CHAPTER 9. Understanding Battery Aging Mechanisms

Dongjian Li, D. Danilov, H. Bergveld, R. Eichel, P. Notten
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引用次数: 5

Abstract

The aging mechanisms of Li-ion batteries are introduced in this chapter, and are experimentally investigated and modeled. From SEM it is found that the thickness of the solid electrolyte interface layers at the graphite electrode surface increase upon aging. Deformation of the graphite structure is confirmed by Raman spectroscopy. XPS analyses show that transition metals dissolved from cathode are deposited onto the graphite electrode. Cathode dissolution at elevated temperatures is further confirmed by ICP measurements. Apart from postmortem analyses, a novel non-destructive approach is proposed to quantify the graphite electrode decay. A comprehensive electrochemistry model is proposed to simulate the irreversible capacity loss under various aging conditions. The dependence of the capacity loss on aging conditions, such as storage state of charge, cycling current, temperature, etc. is simulated and the simulations are in good agreement with the experiments. The degradation model allows researchers to have an in-depth understanding of aging mechanisms and therefore helps manufacturers to improve battery performance by optimizing manufacturing procedures. Moreover, the model can be further used to predict the battery cycle life, which can be used to develop more accurate battery management systems to increase battery efficiency and safety.
第9章。了解电池老化机制
本章介绍了锂离子电池的老化机理,并对其进行了实验研究和建模。SEM结果表明,随着老化,石墨电极表面的固体电解质界面层厚度逐渐增大。用拉曼光谱证实了石墨结构的变形。XPS分析表明,从阴极溶解的过渡金属沉积在石墨电极上。阴极在高温下的溶解被ICP测量进一步证实。除了死后分析外,还提出了一种新的非破坏性方法来量化石墨电极的衰变。提出了一种综合的电化学模型来模拟不同老化条件下的不可逆容量损失。模拟了容量损失与老化条件(如电荷存储状态、循环电流、温度等)的关系,仿真结果与实验结果吻合较好。该退化模型使研究人员能够深入了解老化机制,从而帮助制造商通过优化制造工艺来提高电池性能。此外,该模型还可以进一步用于预测电池循环寿命,用于开发更精确的电池管理系统,以提高电池的效率和安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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