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Simulation-driven Selection of Electrode Materials Based on Mechanical Performance for Lithium-Ion Battery

机译:基于机械性能的锂离子电池电极材料的仿真驱动选择

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摘要

Experimental and numerical studies have shown that mechanical loading associated with lithiation/delithiation may limit the useful life of battery electrode materials. The paper presents an approach to parameterize and compare electrode material performance based on mechanical stability. A mathematical model was developed to determine particle deformation and stress fields based upon an elastic-perfectly plastic constitutive response. Mechanical deformation was computed by combining the stress equilibrium equations with the electrochemical diffusion of lithium ions into the electrode particle. The result provided a time developing stress field which shifts from purely elastic to partially plastic deformation as the lithium-ion diffuses into the particle. The model was used to derive five merit indices that parameterize mechanical stability of electrode materials. The merit indices were used to analyze the mechanical stability for the six candidate electrode materials—three for anode materials and three for the cathode material. Finally, the paper suggests ways to improve the mechanical performance of electrode materials and identifies mechanical properties that need to be considered for selection and optimal design of electrode materials.
机译:实验和数值研究表明,与锂化/脱锂相关的机械负荷可能会限制电池电极材料的使用寿命。本文提出了一种基于机械稳定性参数化和比较电极材料性能的方法。建立了数学模型,根据弹性完全塑性本构响应确定颗粒变形和应力场。通过将应力平衡方程与锂离子在电极颗粒中的电化学扩散相结合来计算机械变形。结果提供了随时间发展的应力场,随着锂离子扩散到颗粒中,该应力场从纯弹性变形转变为部分塑性变形。该模型用于得出五个参数指标,这些参数参数化了电极材料的机械稳定性。优点指数用于分析六种候选电极材料的机械稳定性-三种阳极材料,三种阴极材料。最后,本文提出了改善电极材料机械性能的方法,并确定了选择和优化电极材料时需要考虑的机械性能。

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