
DESIGNÂ ANDÂ ANALYSISÂ OFÂ STEERING SYSTEM FOR LOW SPEED ELECTRIC VEHICLE (EV) | IJET â Volume 12 Issue 2 | IJET-V12I2P130

Table of Contents
ToggleInternational Journal of Engineering and Techniques (IJET)
Open Access ⢠Peer Reviewed ⢠High Citation & Impact Factor ⢠ISSN: 2395-1303
Volume 12, Issue 2 | Published: April 2026
Author: Karthikeyan S, Mohanapriyan E
DOI: https://doi.org/{{doi}} ⢠PDF: Download
Abstract
Electric vehicles are gaining significant importance as a sustainable and eco-friendly transportation solution, particularly for low-speed applications such as campuses, hospitals, industrial areas, airports, and tourist locations. Among the various subsystems of a vehicle, the steering system plays a crucial role in ensuring safe maneuverability, directional control, and driver comfort. This project focuses on the design and analysis of a steering system for a low-speed electric vehicle. The design is based on Ackermann steering geometry, which ensures proper angular relationship between the inner and outer wheels during turning, thereby minimizing tyre slip and improving vehicle stability. Important vehicle parameters such as wheelbase, track width, and turning radius are considered in the design process. Analytical calculations are carried out to determine steering angles, steering arm length, and tie rod length for efficient steering operation. The proposed design aims to reduce steering effort, enhance maneuverability, and improve overall steering performance. The results demonstrate that the designed steering system is reliable, cost-effective, and suitable for implementation in low-speed electric vehicles used in various practical applications.
Keywords
Electric Vehicle, Steering System, Ackermann Steering Geometry, Vehicle Design, Maneuverability
Conclusion
The steering system for the low-speed electric vehicle has been successfully designed and analyzed. The application of Ackermann steering geometry ensures proper wheel alignment during turning, minimizing tyre slip and improving efficiency. The system provides enhanced maneuverability, reduced steering effort, and improved stability. The proposed design is simple, cost-effective, and suitable for practical implementation in low-speed electric vehicles.
References
[1]Mahalingam, S., âSteering Dynamics in Electric Vehicles,â International Journal of Vehicle Structures, 2021.
[2]Jadhav, S., et al., âComparative Study of Steering Mechanisms for Electric Carts,â IOSR Journal of Mechanical Engineering, 2020.
[3]Sharma, P., & Verma, R., âDesign Considerations of Steering System for Electric Vehicles,â International Journal of Automotive Engineering, 2019.
[4]Kumar, R., & Singh, B., âDesign and Analysis of Rack and Pinion Steering System,â International Journal of Mechanical Engineering, 2018.
[5]Verma, S., & Mehta, K., âAckermann Steering Geometry and Its Applications,â International Journal of Mechanical Studies, 2016.
[6]Rajamani, R., Vehicle Dynamics and Control, Springer, 2012.
[7]Wong, J. Y., Theory of Ground Vehicles, John Wiley & Sons, 2008.
Cite this article
APA
{{author}} (April 2026). {{title}}. International Journal of Engineering and Techniques (IJET), 12(2). https://doi.org/{{doi}}
{{author}}, â{{title}},â International Journal of Engineering and Techniques (IJET), vol. 12, no. 2, April 2026, doi: {{doi}}.
