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Thermal-Electrochemical simulation of electrochemical characteristics and temperature difference for a battery module under two-stage fast charging

机译:两级快速充电下电池模块电化学特性和温差的热电化学模拟

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摘要

The electrochemical characteristics and temperature difference are crucial for a battery module, but they are seldom taken into account in the previous works of multistage fast charging focusing on reducing charging time and temperature rise for a single battery. A multilayer electrochemical-thermal coupled model incorporating parallel connected cells inside each battery is developed for a serially connected battery module using two-stage fast charging patterns with different charging current rates (C-rates) in two charging stages to study the electrochemical characteristics, temperature difference and state of balance. Results show that the shift of C-rate causes a sudden change in the magnitude and spatial distribution of local current density, and in the magnitude of solid phase Li+ concentration gradient and electrolyte Li+ concentration. The non-uniformity of electrochemical performance inside a battery generally is more significant when the C-rate of the first stage is higher than that of the second stage. The charging pattern with lower C-rate in the first stage has potential in reducing the maximum local temperature difference in a battery while increasing the maximum temperature difference of module. The increase and decrease of the C-rate in the second stage easily aggravates the state of balance at the end of charging and leads to a sudden fluctuation of state of balance in the shift of C-rate, respectively. The charging strategy should be optimized with the consideration of electrochemical performance, cooling intensity, coolant temperature, battery initial temperature and state of balance.
机译:电化学特性和温差对电池模块至关重要,但在多级快速充电的主要作品中,它们很少考虑在减少单个电池的充电时间和温度升高。一种多层电化学 - 热耦合模型,包括在两个充电阶段中使用不同充电电流(C率)的两级快速充电模式,为串联连接的电池模块开发了串联电池模块,以研究电化学特性,温度平衡差异和状态。结果表明,C率的偏移导致局部电流密度的幅度和空间分布突然变化,以及固相Li +浓度梯度和电解质Li +浓度的幅度。当第一级的C速率高于第二阶段时,电池内部电化学性能的不均匀性通常更为显着。在第一阶段中具有较低C速率的充电模式具有降低电池中的最大局部温度差的可能性,同时增加模块的最大温差。第二阶段中的C速率的增加和减少容易加剧充电结束时的平衡状态,并导致C速率偏移的平衡状态突然波动。应考虑电化学性能,冷却强度,冷却剂温度,电池初始温度和平衡状态,优化充电策略。

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