航程(航空)
练习场
电动汽车
汽车工程
计算机科学
网络拓扑
控制(管理)
工程类
功率(物理)
航空航天工程
计算机网络
物理
量子力学
人工智能
作者
David Sebastian Puma-Benavides,Javier Izquierdo-Reyes,Juan de Dios Calderón-Nájera,Ricardo A. Ramírez-Mendoza
出处
期刊:Applied sciences
[Multidisciplinary Digital Publishing Institute]
日期:2021-07-31
卷期号:11 (15): 7095-7095
被引量:31
摘要
For smart cities using clean energy, optimal energy management has made the development of electric vehicles more popular. However, the fear of range anxiety—that a vehicle has insufficient range to reach its destination—is slowing down the adoption of EVs. The integration of an auxiliary power unit (APU) can extend the range of a vehicle, making them more attractive to consumers. The increased interest in optimizing electric vehicles is generating research around range extenders. These days, many systems and configurations of extended-range electric vehicles (EREVs) have been proposed to recover energy. However, it is necessary to summarize all those efforts made by researchers and industry to find the optimal solution regarding range extenders. This paper analyzes the most relevant technologies that recover energy, the current topologies and configurations of EREVs, and the state-of-the-art in control methods used to manage energy. The analysis presented mainly focuses on finding maximum fuel economy, reducing emissions, minimizing the system’s costs, and providing optimal driving performance. Our summary and evaluation of range extenders for electric vehicles seeks to guide researchers and automakers to generate new topologies and configurations for EVs with optimized range, improved functionality, and low emissions.
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