Li Jun, Chen Wan, Zhu Xiaoqiong, Zang Baoguo, Zhang Cong, Hu Hengxiao, Zhang Ming, Lei Wenbao
Huaian Hongneng Group Co. Ltd, Huaian, Jiangsu, China.
Huaiyin Institute of Technology, Huaian, Jiangsu, China.
PLoS One. 2024 Dec 16;19(12):e0315363. doi: 10.1371/journal.pone.0315363. eCollection 2024.
This study presents an innovative dual closed-loop DC control system for intelligent electric vehicle (EV) charging infrastructure, designed to address the challenges of high power factor, low harmonic pollution, and high efficiency in EV charging applications. The research implements a three-level Pulse Width Modulation (PWM) rectifier with a diode-clamped topology and Insulated-Gate Bipolar Transistors (IGBTs), achieving a power factor of 0.99, a total harmonic distortion (THD) of 1.12%, and an efficiency of 95% through rigorous simulation. These results surpass those of wireless charging technology and bidirectional DC-DC converters, demonstrating the system's superiority in key performance metrics. The dual closed-loop strategy, integrating a current inner loop and a voltage outer loop, ensures rapid response and high steady-state accuracy, with the PI regulator effectively managing phase coupling for balanced power flow. The voltage outer loop's stability is critical for the system's reliable operation. The study also discusses the challenges in the dynamic variation of midpoint source current and proposes future work to increase the system's switching frequency, improve anti-interference capabilities, and enhance the accuracy of the sampling process. Advanced computational intelligence and optimization techniques are highlighted as essential for tackling the complex challenges of modern EV charging systems. The study contributes to the development of efficient, secure technology for the next generation of wireless networks and power systems, providing a robust empirical basis for the proposed control strategies through MATLAB/Simulink simulations. This research sets a solid foundation for the performance assessment of EV charging systems, offering high-performance, environmentally friendly, and economically viable solutions for sustainable transportation.
本研究提出了一种用于智能电动汽车(EV)充电基础设施的创新型双闭环直流控制系统,旨在应对电动汽车充电应用中高功率因数、低谐波污染和高效率等挑战。该研究采用了具有二极管箝位拓扑结构和绝缘栅双极型晶体管(IGBT)的三电平脉宽调制(PWM)整流器,通过严格的仿真实现了功率因数为0.99、总谐波失真(THD)为1.12%以及效率为95%。这些结果超过了无线充电技术和双向DC-DC转换器,证明了该系统在关键性能指标方面的优越性。双闭环策略集成了电流内环和电压外环,确保了快速响应和高稳态精度,PI调节器有效地管理相位耦合以实现平衡的功率流。电压外环的稳定性对于系统的可靠运行至关重要。该研究还讨论了中点源电流动态变化中的挑战,并提出了未来的工作方向,即提高系统的开关频率、增强抗干扰能力以及提高采样过程的精度。先进的计算智能和优化技术被强调为应对现代电动汽车充电系统复杂挑战的关键。该研究为下一代无线网络和电力系统的高效、安全技术发展做出了贡献,通过MATLAB/Simulink仿真为所提出的控制策略提供了坚实的经验基础。这项研究为电动汽车充电系统的性能评估奠定了坚实基础,为可持续交通提供了高性能、环保且经济可行的解决方案。