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A Hybrid Energy Storage System for an Electric Vehicle and Its Effectiveness Validation

机译:一种用于电动车的混合能储能系统及其有效性验证

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摘要

A hybrid energy storage system (HESS), which consists of a battery and a supercapacitor, presents good performances on both the power density and the energy density when applying to electric vehicles. In this research, an HESS is designed targeting at a commercialized EV model and a driving condition-adaptive rule-based energy management strategy (EMS) is proposed for the HESS, which takes into account the superiority achievement of each ESS and also the protection to each ESS. The effectiveness of the HESS plus the EMS compared to the single battery case is validated by both the computer simulation and the semi-physical rapid control prototype (RCP) test bench. An electric loading equipment is adopted in the RCP experiment validation for simulating the vehicle driving cycle instead of the traditional combination of a motor and a dynamometer. Both validation results show that compared to the single battery case, the working status of the battery is stabilized by the addition of the supercapacitor in the HESS case during both the propelling and regeneration modes and the battery energy is also saved. A dynamic degradation model for the battery is adopted in order to evaluate the life cycle cost of the HESS. Results show that the HESS plus the EMS has the effect of prolonging the battery lifetime and the HESS is economically effective compared to the single battery case.
机译:一种混合能量存储系统(HESS),其由电池和超级电容器构成,在施加到电动车辆时,在功率密度和能量密度上具有良好的性能。在这项研究中,在商业化的EV模型上瞄准一个HESS,并为HESS提出了一种驾驶条件自适应规则的能源管理策略(EMS),这考虑了每个ESS的优越性,以及保护每个ESS。通过计算机仿真和半物理快速控制原型(RCP)测试台,验证了HESS加上EMS的效果。在RCP实验验证中采用电装载设备,用于模拟车辆驾驶循环而不是电机和测功机的传统组合。这两个验证结果表明,与单个电池外壳相比,在推进和再生模式下,通过在荷壳中添加超级电容器和电池能量也被保存,电池的工作状态稳定。采用电池的动态劣化模型,以评估HESS的生命周期成本。结果表明,与单电池盒相比,HESS加上EMS具有延长电池寿命的效果,并且HESS经济有效。

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