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DEVELOPMENT OF A FIRST PRINCIPLES EQUIVALENT CIRCUIT MODEL FOR A LITHIUM ION BATTERY

机译:开发锂离子电池的第一个原理等效电路模型

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This paper examines the development of a linear single particle model that can be used for model based power train simulation, design, estimation and control in hybrid and electric vehicles. The model assumes that the cell consists of spherical particles in each electrode, neglects the electrolyte dynamics, and uses Pade approximations of the particle transcendental transfer functions. The Pade approximated single particle model matches well with the transcendental model, indicating the accuracy of 3rd order Pade approximations for the particle surface concentrations. This model also accurately reproduces the frequency response of a more complex model from the literature, showing that electrolyte diffusion has limited impact on cell impedance. The model also predicts the experimentally measured EIS and moderate(≤ 5C) current pulse charge/discharge of a 3.1 Ah Li-ion cell. The explicit form of the impedance allows the development of an equivalent circuit with resistances and capacitances related to the cell parameters.
机译:本文介绍了一种线性单粒子模型的开发,可用于混合动力和电动车辆的基于模型的电力系仿真,设计,估计和控制。该模型假设该电池由每个电极中的球形颗粒组成,忽略了电解质动力学,并使用粒子超轮廓传递函数的梯度近似。梯度近似的单粒子模型与超越模型相匹配,表示颗粒表面浓度的3阶梯度梯度的精度。该模型还可以精确地再现来自文献更复杂模型的频率响应,表明电解质扩散对细胞阻抗影响有限。该模型还预测了实验测量的EIS和中等(≤5C)电流脉冲电荷/放电的3.1AH锂离子电池。阻抗的明确形式允许开发具有与小区参数相关的电阻和电容的等效电路。

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