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首页> 外文期刊>International Journal of Automotive Technology >Electrochemical battery model and its parameter estimator for use in a battery management system of plug-in hybrid electric vehicles
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Electrochemical battery model and its parameter estimator for use in a battery management system of plug-in hybrid electric vehicles

机译:用于插电式混合动力汽车电池管理系统的电化学电池模型及其参数估计器

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This paper reports the development of a battery model and its parameter estimator that are readily applicable to automotive battery management systems (BMSs). Due to the parameter estimator, the battery model can maintain reliability over the wider and longer use of the battery. To this end, the electrochemical model is used, which can reflect the aging-induced physicochemical changes in the battery to the aging-relevant parameters within the model. To update the effective kinetic and transport parameters using a computationally light BMS, the parameter estimator is built based on a covariance matrix adaptation evolution strategy (CMA-ES) that can function without the need for complex Jacobian matrix calculations. The existing CMA-ES implementation is modified primarily by region-based memory management such that it satisfies the memory constraints of the BMS. Among the several aging-relevant parameters, only the liquid-phase diffusivity of Li-ion is chosen to be estimated. This also facilitates integrating the parameter estimator into the BMS because a smaller number of parameter estimates yields the fewer number of iterations, thus, the greater computational efficiency of the parameter estimator. Consequently, the BMS-integrated parameter estimator enables the voltage to be predicted and the capacity retention to be estimated within 1 % error throughout the battery life-time.
机译:本文报告了电池模型及其参数估计器的发展,这些模型很容易适用于汽车电池管理系统(BMS)。由于参数估计器,电池模型可以在更广泛和更长的电池使用中保持可靠性。为此,使用了电化学模型,该模型可以将电池中老化引起的物理化学变化反映为模型中与老化相关的参数。为了使用计算上较轻的BMS更新有效的动力学参数和输运参数,基于协方差矩阵自适应演化策略(CMA-ES)构建了参数估算器,该函数无需复杂的Jacobian矩阵计算就可以运行。现有的CMA-ES实现主要是通过基于区域的内存管理进行修改的,因此它可以满足BMS的内存限制。在与老化相关的几个参数中,仅选择锂离子的液相扩散率进行估算。这也有利于将参数估计器集成到BMS中,因为较少数量的参数估计会产生较少的迭代次数,因此,参数估计器的计算效率更高。因此,通过BMS集成的参数估算器,可以预测电压,并在整个电池使用寿命内,将误差保持在1%以内。

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