility. This scooter stands out because its electronic control unit provides users with useful real-time ride information. The gyroscope sensor improves stability for safer and more comfortable riding during turns and manoeuvres. The RFID security system prevents unauthorized access by requiring a card or key fob. To address the issue of a higher percentage of deaths caused by delayed responses to severe motorcycle accidents, an IoT-based fall detection and tracking system with Telegram and SMS notification has been proposed. The integration of these technologies makes the Segway e-bike scooter a significant advancement in the field of personal electric vehicles.

References

M. Karthick, K. S. P. Kumar, P. Nikile C.V., R. Ramya and S. R. Mohanrajan, “Electric Hover Board,” 2020 IEEE PES/IAS PowerAfrica, Nairobi, Kenya, 2020, pp. 1-5, doi: https://doi.org/10.1109/PowerAfrica49420.2020.9220005

S. Sujitha, D. A. Dixen, D. V. Devadiga, P. Dony Snehit and K. Harshita, “Design of electric vehicle with self-balance approach using gyroscopic effect and autonomous systems,” 2024 8th International Conference on Inventive Systems and Control (ICISC), Coimbatore, India, 2024, pp. 540-543, doi: https://doi.org/10.1109/ICISC62624.2024.00095

S. N. Razali, K. A. Fariza Abu Samah, M. H. Ahmad and L. S. Riza, “IoT based accident detection and tracking system with Telegram and SMS notifications,” 2021 6th IEEE International Conference on Recent Advances and Innovations in Engineering (ICRAIE), Kedah, Malaysia, 2021, pp. 1-5, doi: https://doi.org/10.1109/ICRAIE52900.2021.9703970

B. Wang et al., “Fuzzy logic optimized threshold-based energy management strategy for fuel cell hybrid E-bike,” International Journal of Hydrogen Energy, vol. 63, pp. 123–132, Mar. 2024, doi: https://doi.org/10.1016/j.ijhydene.2024.03.100

Y.-C. Liu and S.-B. Chang, “Design and implementation of a smart lithium-ion battery capacity estimation system for e-bike,” World Electric Vehicle Journal, vol. 4, no. 2, pp. 370–378, Jun. 2010, doi: https://doi.org/10.3390/wevj4020370

Y. Yao, Z. Ma, and Z. Cao, “Long-range shared bike communication system based on LoRaWAN Protocol”, International Conference on Embedded Wireless Systems and Networks (EWSN) 2019, Beijing, China, pp. 407-412, Feb. 2019. Available: https://www.ewsn.org/file-repository/ewsn2019/407_412_yao.pdf

P. Gao and J. Li, “Understanding sustainable business model: A framework and a case study of the bike-sharing industry,” Journal of Cleaner Production, vol. 267, p. 122229, Sep. 2020, doi: https://doi.org/10.1016/j.jclepro.2020.122229

S. Chavhan, D. Gupta, B. N. Chandana, A. Khanna, and J. J. P. C. Rodrigues, “IoT-based context-aware intelligent public transport system in a metropolitan area,” IEEE Internet of Things Journal, vol. 7, no. 7, pp. 6023-6034, July 2020, doi: https://doi.org/10.1109/JIOT.2019.2955102

A. S. Kumar, G. Jagruthi, M. B. Prakash, J. Gireesha, N. Sreenath, and A. U. Kiran “ELECTRIC-BIKE”, International Journal of Creative Research Thoughts (IJCRT), Vol. 11, no. 4, pp. 700-705, Apr. 2023, Available: https://www.ijcrt.org/papers/IJCRT2304708.pdf

T. A. Bagul, R. P. Patil, S. R. Karanjkar, T. N. Kandekar, and P. K. Sonawane “Hoverboard with handle segway”, International Journal of Advanced Research in Science, Communication and Technology (IJARSCT), Vol. 2, no. 7, pp. 424, May 2022, Available: https://ijarsct.co.in/A4370.pdf

A. A. J, L. U. Hakeem, R. J., and P. K. L “Electric hoverboard”, Journal of Emerging Technologies and Innovative Research (JETIR), June 2021, vol. 8, no. 6, pp. 47-52, Jun. 2021, Available: https://www.jetir.org/papers/JETIRET06010.pdf

Dilip I Sangotra, Mohan Mendhe, Surendra D Kshirsagar, and Ram Tamboli "Mathematical modelling of hover board”, International Conference on Research Frontiers in Sciences (ICRFS 2021), Journal of Physics: Conference Series, IOP Publishing, pp. 1-6, 2021 Available: https://iopscience.iop.org/article/10.1088/1742-6596/1913/1/012102/pdf

A. M., S. P. J., and S. Vedagarbham, “Review on design and development of dual-band helical antenna for Lora applications” International Research Journal of Engineering and Technology (IRJET), vol. 6, no. 1, pp. 1191-1194, Jan 2019, Available: https://www.irjet.net/archives/V6/i1/IRJET-V6I1221.pdf

H. Guo, R. Huang, and Z. Xu, “The design of intelligent highway transportation system in the smart city based on the internet of things,” Scientific Reports, vol. 14, no. 1, Nov. 2024, doi: https://doi.org/10.1038/s41598-024-79903-0

A. B. S, and S. P J “Indoor warehouse management using drones,” International Journal of Scientific Research in Engineering and Management (IJSREM), vol. 4 no. 9, pp. 1-4, Sept. 2020, Available: file:///C:/Users/Lenovo/Downloads/Indoor%20Warehouse%20Management%20using%20Drones.pdf

Published

2025-04-11

How to Cite

Dharshan K, H. U. Khan, Murthy, Sahana H. S., & Sapna P. J. (2025). Hoverboard-Assisted Smart Ride System. Journal of Electronics Design and Technology, 36–44. Retrieved from https://matjournals.net/engineering/index.php/JEDT/article/view/1687