使用线性二次型调节器衰减锂离子电池组内电池间的非均匀性

Donald J. Docimo, H. Fathy
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引用次数: 9

摘要

本文开发了一种平衡算法,能够衰减锂离子电池组内电池之间的电荷、温度和其他类型的异质性。众所周知,电池间的异质性会对电池组的性能产生负面影响,并缩短电池组的使用寿命,目前存在几种平衡算法来减轻这种影响。这些算法控制电池电流,消除荷电状态(SOC)、健康状态(SOH)和温度失衡,延长电池组寿命。然而,文献目前缺乏一种形式化的方法来去除多种类型的异质性,这种异质性是可扩展的,适用于不同的包大小。本文通过开发一种平衡算法来解决这一差距,该算法(i)在电池模型选择和异质性类型方面具有通用性,(ii)在不增加计算复杂性的情况下易于扩展到不同的电池组大小。为了设计算法,提出了一个代表电池组内部非均匀性的线性时变(LTV)模型。将线性二次型调节器(LQR)应用于该非均质模型,提供了一种系统的方法来确定平衡电流的控制器增益。LTV模型的块对角矩阵证明了其优越性,使得LQR问题的解与分组大小无关。利用具有电荷、温度和其他电化学状态非均质性的真实电热模型进行了仿真验证。本案例研究验证了平衡算法在消除多种类型异质性方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using a Linear Quadratic Regulator to Attenuate Cell-to-Cell Heterogeneity within a Lithium-Ion Battery Pack
This paper develops a balancing algorithm capable of attenuating charge, temperature, and other types of heterogeneity between cells within a lithium-ion battery pack. Cell-to-cell heterogeneity is known to negatively impact pack performance and reduce pack lifespan, and several balancing algorithms exist to mitigate this impact. These algorithms control cell currents and remove state of charge (SOC), state of health (SOH) and temperature imbalances, extending pack lifespan. However, the literature currently lacks a formalized method for removal of multiple types of heterogeneity that is scalable for different pack sizes. This paper addresses this gap by developing a balancing algorithm which is (i) general with respect to battery model selection and heterogeneity types and (ii) easily scalable to different pack sizes without increasing computational complexity. To design the algorithm, a linear time-varying (LTV) model representative of heterogeneity within the battery pack is presented. A linear quadratic regulator (LQR) is applied to this heterogeneity model, providing a systematic method to determine controller gains for the balancing currents. The block diagonal matrices of the LTV model prove advantageous, and allow the LQR problem's solution to be independent of the pack size. The novel balancing algorithm is validated through simulation using a realistic electro-thermal model with heterogeneity in charge, temperature, and other electrochemical states. This case study exemplifies the effectiveness of the balancing algorithm to eliminate multiple types of heterogeneity.
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