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Impedance based time-domain modeling of lithium-ion batteries: Part Ⅰ

机译:基于阻抗的锂离子电池时域建模:第一部分

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This paper presents a novel lithium-ion cell model, which simulates the current voltage characteristic as a function of state of charge (0%-100%) and temperature (0-30 degrees C). It predicts the cell voltage at each operating point by calculating the total overvoltage from the individual contributions of (i) the ohmic loss eta(0), (ii) the charge transfer loss of the Cathode now, (iii) the charge transfer loss and the solid electrolyte interface loss of the anode eta(SEI/CTA), and (iv) the solid state and electrolyte diffusion loss eta(Diff,A/C/E). This approach is based on a physically meaningful equivalent circuit model, which is parametrized by electrochemical impedance spectroscopy and time domain measurements, covering a wide frequency range from MHz to mu Hz. The model is exemplarily parametrized to a commercial, high-power 350 mAh graphite/LiNiCoAlO2-LiCoO2 pouch cell and validated by continuous discharge and charge curves at varying temperature For the first time, the physical background of the model allows the operator to draw conclusions about the performance-limiting factor at various operating conditions. Not only can the model help to choose application-optimized cell characteristics, but it can also support the battery management system when taking corrective actions during operation.
机译:本文提出了一种新颖的锂离子电池模型,该模型模拟了电流电压特性与充电状态(0%-100%)和温度(0-30摄氏度)的关系。它通过计算以下各项的总贡献来预测每个工作点的电池电压:(i)欧姆损耗eta(0),(ii)阴极的电荷转移损耗,(iii)电荷转移损耗和阳极的固体电解质界面损耗eta(SEI / CTA),以及(iv)固态和电解质扩散损耗eta(Diff,A / C / E)。该方法基于物理上有意义的等效电路模型,该模型通过电化学阻抗谱和时域测量进行参数化,覆盖从MHz到μHz的宽频率范围。该模型示例性地参数化为商用的大功率350 mAh石墨/ LiNiCoAlO2-LiCoO2袋式电池,并通过在不同温度下的连续放电和充电曲线进行了验证。该模型的物理背景首次使操作员可以得出以下结论:在各种操作条件下的性能限制因素。该模型不仅可以帮助您选择应用优化的电池特性,而且还可以在操作过程中采取纠正措施时支持电池管理系统。

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