Green Wheels: Solaris Campus Cruiser in Action

Year : 2024 | Volume :02 | Issue : 01 | Page : 30-40
By

Aswathy A.S.

Anandhu B

Ananthakrishnan K.P

Supriya S.P

Shibin D.H

  1. Student Department of Electrical and Electronics Engineering, College of Engineering Muttathara, Trivandrum Kerala India
  2. Student Department of Electrical and Electronics Engineering, College of Engineering Muttathara, Trivandrum Kerala India
  3. Student Department of Electrical and Electronics Engineering, College of Engineering Muttathara, Trivandrum Kerala India
  4. Student Department of Electrical and Electronics Engineering, College of Engineering Muttathara, Trivandrum Kerala India
  5. Assistant Professor Department of Electrical and Electronics Engineering, College of Engineering Muttathara, Trivandrum Kerala India

Abstract

The publicly funded transportation system has become expensive due to the growing trends of industry and global economic growth, which have resulted in fluctuating gas prices and other price increases. Innovation can be used to solve any of these issues. Improving the usage of renewable energy sources, such as solar power, in place of fossil fuels is one of the most practical ways to address the problems. The aspiration of all people to possess a solar car that may be used for commerce is gradually coming true. Affordable electric automobiles are now accessible. This chance is used to design a four-wheeler driven by solar energy. The vast and intricate facets of many different disciplines are covered in the multidisciplinary field of renewable energy the design of vehicles. The photovoltaic system in the car is its power source, and the produced voltage it stores in its battery feeds the Continuous The magnet DC motor, which turns the vehicle’s rear wheels.

Keywords: Permanent Magnet D C Motor, Maximum Power Point Tracking, Electric Vehicle, Lead Acid Battery, Solar Charge Controller

[This article belongs to International Journal of Energy and Thermal Applications(ijeta)]

How to cite this article: Aswathy A.S., Anandhu B, Ananthakrishnan K.P, Supriya S.P, Shibin D.H. Green Wheels: Solaris Campus Cruiser in Action. International Journal of Energy and Thermal Applications. 2024; 02(01):30-40.
How to cite this URL: Aswathy A.S., Anandhu B, Ananthakrishnan K.P, Supriya S.P, Shibin D.H. Green Wheels: Solaris Campus Cruiser in Action. International Journal of Energy and Thermal Applications. 2024; 02(01):30-40. Available from: https://journals.stmjournals.com/ijeta/article=2024/view=0

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References

  1. R. Chandra Mouli, P. Bauer and M. Zeman, “System design for a solar powered electric vehicle charging station for workplaces” Applied Energy, Vol 168, pp 434-443, 2016.
  2. Inba Rexy and R. Seyezhai, “A comparative study of active power factor correction ac-dc converters for electric vehicle applications” ARPN Journal of Engineering and Applied Sciences, Vol. 8, No. 9, Sep 2013.
  3. Gurkaynak Y, Khaligh A. Control and power management of a grid connected residential photovoltaic system with plug-in hybrid electric vehicle (PHEV) load. In: 2009 Twenty-fourth annual IEEE appl power electron conf expo, IEEE; 2009. p. 2086–91.
  4. Maggeto and J. Van Mierlo, “Electric and electric hybrid vehicle technology: a survey,” in Proc. IEE Seminar on Electric, Hybrid and Fuel Cell Vehicles, 2000, 1/1-11.
  5. Ke Bao, Shuhui Li and Huiying Zheng, “ Battery Charge and Discharge Control for Energy Management in EV and Utility Integration” ,2012 IEEE.
  6. Mitsukuri, Y., Hara, R., Kita, H., Kamiya, E., Hiraiwa, N., & Kogure, E. (2012, May). Voltage regulation in distribution system utilizing electric vehicles and communication. In PES T&D 2012 (pp.1-6). IEEE.
  7. Nayak, S., Mohanty, S., & Saikia, H. J. (2017, December). An improved control method for the DC-DC converter in vehicle to grid charging system. In 2017 14th IEEE India Council International Conference (INDICON) (pp. 1-6). IEEE.
  8. Arancibia, A., & Strunz, K. (2012, March). Modeling of an electric vehicle charging station for fast DC charging. In 2012 IEEE International Electric Vehicle Conference (pp. 1-6). IEEE.
  9. Das, H. S., Nurunnabi, M., Salem, M., Li, S., & Rahman, M. M. (2022). Utilization of electric vehicle grid integration system for power grid ancillary services. Energies, 15(22), 8623.
  10. Kumar, M., Panda, K. P., Naayagi, R. T., Thakur, R., & Panda, G. (2023). Comprehensive Review of Electric Vehicle Technology and Its Impacts: Detailed Investigation of Charging Infrastructure, Power Management, and Control Techniques. Applied Sciences, 13(15), 8919.

Regular Issue Subscription Review Article
Volume 02
Issue 01
Received May 20, 2024
Accepted June 20, 2024
Published July 15, 2024

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