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A theory and a simulation capability for the growth of a solid electrolyte interphase layer at an anode particle in a Li-ion battery

机译:用于在锂离子电池中的阳极颗粒处生长固体电解质中间相层的理论和模拟能力

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摘要

A major mechanism for electrochemical aging of Li-ion batteries is the growth of a solid electrolyte interphase (SEI) layer on the surface of anode particles, which leads to capacity fade and also results in a rise in cell resistance. We have formulated a continuum theory for the growth of an SEI layer—a theory which accounts for the generation of the attendant growth stresses. The theory has been numerically implemented in a finite-element program. This simulation capability for SEI growth is coupled with our previously published chemo-mechanical simulation capability for intercalation of Li-ions in electrode particles. Using this new combined capability we have simulated the formation and growth of an SEI layer during cyclic lithiation and delithiation of an anode particle, and predicted the evolution of the growth stresses in the SEI layer. The evolution of the stress state within the SEI layer and at the SEI/anode-particle interface for spherical- and spheroidal-shaped graphite particles is studied. This knowledge of the local interfacial stresses provides a good estimate for the propensity of potential delamination of an SEI layer from an anode particle.
机译:锂离子电池电化学老化的主要机制是阳极颗粒表面上固态电解质中间相(SEI)层的生长,这会导致容量衰减,并导致电池电阻增加。我们为SEI层的增长制定了一个连续统理论,该理论解释了伴随的增长压力的产生。该理论已在有限元程序中得到了数值实现。这种SEI生长的模拟能力与我们先前发布的化学机械模拟能力相结合,用于在电极颗粒中嵌入锂离子。使用这种新的组合功能,我们已经模拟了阳极颗粒循环锂化和脱锂过程中SEI层的形成和生长,并预测了SEI层中生长应力的演变。研究了球形和球形石墨颗粒在SEI层内以及在SEI /阳极-颗粒界面处的应力状态。对局部界面应力的这种了解为SEI层与阳极颗粒的潜在分层倾向提供了良好的估计。

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