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A multicell battery system design for electric and plug-in hybrid electric vehicles

机译:电动和插电式混合动力汽车的多节电池系统设计

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The performance of electric vehicles (EVs) and plug-in hybrid electric vehicle (PHEVs) strongly relies on their battery storage system, which consists of multiple battery cells connected in series and parallel. However, cell state variations are commonly present, which reduces the energy conversion efficiency of the battery system. Furthermore, in a large battery system the risk of catastrophic faults of cells increases because a large numbers of cells are used. To solve these problems, this paper proposes a novel power electronics-enabled, self-X, multicell battery system design. The proposed battery system can self-heal from failures or abnormal operations of single or multiple cells and self-balance from cell state variations. These features are achieved by a cell switching circuit and a high-performance battery management system (BMS). The proposed design is validated by simulation studies in MATLAB Simulink for a battery system containing five modules connected in series, where each module consists of 6×3 cylindrical lithium-ion cells. The proposed design is scalable to large battery systems for EV/PHEV applications.
机译:电动汽车(EV)和插电式混合动力汽车(PHEV)的性能在很大程度上取决于其电池存储系统,该系统由多个串联和并联连接的电池单元组成。然而,通常存在电池单元状态变化,这降低了电池系统的能量转换效率。此外,在大型电池系统中,由于使用了大量的电池,因此电池发生灾难性故障的风险增加。为了解决这些问题,本文提出了一种新颖的,具有电力电子功能的自X多电池电池系统设计。所提出的电池系统可以从单个或多个电池的故障或异常操作中自愈,并从电池状态变化中自平衡。这些功能通过电池开关电路和高性能电池管理系统(BMS)实现。通过在MATLAB Simulink中进行的仿真研究对包含五个串联连接的模块的电池系统进行了验证,所提出的设计得到了验证,其中每个模块均由6×3圆柱形锂离子电池组成。拟议的设计可扩展至EV / PHEV应用的大型电池系统。

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