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The Mathematical Model of 18650 Lithium-ion Battery in Electric Vehicles

机译:18650锂离子电池在电动车中的数学模型

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A mathematical thermal-electrochemical model has been used to predict the temperature and internal electrochemical properties of 18650 lithium-ion battery. This model couples the thermal energy balance equation with the multiphase (solid electrodes, liquid electrolyte and gas phases from the primary reactions) electrochemical equations via the heat generation, where the temperature dependent electrochemical properties, such as active material and the electrolyte concentration, current density and electrode potential of the cell, have been taken into account. Moreover, the positive and negative electrodes made from composite materials are porous and the equation includes the porous theory as well. The equations which are sets of Partial Differential Equations (PDE) in three regions of the battery (positive electrode, negative electrode and separator) are solved using the finite volume method. The results from the model are compared with the experimental results of the battery, and show a quite accurate agreement between them. In addition, high charge current and high discharge current cycles and the European Test Schedule driving cycle which simulates the electric vehicle (EV) operating conditions are applied to the model, and to find the behavior of the internal electrochemical parameters of the battery in EVs.
机译:数学热电化学模型已被用于预测的温度和18650锂离子电池的内部电化学性能。该模型通过热量产生,耦合热能量平衡方程与多相(固体电极,液体电解质和气相从初级反应)电化学方程,其中温度依赖性电化学性质,如活性物质和电解质浓度,电流密度和电池的电极电位,已考虑到。而且,由复合材料制成的正电极和负电极是多孔的并且所述方程包括多孔理论为好。这是一组偏微分方程(PDE)中的电池的三个区域(正电极,负电极和隔板)的方程使用有限体积法来解决。从模型结果与电池的实验结果进行了比较,并显示它们之间的相当准确的协议。此外,高的充电电流和大电流放电的周期和其模拟电动车辆(EV)的操作条件被施加到模型中,并以发现这些电池在电动汽车的内部电化学参数的行为欧洲测试计划驾驶循环。

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