A Comprehensive Analysis: Integrating Renewable Energy Sources With Wire/Wireless EV Charging Systems for Green Mobility | IEEE Journals & Magazine | IEEE Xplore

A Comprehensive Analysis: Integrating Renewable Energy Sources With Wire/Wireless EV Charging Systems for Green Mobility


Architecture of renewable energy-based EV charger.

Abstract:

Integrating renewable energy resources into the existing generation capacity can handle the additional load resulting from the EV charging system, even when the majority ...Show More
Society Section: IEEE Power & Energy Society Section

Abstract:

Integrating renewable energy resources into the existing generation capacity can handle the additional load resulting from the EV charging system, even when the majority of the EVs are charged during off-peak hours. This paper comprehensively analyzes EV charging methods with a particular focus on both grid-based direct charging and the utilization of renewable energy sources. However, the most practical approach for EV charging is through large-scale grid-based renewable energy stations. This study outlines the significant challenges facing the application of EV chargers. Overcoming these challenges is vital for the widespread adoption of new technologies such as Wireless power transfer charging systems in the EV sector. Wireless charging technology still faces several issues, such as energy loss during transmission, alignment between the coils, and quick and safe power delivery. One of the significant challenges facing wireless chargers is the need to optimize efficiency while ensuring convenient and reliable charging as outlined in this study. Different wireless charger configurations are presented for stationary EV charging systems by incorporating photovoltaic systems into charging stations and supervisory bases. The application of series-series wireless charger system as an emerging technology for EV chargers is analyzed and simulated as a recommended solution for EV wireless chargers. The system overall efficiency is approximately 98%. The charging system can operate reliably by mitigating the effects of load and grid disturbances.
Society Section: IEEE Power & Energy Society Section
Architecture of renewable energy-based EV charger.
Published in: IEEE Access ( Volume: 12)
Page(s): 140527 - 140555
Date of Publication: 23 September 2024
Electronic ISSN: 2169-3536

Funding Agency:

References is not available for this document.

Select All
1.
A. Mewafy, I. Ismael, S. S. Kaddah, W. Hu, Z. Chen and S. Abulanwar, "Optimal design of multiuse hybrid microgrids power by green hydrogen–ammonia", Renew. Sustain. Energy Rev., vol. 192, Mar. 2024.
2.
S. Abulanwar, A. Ghanem, M. E. M. Rizk and W. Hu, "Adaptive synergistic control strategy for a hybrid AC/DC microgrid during normal operation and contingencies", Appl. Energy, vol. 304, Dec. 2021.
3.
A. Goroumaru, Y. Endo, N. Takehiro, Y. Kawagoe and D. Frenkel, "Promotion of EV shift by smart charging service", Proc. 9th Int. Conf. Renew. Energy Res. Appl. (ICRERA), pp. 457-460, Sep. 2020.
4.
G. Parise, M. Allegri and R. Pennacchia, "Modular distribution system for EV parks", Proc. AEIT Int. Conf. Electr. Electron. Technol. Automot. (AEIT AUTOMOTIVE), pp. 1-6, Nov. 2021.
5.
A. K. Singh, A. K. Mishra, K. K. Gupta, P. Bhatnagar and T. Kim, "An integrated converter with reduced components for electric vehicles utilizing solar and grid power sources", IEEE Trans. Transport. Electrific., vol. 6, no. 2, pp. 439-452, Jun. 2020.
6.
A. Choudhary, S. Fatima and B. K. Panigrahi, "State of the art technologies in fault diagnosis of electric vehicles: A component-based review", IEEE Trans. Transport. Electrific., vol. 9, no. 2, pp. 2324-2347, Sep. 2023.
7.
Y.-C. Chen, C.-P. Pan, C.-L. Lin, C.-H. Hwang and H. Chen, "Photovoltaic energy harvesting in indoor environments", Proc. IEEE Int. Instrum. Meas. Technol. Conf. (I MTC), pp. 1-5, May 2018.
8.
V. Martynyuk, G. Il’chuk and R. Petrus, "Energy harvesting systems from photovoltaic modules", Proc. IEEE 12th Int. Conf. Electron. Inf. Technol. (ELIT), pp. 138-143, May 2021.
9.
S. Rahman, S. Saha, S. N. Islam, M. T. Arif, M. Mosadeghy, M. E. Haque, et al., "Analysis of power grid voltage stability with high penetration of solar PV systems", IEEE Trans. Ind. Appl., vol. 57, no. 3, pp. 2245-2257, May 2021.
10.
A. Charadsuksawat, Y. Laoonual and N. Chollacoop, "Comparative study of hybrid electric vehicle and conventional vehicle under new European driving cycle and Bangkok driving cycle", Proc. IEEE Transp. Electrific. Conf. Expo Asia–Pacific (ITEC Asia–Pacific), pp. 1-6, Jun. 2018.
11.
A. Biswas, M. Acquarone, H. Wang, F. Miretti, D. A. Misul and A. Emadi, "Safe reinforcement learning for energy management of electrified vehicle with novel physics-informed exploration strategy", IEEE Trans. Transport. Electrific., Feb. 2024.
12.
C. G. Colombo, S. M. Miraftabzadeh, A. Saldarini, M. Longo, M. Brenna and W. Yaici, "Literature review on wireless charging technologies: Future trend for electric vehicle?", Proc. 2nd Int. Conf. Sustain. Mobility Appl. Renewables Technol. (SMART), pp. 1-5, Nov. 2022.
13.
P. Sandhya and G. K. Nisha, "Review of battery charging methods for electric vehicle", Proc. IEEE Int. Conf. Signal Process. Informat. Commun. Energy Syst. (SPICES), vol. 1, pp. 395-400, Mar. 2022.
14.
R. Bukya, B. Mangu, A. Jayaprakash and J. Ramesh, "A study on current-fed topology for wireless resonant inductive power transfer battery charging system of electric vehicle", Proc. Int. Conf. Power Electron. IoT Appl. Renew. Energy Control (PARC), pp. 415-421, Feb. 2020.
15.
C. Duan, C. Jiang, A. Taylor and K. Bai, "Design of a zero-voltage-switching large-air-gap wireless charger with low electrical stress for plugin hybrid electric vehicles", Proc. IEEE Transp. Electrific. Conf. Expo (ITEC), pp. 1-5, Jun. 2013.
16.
M. Akiyama, H. Arai, H. Sano, T. Obata, R. Arai, Y. Suzuki, et al., "Suppression of leakage magnetic fields in wireless power transfer using a sandwich structure", IEEE Access, vol. 12, pp. 103941-103948, 2024.
17.
W. Zhang, L. Xia, X. Hong, C. Gong, L. Shen, Z. Ruan, et al., "Comparison of compensation topologies for wireless charging systems in EV applications", Proc. Int. Conf. Artif. Intell. Everything (AIE), pp. 17-21, Aug. 2022.
18.
M. Gathageth, O. O. Khalifa, A. A. Hashim, N. A. Malik, F. A. Rahman and M. Z. Ahmed, "Wireless power transfer system using series-series compensation topology", Proc. 8th Int. Conf. Comput. Commun. Eng. (ICCCE), pp. 115-120, Jun. 2021.
19.
M. C. Hoang, K. T. Nguyen, V. H. Le, J. Kim, E. Choi, B. Kang, et al., "Independent electromagnetic field control for practical approach to actively locomotive wireless capsule endoscope", IEEE Trans. Syst. Man Cybern. Syst., vol. 51, no. 5, pp. 3040-3052, May 2021.
20.
J. Liu, Y. Zhang, Z. Wang and M. Cheng, "Design of a high-efficiency wireless charging system for electric vehicle", Proc. 1st Workshop Wide Bandgap Power Devices Appl. Asia (WiPDA Asia), pp. 40-44, May 2018.
21.
Y. Xiang, S. Hu, Y. Liu, X. Zhang and J. Liu, "Electric vehicles in smart grid: A survey on charging load modelling", IET Smart Grid, vol. 2, no. 1, pp. 25-33, Mar. 2019.
22.
S. Wang, S. Bi, Y. A. Zhang and J. Huang, "Electrical vehicle charging station profit maximization: Admission pricing and online scheduling", IEEE Trans. Sustain. Energy, vol. 9, no. 4, pp. 1722-1731, Oct. 2018.
23.
S. Deb, K. Kalita and P. Mahanta, "Review of impact of electric vehicle charging station on the power grid", Proc. Int. Conf. Technol. Advancements Power Energy (TAP Energy), pp. 1-6, Dec. 2017.
24.
S. S. G. Acharige, M. E. Haque, M. T. Arif, N. Hosseinzadeh, K. N. Hasan and A. M. T. Oo, "Review of electric vehicle charging technologies standards architectures and converter configurations", IEEE Access, vol. 11, pp. 41218-41255, 2023.
25.
H. H. Wu, A. Gilchrist, K. Sealy, P. Israelsen and J. Muhs, "A review on inductive charging for electric vehicles", Proc. IEEE Int. Electr. Mach. Drives Conf. (IEMDC), pp. 143-147, May 2011.
26.
M. R. Khalid, I. A. Khan, S. Hameed, M. S. J. Asghar and J.-S. Ro, "A comprehensive review on structural topologies power levels energy storage systems and standards for electric vehicle charging stations and their impacts on grid", IEEE Access, vol. 9, pp. 128069-128094, 2021.
27.
H. Wu, "A survey of battery swapping stations for electric vehicles: Operation modes and decision scenarios", IEEE Trans. Intell. Transp. Syst., vol. 23, no. 8, pp. 10163-10185, Aug. 2022.
28.
H. Zhu, H. Li, G. Liu, Y. Ge, J. Shi, H. Li, et al., "Energy storage in high variable renewable energy penetration power systems: Technologies and applications", CSEE J. Power Energy Syst., vol. 9, no. 6, pp. 2099-2108, 2023.
29.
S. A. Q. Mohammed and J.-W. Jung, "A comprehensive state-of-the-art review of wired/wireless charging technologies for battery electric vehicles: Classification/common topologies/future research issues", IEEE Access, vol. 9, pp. 19572-19585, 2021.
30.
A. P. Lokhande, "Review of static and dynamic wireless electric vehicle charging system", Int. J. Res. Appl. Sci. Eng. Technol., vol. 10, no. 2, pp. 127-137, Feb. 2022.

References

References is not available for this document.