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Control strategies for high-power electric vehicles powered by hydrogen fuel cell, battery and supercapacitor

机译:由氢燃料电池,电池和超级电容器驱动的大功率电动汽车的控制策略

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Problems relating to oil supply, pollution, and green house effects justify the need for developing of new technologies for transportation as a replacement for the actual technology based on internal combustion engines (ICE). Fuel cells (FCs) are seen as the best future replacement for ICE in transportation applications because they operate more efficiently and with lower emissions. This paper presents a comparative study performed in order to select the most suitable control strategy for high-power electric vehicles powered by FC, battery and supercapacitor (SC), in which each energy source uses a DC/DC converter to control the source power and adapt the output voltage to the common DC bus voltage, from where the vehicle loads are supplied. Five different controls are described for this kind of hybrid vehicles: a basic control based on three operation modes of the hybrid vehicle depending on the state of charge (SOC) of the battery (operation mode control); a control strategy based on control loops connected in cascade, whose aim is to control the battery and SC SOC (cascade control); a control based on the technique of equivalent fuel consumption, called equivalent consumption minimization strategy (ECMS); and two based on control techniques very used nowadays, the first one of them is a fuzzy logic control and the second one is a predictive control. These control strategies are tested and compared by applying them to a real urban street railway. The simulation results reflect the optimal performance of the presented control strategies and allow selecting the best option for being used in this type of high-power electric vehicles.
机译:与石油供应,污染和温室效应有关的问题证明,有必要开发新的交通运输技术,以替代基于内燃机(ICE)的实际技术。燃料电池(FC)被认为是运输应用中ICE的最佳未来替代品,因为它们可以更高效地运行并且排放更低。本文提出了一项比较研究,以便为由FC,电池和超级电容器(SC)供电的大功率电动汽车选择最合适的控制策略,其中每个能源都使用DC / DC转换器来控制电源和使输出电压适应公共直流母线电压,从那里提供车辆负载。对于这种混合动力车辆,描述了五个不同的控制:基于混合动力车辆的三种操作模式的基本控制,取决于电池的充电状态(SOC)(操作模式控制);一种基于级联连接的控制回路的控制策略,其目的是控制电池和SC SOC(级联控制);基于等效燃料消耗技术的控制,称为等效消耗最小化策略(ECMS);两种基于当今非常流行的控制技术,第一种是模糊逻辑控制,第二种是预测控制。通过将这些控制策略应用于实际的城市街道铁路,进行了测试和比较。仿真结果反映了所提出的控制策略的最佳性能,并允许选择用于此类大功率电动汽车的最佳选择。

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