论文标题
使用扩展测量值导致的参数不确定性下的电池状态估计改进
Improved Battery State Estimation Under Parameter Uncertainty Caused by Aging Using Expansion Measurements
论文作者
论文摘要
循环过程中锂离子电池的内部电化学状态的准确跟踪使高级电池管理系统可以安全地操作电池并保持高性能,同时最大程度地减少电池降解。为此,基于电压测量的技术显示了估计活性材料颗粒的锂表面浓度的希望,这是避免衰老机制(例如锂电池)的重要状态。但是,当模型参数在老化过程中发生变化时,依赖电压的方法通常会导致大量估计错误。在本文中,我们利用电池膨胀的原位测量来增强电压并开发观察者,以估计每个电极颗粒中的锂表面浓度分布。我们证明,膨胀信号的添加使我们能够校正除正电极外的负电极浓度状态。结果,与仅电压观察者相比,当电极的化学计量窗口变化时,提出的观察者可以成功地恢复表面浓度,这是通过失去锂库存而衰老的常见发生的。由于电极的化学计量窗口中有5%的变化,结果表明负电极表面浓度的状态估计误差降低。在这种模拟的老化状态下,与拟议的电压和膨胀观察者相比,基于电压的观察者的误差为9.3%,该观察者的负电极表面浓度为0.1%。
Accurate tracking of the internal electrochemical states of lithium-ion battery during cycling enables advanced battery management systems to operate the battery safely and maintain high performance while minimizing battery degradation. To this end, techniques based on voltage measurement have shown promise for estimating the lithium surface concentration of active material particles, which is an important state for avoiding aging mechanisms such as lithium plating. However, methods relying on voltage often lead to large estimation errors when the model parameters change during aging. In this paper, we utilize the in-situ measurement of the battery expansion to augment the voltage and develop an observer to estimate the lithium surface concentration distribution in each electrode particle. We demonstrate that the addition of the expansion signal enables us to correct the negative electrode concentration states in addition to the positive electrode. As a result, compared to a voltage only observer, the proposed observer can successfully recover the surface concentration when the electrodes' stoichiometric window changes, which is a common occurrence under aging by loss of lithium inventory. With a 5% shift in the electrodes' stoichiometric window, the results indicate a reduction in state estimation error for the negative electrode surface concentration. Under this simulated aged condition, the voltage based observer had 9.3% error as compared to the proposed voltage and expansion observer which had 0.1% error in negative electrode surface concentration.