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Thermodynamically consistent modeling of elementary electrochemistry in lithium-ion batteries

机译:锂离子电池基本电化学的热力学一致的建模

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This paper is particularly concerned with the elementary reactions and transport processes that are responsible for Li-ion battery performance. The model generally follows the widely practiced approach developed by Newman and co-workers (e.g., Doyle et al., J. Electrochem. Soc. 140 (1993) 1526 [1]). However, there are significant departures, especially in modeling electrochemical charge transfer. The present approach introduces systems of microscopically reversible reactions, including both heterogeneous thermal reactions and electrochemical charge-transfer reactions. All reaction rates are evaluated in elementary form, providing a powerful alternative to a Butler-Volmer formalism for the charge-transfer reactions. The paper is particularly concerned with the influence of non-ideal thermodynamics for evaluating reversible potentials as well as charge-transfer rates. The theory and modeling approach establishes a framework for extending chemistry models to incorporate detailed reaction mechanisms that represent multiple competitive reaction pathways.
机译:本文尤其涉及负责锂离子电池性能的基本反应和运输过程。该模型通常遵循通过Newman和同事开发了广泛实行的方法(例如,Doyle等人,J.电化学会志140(1993)1526 [1])。然而,存在显着的偏离,特别是在建模电化学电荷转移方面。本方法介绍了微观可逆反应的系统,包括非均相热反应和电化学电荷转移反应。所有反应率均以基本形式评估,为管家 - 活力形式主义提供强大的替代品,用于电荷转移反应。本文特别关注非理想热力学对评估可逆潜力以及电荷转移率的影响。该理论和建模方法建立了一种延伸化学模型的框架,以纳入代表多种竞争反应途径的详细反应机制。

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