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A mathematical representation of an energy management strategy for hybrid energy storage system in electric vehicle and real time optimization using a genetic algorithm

机译:电动汽车混合动力储能系统能量管理策略的数学表示和使用遗传算法的实时优化

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This paper proposes a simple and easily optimizable mathematical representation of an energy management strategy (EMS) for the hybrid energy storage system (HESS) in EV. The power of each device in the HESS is provided as a continuous function of load power called y. Two strategies based on the proposed method, one incorporating fixed coefficients of the y function (GBS) and one with coefficients optimized by a genetic algorithm (GAS) in real-time using a backward time window, are tested and compared to the rule-based strategy (RBS) and battery storage system. The calculations are made for an electric car With a LiFePO4 battery-supercapacitor HESS. The analyzed parameters are: energy consumption, RMS and maximum current rates of the battery, and the cycle cost of an EV with HESS and a battery-powered EV. The analysis is made in dependence on drive cycle speed and an internal resistance of the battery module. The obtained results show that the GBS and the GAS are able to reduce the RMS current rate by 40% in the NEDC in comparison to battery-powered EV, as well as that maximum current rates do not exceed nominal values. The GAS aims at the minimization of energy consumption. It obtains best results in low speed cycles. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种用于电动汽车混合动力储能系统(HESS)的能源管理策略(EMS)的简单且易于优化的数学表示。 HESS中每个设备的功率是作为称为y的负载功率的连续函数提供的。测试了两种基于所提出方法的策略,一种策略结合了y函数的固定系数(GBS),一种策略利用遗传算法(GAS)使用反向时间窗口实时地对系数进行了优化,并将其与基于规则的策略进行了比较策略(RBS)和电池存储系统。计算是针对具有LiFePO4电池超级电容器HESS的电动汽车进行的。分析的参数为:能耗,RMS和电池的最大电流率,以及具有HESS和电池供电的EV的电动汽车的循环成本。根据驱动循环速度和电池模块的内部电阻进行分析。获得的结果表明,与电池供电的电动汽车相比,GBS和GAS能够将NEDC中的RMS电流率降低40%,并且最大电流率不超过标称值。 GAS旨在最大程度地降低能耗。在低速循环中可获得最佳结果。 (C)2017 Elsevier Ltd.保留所有权利。

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