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Reduced-Order Electrochemical Model Parameters Identification and State of Charge Estimation for Healthy and Aged Li-Ion Batteries—Part II: Aged Battery Model and State of Charge Estimation

机译:健康和老化的锂离子电池的降序电化学模型参数识别和荷电状态估计-第二部分:老化的电池模型和荷电状态估计

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摘要

Recently, extensive research has been conducted in the field of battery management systems due to increased interest in vehicles electrification. Parameters, such as battery state of charge (SOC) and state of health, are of critical importance to ensure safety, reliability, and prolong battery life. This paper includes the following contributions: 1) tracking reduced-order electrochemical battery model parameters variations as battery ages, using noninvasive genetic algorithm optimization technique; 2) the development of a battery aging model capable of capturing battery degradation by varying the effective electrode volume; and 3) estimation of the battery critical SOC using a new estimation strategy known as the smooth variable structure filter based on reduced-order electrochemical model. The proposed filter is used for SOC estimation and demonstrates strong robustness to modeling uncertainties, which is relatively high in case of reduced-order electrochemical models. Batteries used in this research are lithium-iron phosphate cells widely used in automotive applications. Extensive testing using real-world driving cycles is used for estimation strategy application and for conducting the aging test. Limitations of the proposed strategy are also highlighted.
机译:最近,由于对车辆电气化的兴趣增加,已经在电池管理系统领域中进行了广泛的研究。诸如电池充电状态(SOC)和健康状态之类的参数对于确保安全性,可靠性和延长电池寿命至关重要。本文包括以下贡献:1)使用无创遗传算法优化技术跟踪降序电化学电池模型参数随电池寿命的变化; 2)开发电池老化模型,该模型能够通过改变有效电极体积来捕获电池退化; 3)使用一种新的估计策略,即基于降阶电化学模型的平滑可变结构滤波器,来估计电池的临界SOC。所提出的滤波器用于SOC估计,并显示出对建模不确定性的强大鲁棒性,在降阶电化学模型的情况下相对较高。这项研究中使用的电池是磷酸锂铁电池,广泛用于汽车应用中。使用实际驾驶循环进行的广泛测试用于估算策略应用程序和进行老化测试。还强调了拟议策略的局限性。

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