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PSO algorithm-based optimal power flow control of fuel cell/supercapacitor and fuel cell/battery hybrid electric vehicles

机译:基于PSO算法的燃料电池/超级电容器和燃料电池/电池混合动力电动汽车的最优功率流控制

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Purpose - The purpose of this paper is to optimize the design and power management control fuel cell/supercapacitor and fuel cell/battery hybrid electric vehicles and to provide a comparative study between the two configurations. Design/methodology/approach - In hybrid electric vehicles (HEVs), the power flow control and the powertrain component sizing are strongly related and their design will significantly influence the vehicle performance, cost, efficiency and fuel economy. Hence, it is necessary to assess the power flow management strategy at the powertrain design stage in order to minimize component sizing, cost, and the vehicle fuel consumption for a given driving cycle. In this paper, the PSO algorithm is implemented to optimize the design and the power management control of fuel cell/supercapacitor (FC/SC) and fuel cell/battery (FC/B) HEVs for a given driving cycle. The powertrain and the proposed control strategy are designed and simulated by using MATLAB/Simulink. In addition, a comparative study of fuel cell/supercapacitor and fuel cell/battery HEVs is analyzed and investigated for adequately selecting of the appropriate HEV, which could be used in industrial applications. Findings - The results have demonstrated that it is possible to significantly improve the hydrogen consumption in fuel cell hybrid electric vehicles (FCHEVs) by applying the PSO approach. Furthermore, by analyzing and comparing the results, the FC/SC HEV has slightly higher fuel economy than the FC/B HEV. Originality/value - The addition of electrical energy storage such as supercapacitor or battery in fuel cell-based vehicles has a great potential and a promising approach for future hybrid electric vehicles (HEV). This paper is mainly focused on the optimal design and power management control, which has significant influences on the vehicle performance. Therefore, this study presents a modified control strategy based on PSO algorithm (CSPSO) for optimizing the power sharing between sources and reducing the components sizing. Furthermore, an interleaved multiple-input power converter (EVUPC) is proposed for fuel cell hybrid electric vehicle to reduce the input current/output voltage ripples and to reduce the size of the passive components with high efficiency compared to conventional boost converter. Meanwhile, the fuel economy is improved. Moreover, a comparative study of FC/SC and FC/B HEVs will be provided to investigate the benefits of hybridization with energy storage system (ESS).
机译:目的-本文的目的是优化燃料电池/超级电容器和燃料电池/电池混合动力电动汽车的设计和电源管理控制,并对这两种配置进行比较研究。设计/方法/方法-在混合动力电动汽车(HEV)中,动力流控制和动力总成组件的尺寸密切相关,其设计将极大地影响车辆的性能,成本,效率和燃油经济性。因此,有必要在动力总成设计阶段评估动力流管理策略,以在给定的驾驶循环中将组件的尺寸,成本和车辆燃料消耗降至最低。本文采用PSO算法来优化给定行驶周期下燃料电池/超级电容器(FC / SC)和燃料电池/电池(FC / B)混合动力汽车的设计和电源管理控制。使用MATLAB / Simulink设计和仿真了动力总成和提出的控制策略。此外,对燃料电池/超级电容器和燃料电池/电池混合动力汽车的比较研究进行了分析和研究,以充分选择合适的混合动力汽车,以用于工业应用。发现-结果表明,通过采用PSO方法,可以显着改善燃料电池混合动力汽车(FCHEV)的氢消耗。此外,通过分析和比较结果,FC / SC HEV的燃油经济性略高于FC / B HEV。原创性/价值-在基于燃料电池的车辆中增加超级电容器或电池等电能存储具有巨大的潜力,并且是未来混合动力汽车(HEV)的有前途的方法。本文主要侧重于优化设计和电源管理控制,这对车辆性能具有重大影响。因此,本研究提出了一种基于PSO算法(CSPSO)的改进控制策略,用于优化电源之间的功率共享并减少组件的尺寸。此外,与传统的升压转换器相比,提出了一种用于燃料电池混合电动车辆的交错式多输入功率转换器(EVUPC),以减少输入电流/输出电压纹波并以高效率减小无源组件的尺寸。同时,提高了燃油经济性。此外,将提供FC / SC和FC / B HEV的比较研究,以研究与储能系统(ESS)杂交的好处。

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