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Hybrid energy storage system and energy distribution strategy for four-wheel independent-drive electric vehicles

机译:四轮独立驱动电动车的混合储能系统和能量分配策略

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This paper presents a novel topology of a hybrid energy storage system (HESS) and an improved energy distribution control strategy for four-wheel independent-drive electric vehicles (4WIDEVS) to improve their energy efficiency and dynamic performance under urban driving conditions. The small 4WIDEV was developed for only urban driving conditions and was limited to a maximum speed of 60 km/h. The HESS consists of a battery, four ultracapacitor (UC) groups and five direct current/direct current (DC/DC) converters. The 4 UC groups of the proposed HESS have two connection modes under braking conditions, namely a series-connected recovery structure (SCRS) and a parallel-connected recovery structure (PCRS). By changing the voltage ratio between the low-voltage and high-voltage sides of the DC/DC converters, the conversion efficiency can be improved, and thus, the braking energy can be effectively recovered. The upper and lower limits of the state of charge (SOC) of the UC are estimated according to the vehicle speed, and associated energy distribution rules are established to achieve a reasonable energy distribution between the battery and the UC. The proposed composite power system and energy distribution strategy were simulated, and a hardware-in-the-loop experiment was carried out on the experimental vehicle. The simulation and experimental results show that under urban driving conditions, the HESS can fully utilize the characteristics of UC, charging and discharging quickly with large current; to meet the instantaneous high power demand of electric vehicles, improve the power performance of electric vehicles, and protect the battery from the impact of large currents. The braking energy recovery efficiency of the vehicle increased by 13.53% in the simulation and by 10.26% in the experimental vehicle test. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文提出了一种混合能量存储系统(HESS)的新型拓扑,以及用于四轮独立驱动电动车辆(4WIDEV)的改进的能量分配控制策略,以提高城市驾驶条件下的能量效率和动态性能。仅为城市驾驶条件开发的小4WideV,并限制在60 km / h的最大速度。 HESS由电池,四个超级电容器(UC)组和五个直流/直流(DC / DC)转换器组成。所提出的4个UC组在制动条件下具有两个连接模式,即串联连接的恢复结构(SCR)和并联恢复结构(PCR)。通过改变DC / DC转换器的低压和高压侧之间的电压比,可以提高转换效率,因此,可以有效地回收制动能量。根据车速估计UC的充电状态(SOC)的上限和下限,并且建立了相关的能量分配规则以在电池和UC之间实现合理的能量分布。模拟了所提出的复合电力系统和能量分布策略,并在实验载体上进行硬件实验。仿真和实验结果表明,在城市驾驶条件下,HESS可以充分利用UC的特性,充电和迅速地用大电流释放;为了满足电动汽车的瞬时高功率需求,提高电动汽车的功率性能,并保护电池免受大电流的影响。在实验型载体试验中,车辆的制动能量回收效率在模拟中增加了13.53%,并且在实验型载体试验中增加了10.26%。 (c)2019 Elsevier Ltd.保留所有权利。

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