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用于电动汽车超快充电站的多端口转换器集成可再生能源:综述。

Integration of renewable energy sources using multiport converters for ultra-fast charging stations for electric vehicles: An overview.

作者信息

Suvvala Jayaprakash, K Sathish Kumar, Dhananjayulu C, Kotb Hossam, Elrashidi Ali

机构信息

School of Electrical Engineering, Vellore Institute of Technology, Vellore, Tamil Nadu, India.

Department of Electrical Power and Machines, Faculty of Engineering, Alexandria University, Alexandria, 21544, Egypt.

出版信息

Heliyon. 2024 Aug 3;10(15):e35782. doi: 10.1016/j.heliyon.2024.e35782. eCollection 2024 Aug 15.

Abstract

The rise of electric vehicles (EVs) necessitates an efficient charging infrastructure capable of delivering a refueling experience akin to conventional vehicles. Innovations in Extreme Fast Charging (EFC) offer promising solutions in this regard. By harnessing renewable energy sources and employing sophisticated multiport converters, EFC systems can meet the evolving demands of EV refueling. A single-stage topology simplifies the converter design, focusing on efficient DC-AC conversion, vital for feeding solar power into the grid or charging stations. It provides power factor correction, harmonics filtering, and mitigates power quality issues, ensuring stable and efficient operations. Converters with Maximum Power Point Tracking (MPPT) capability facilitate the efficient integration of solar PV systems in charging stations, ensuring maximum solar energy utilization for EV charging. The ability to operate in different modes allows seamless integration with energy storage systems, storing excess solar energy for use during night-time or peak demand periods, enhancing overall efficiency and reliability. Advanced converters support bidirectional energy flow, enabling EV batteries to discharge back to the grid, aiding grid stability and energy management. However, robust control algorithms are needed to handle dynamic conditions like partial shading more effectively. Our review focuses on integrating renewable energy sources with multiport converters, providing insights into a novel EV charging station framework optimized for EFC topology. We highlight the advantages of multiport non-isolated converters over traditional line frequency transformers, particularly in medium voltage scenarios, offering enhanced efficiency and versatility for EFC applications.

摘要

电动汽车(EV)的兴起需要一种高效的充电基础设施,能够提供类似于传统车辆的加油体验。极快速充电(EFC)方面的创新在这方面提供了有前景的解决方案。通过利用可再生能源并采用先进的多端口转换器,EFC系统可以满足电动汽车充电不断变化的需求。单级拓扑简化了转换器设计,专注于高效的直流-交流转换,这对于将太阳能输入电网或充电站至关重要。它提供功率因数校正、谐波滤波,并减轻电能质量问题,确保稳定高效的运行。具有最大功率点跟踪(MPPT)能力的转换器有助于太阳能光伏系统在充电站中的高效集成,确保电动汽车充电时最大限度地利用太阳能。在不同模式下运行的能力允许与储能系统无缝集成,存储多余的太阳能以供夜间或高峰需求时段使用,提高整体效率和可靠性。先进的转换器支持双向能量流动,使电动汽车电池能够向电网放电,有助于电网稳定性和能源管理。然而,需要强大的控制算法来更有效地处理诸如部分阴影等动态情况。我们的综述重点关注可再生能源与多端口转换器的集成,深入了解针对EFC拓扑优化的新型电动汽车充电站框架。我们强调多端口非隔离转换器相对于传统工频变压器的优势,特别是在中压场景下,为EFC应用提供更高的效率和通用性。

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