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A lithium-ion battery electrochemical-thermal model for a wide temperature range applications

机译:用于宽温度范围应用的锂离子电池电化学 - 热模型

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The internal temperature of lithium-ion battery affects the battery parameters during discharge and charge process, and the low-temperature environment has a particularly significant impact on the performance of the lithium-ion battery. In this paper, a simplified discrete electrochemical model adapts to a wide temperature range is developed. Based on Pseudo-Two-Dimension (P2D) model, we simplify the governing equation to describe the solid and solution diffusion by fitting the lithium-ion concentration in the form of parabolas. Analysis of the heat generation and dissipation conditions of lithium-ion batteries is conducted, and a concentrated mass thermal model is established to describe the internal temperature changes of batteries. The parameters involved in the electrochemical model are also updated accordingly. Finally, an electrochemical-thermal coupling model is established. In order to verify the cell potential difference simulation accuracy of the model, the constant current discharge conditions, DST (Dynamic Stress Test) in the ambience above 0 degrees C and the multi-stage current discharge conditions in the ambience below 0 degrees C is carried out. The results show that the model with parameters update significantly improves the accuracy of simulation, especially at low temperature (-20 degrees C, -10 degrees C, 0 degrees C). What's more, the model with parameter update can simulate the potential difference's 'trough' phenomenon in the constant current phase of the pulse discharge at -20 degrees C better than the model without parameter update. (C) 2020 Elsevier Ltd. All rights reserved.
机译:锂离子电池的内部温度影响放电和充电过程中的电池参数,低温环境对锂离子电池的性能产生特别显着的影响。在本文中,开发了一种简化的离散电化学模型在宽温度范围内。基于伪二维(P2D)模型,简化了控制方程来描述通过抛物线形式的锂离子浓度来描述固体和溶液扩散。对锂离子电池的发热和耗散条件进行分析,建立了浓缩质量热模型,以描述电池的内部温度变化。电化学模型中涉及的参数也相应地更新。最后,建立了电化学热耦合模型。为了验证模型的电池电位差仿真精度,携带恒定电流放电条件,恒定电流放电条件,恒定的氛围中的DST(动态应力测试)和低于0摄氏度的环境中的多级电流放电条件出去。结果表明,具有参数更新的模型显着提高了模拟的精度,尤其是在低温下(-20°C,-10℃,0℃)。更重要的是,具有参数更新的模型可以在没有参数更新的情况下更好地模拟脉冲放电的恒流阶段的恒定电流阶段的恒定电流阶段的现象。 (c)2020 elestvier有限公司保留所有权利。

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