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Modeling and Control of Flexible HEV Charging Station upgraded with Flywheel Energy Storage

机译:飞轮储能升级的柔性HEV充电站建模与控制

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摘要

This paper deals with the design of a fast DC charging station (FCS) for hybrid electric vehicles (HEVs) that is connected at a remote location. Power rating of this new technology can go up to a hundred kW and it represents a main challenge for its broad acceptance in distribution systems. In that sense, growing number of these stations, if operated in a nonflexible regime, will start to cause problems in future distribution systems such as overloads of local network’s corridors and reduction of its total equivalent spinning reserves. A power balancing strategy based on a local energy storage system (ESS) is proposed in this paper. Flywheel has been selected as the means of storing energy as it provides high power density and does not have significant performance degradation along its lifetime. Implemented control algorithm uses the energy stored in flywheel to compensate for the peak of power introduced by HEV charger, avoiding big initial stress in grid converter and also is able to limit the maximum extracted power. In addition, feed-forward compensation has been implemented to reduce the voltage dip within the station. Real time simulation results, that prove the validity of proposed approach, have been presented.
机译:本文介绍了一种用于混合动力汽车(HEV)的快速DC充电站(FCS)的设计,该充电站连接在远程位置。这项新技术的额定功率可达100 kW,对于其在配电系统中的广泛接受而言,这是一个主要挑战。从这个意义上讲,如果这些站的运行方式不灵活,将会开始在未来的配电系统中引发问题,例如局域网络走廊的过载和等效旋转储备总量的减少。提出了一种基于局部储能系统(ESS)的功率平衡策略。飞轮已被选作存储能量的手段,因为它提供了高功率密度,并且在其整个使用寿命期间性能均未显着下降。实施的控制算法利用飞轮中存储的能量来补偿HEV充电器引入的功率峰值,从而避免了电网转换器中较大的初始应力,并且还能够限制最大提取功率。此外,已实施前馈补偿以减少站内的电压骤降。实时仿真结果证明了所提方法的有效性。

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