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Characterising Li-ion battery degradation through the identification of perturbations in electrochemical battery models

机译:通过识别电化学电池模型中的扰动来表征锂离子电池的退化

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摘要

Lithium ion batteries undergo complex electrochemical and mechanical degradation. This complexity is pronounced in applications such as electric vehicles where highly demanding cycles of operation and varying environmental conditions lead to non-trivial interactions of ageing stress factors. This work presents the framework for an ageing diagnostic tool based on identifying the physical parameters of a fundamental electrochemistry-based battery model from non-invasive voltage/current cycling tests. Exploiting the embedded symbolic manipulation tool and global optimiser in MapleSim, computational cost is reduced, significantly facilitating rapid optimisation. The diagnostic tool is used to study the degradation of a 3Ah LiC6/LiNiCoAlO2 battery stored at 45°C at 50% State of Charge for 202 days; the results agree with expected battery degradation.
机译:锂离子电池会经历复杂的电化学和机械降解。这种复杂性在诸如电动汽车之类的应用中尤为明显,在这些应用中,苛刻的运行周期和变化的环境条件会导致老化应力因子的平凡相互作用。这项工作基于从无创电压/电流循环测试中识别出基于电化学的基本电池模型的物理参数,提出了一种老化诊断工具的框架。利用MapleSim中的嵌入式符号处理工具和全局优化器,可降低计算成本,从而极大地促进了快速优化。该诊断工具用于研究3Ah LiC6 / LiNiCoAlO2电池在45°C,50%充电状态下存储202天的降解;结果与预期的电池退化相符。

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