Sahil Shelke,
Rahul Bibave,
Dr. D. B. Pardeshi,
- Student, Department of Electrical Engineering Sanjivani College of Engineering , Kopargaon, Maharashtra, India
- Student, Department of Electrical Engineering Sanjivani College of Engineering , Kopargaon, Maharashtra, India
- Head of Department, Department of Electrical Engineering Sanjivani College of Engineering , Kopargaon, Maharashtra, India
Abstract
In today’s world, we are using conventional energy sources in a larger amount. To reduce it we must move to use an alternative source, it means replacing the diesel and petrol vehicles with an electric vehicle, which is the best option. The rapid expansion of electric vehicles (EVs) is expected to make them a major contributor to transportation. Increasing fossil fuel use has resulted in greenhouse gas emissions that are crucial for the development of a sustainable transport system. Both industrialized and developing nations will pursue long-term plans to replace gasoline-powered cars with electric or hybrid models and use renewable energy sources to produce electricity, which will expand the number of charging stations. Researchers are attempting to create clever solutions to fulfill the rising demand for EV chargers. Nevertheless, maintaining the quality of electricity and meeting peak demand on the grid has been challenging due to many EVs being used. To enhance the design and installation of charging stations, information on EV charging controls is provided in this document. This report provides a detailed analysis of the different types of EVs, global charging standards, and converter architecture for Alternating Current- Direct Current (AC-DC) and DC converters. The paper also examines the role played by energy collectors and the diffusion of EVs in integrating power generation systems with renewables.
Keywords: Electric Vehicle, Design, Modeling, Green Energy, Battery, Charging, Discharging, grid, hybrid electric vehicle.
[This article belongs to Journal of Nuclear Engineering & Technology ]
Sahil Shelke, Rahul Bibave, Dr. D. B. Pardeshi. Advanced Design, Modeling and Optimization Techniques in Electric Vehicle Using Green Energy: A Review. Journal of Nuclear Engineering & Technology. 2024; 14(03):20-28.
Sahil Shelke, Rahul Bibave, Dr. D. B. Pardeshi. Advanced Design, Modeling and Optimization Techniques in Electric Vehicle Using Green Energy: A Review. Journal of Nuclear Engineering & Technology. 2024; 14(03):20-28. Available from: https://journals.stmjournals.com/jonet/article=2024/view=183639
References
- Giannakis E, Serghides D, Dimitriou S, Zittis G. Land transport CO2 emissions and climate change: Evidence from Cyprus. Int J Sustain Energy. 2020;39:634–47. DOI: 10.1080/14786451.2020.
- Lund H, Kempton W. Integration of renewable energy into the transport and electricity sectors through V2G. Energy Policy. 2008;36:3578–87. DOI: 10.1016/j.enpol.2008.06.007.
- Jorgensen K. Technologies for electric, hybrid and hydrogen vehicles: Electricity from renewable energy sources in transport. Util Policy. 2008;16:72–9. DOI: 10.1016/j.jup.2007.11.005.
- Bhoi SL, Shantilal Salve S, Kumar DV, Pardeshi DB, William P. Deployment of slow power hybrid electric vehicle based on combustion engine. 3rd International Conference on Electronics and Sustainable Communication Systems (ICESC); 2022. p. 231–5. DOI: 10.1109/ICESC54411.2022.
- Dhumane RA, Nikam TD, Hajare RN, Pardeshi DB, William P. Sustainable and intelligent control strategies for electric vehicle systems. 2nd International Conference on Edge Computing and Applications (ICECAA); 2023. p. 1551–5. DOI: 10.1109/ICECAA58104.2023.10212140.
- Dahatonde S, Jape N, Hajare RN, Pardeshi DB, William P. Arduino-based vehicle overload detection system for prevention of accidents using ADC. 5th International Conference on Inventive Research in Computing Applications (ICIRCA); 2023. p. 1633–6. DOI: 10.1109/ICIRCA57980.
10220821. - Roham MN, Kadam RS, Hajare R, Pardeshi DB, William P. Hybrid model for vehicle overload detection system using Arduino sensors. 5th International Conference on Inventive Research in Computing Applications (ICIRCA); 2023. p. 1431–4. DOI: 10.1109/ICIRCA57980.2023.
- Dallinger D, Wietschel M. Grid integration of intermittent renewable energy sources using price-responsive plug-in electric vehicles. Renew Sustain Energy Rev. 2012;16:3370–82. DOI: 10.1016/j.rser.2012.02.019.
- Brooks A. Vehicle-to-Grid Demonstration Project: Grid Regulation Ancillary Service with a Battery Electric Vehicle. Sand Dimas: California Air Resources Board and California Environmental Protection Agency; 2002.
- Short W, Denholm PA. Preliminary Assessment of Plug-In Hybrid Electric Vehicles on Wind Energy Markets. Golden, CO: National Renewable Energy Laboratory; 2006.
- Fathabadi H. Utilizing solar and wind energy in plug-in hybrid electric vehicles. Energy conversion and management. 2018 Jan 15;156:317-28.
- William R, Mabel Rose R, Rajaretnam S, Jaisudhan Pazhani A, Ahilan A. An effective technique to detect WiFi unauthorized access using a deep belief network. Int J Electron Commun Eng Sci. 2024;15:137–44.
- Yogeesh N, Girija DK, Rashmi M, William P. Intelligent Irrigation Systems in Agriculture Using Fuzzy Logic Techniques. In: Shukla B, Murthy BK, Hasteer N, Kaur H, Van Belle JP, editors. Intelligent IT Solutions for Sustainability in Industry 5.0 Paradigm. Springer Nature Singapore; 2024. p. 295–309. DOI: 10.1007/978-981-97-1682-1_25.
- Marriwala NK, Shukla VK, William P, Guleria K, Sobti R, Sharma S. Detection of viral messages in Twitter using context-based sentiment analysis framework. Int J Inf Technol. 2024;16:5069–75. DOI: 10.1007/s41870-024-02084-6.
- William P, Patil JM, Panda S, Venugopal A, Vidyullatha P, Kumar NM, et al. An optimized framework for implementation of smart waste collection and management system in smart cities using IoT based deep learning approach. Int J Inf Technol. 2024;16:5033–40. DOI: 10.1007/s
41870-024-02083-7. - Freris L, Infield D. Renewable Energy in Power Systems. Chichester: John Wiley & Sons; 2019.
- Lukic SM, Cao J, Bansal RC, Rodriguez F, Emadi A. Energy storage systems for automotive applications. IEEE Trans Ind Electron. 2008; 55:2258–67. DOI: 10.1109/TIE.2008.918390.
- Leitman S, Brant B. Build Your Own Electric Vehicle. New York: McGraw-Hill; 2008.
- Ehsani M, Gao Y, Emadi A. Modern Electric, Hybrid Electric, and Fuel Cell Vehicles: Fundamentals, Theory, and Design. 2nd ed. Boca Raton: CRC Press; 2009.
- Haque A, Khan MA, Kurukuru VS. Design and Control of Grid-Connected Photovoltaic System. Power Electronics and Applications Series. Boca Raton (FL): CRC Press; 2023.
- Bibave R, Kulkarni V. Maximum power extraction from wind energy system by using perturbation and observation methods. International Conference on Smart Electric Drives and Power System (ICSEDPS); Nagpur, India. 2018. p. 105–10. DOI: 10.1109/ICSEDPS.2018.8536033.
- Yeole SS, Kolhe SV, Bibave RR, Chavan VS, Kadam BB, Bodhe VS. Design of two-wheeler hybrid electric vehicle using series parallel configuration. Third International Conference on Artificial Intelligence and Smart Energy (ICAIS); 2023. p. 1595–8. DOI: 10.1109/ICAIS56108.
10073870. - Pund VS, Dongare SK, Amate PS, Jadhav DR, Bibave RR, Pardeshi DB. Soldier health monitoring and position tracking (E-vest). 4th International Conference on Electronics and Sustainable Communication Systems (ICESC); 2023. p. 257–61. DOI: 10.1109/ICESC57686.2023.10193616.
- Warule AS, Barde VR, Barshile MK, Kambhire SV, Bibave RR, Pardeshi DB. Electric reaping and fertilizing machine. 5th International Conference on Inventive Research in Computing Applications (ICIRCA); 2023. p. 1685–91. DOI: 10.1109/ICIRCA57980.2023.10220941.
- Dhameja S. Electric Vehicle Battery Systems. Oxford: Butterworth-Heinemann; 2001.

Journal of Nuclear Engineering & Technology
| Volume | 14 |
| Issue | 03 |
| Received | 08/10/2024 |
| Accepted | 17/10/2024 |
| Published | 17/11/2024 |
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