多物理
多尺度建模
代表性基本卷
有限元法
材料科学
建模与仿真
电池(电)
均质化(气候)
机械工程
锂离子电池
计算机科学
功率(物理)
模拟
工程类
结构工程
热力学
物理
生物多样性
生态学
化学
计算化学
生物
作者
Yikai Jia,Xiang Gao,Jean-Baptiste Mouillet,Jean-Michel Terrier,Patrick Lombard,Jun Xu
标识
DOI:10.1016/j.est.2020.102090
摘要
Investigation of the multiphysics behaviors of lithium-ion batteries upon mechanical abusive loading becomes a heated topic around the world, and the corresponding modeling methodology is in pressing need. Different from previous modeling methodologies, this paper develops an effective modeling framework based on the representative volume element concept to describe the thermo-mechanical behaviors of lithium-ion batteries. The mesoscale (electrode level) representative volume element model and the macroscale (cell level) homogenous battery model are established and validated by experiments. The two levels are coupled through the homogenization of the mechanical material properties and the calculation of the element power density–strain curve. The internal short circuit behavior can also be well predicted by this model. In addition, the model can predict accurate thermo-electro-mechanical coupled behaviors at a much lower calculation time cost. The proposed new thermo-mechanical modeling methodology in this paper can provide a powerful modeling tool and useful guidance to the design, evaluation, and monitor of the safety behaviors of LIBs.
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