A Simplified Layered Model for Large-Scale Impact Simulations of Li-Ion Prismatic Cells
- Features
- Content
- This article presents a novel finite element modeling approach to predict the mechanical response of jellyrolls in large-scale explicit crash simulations up to the experimental occurrence of internal short-circuit. The proposed simplified layered model embeds membrane elements within a solid element mesh to improve the prediction in load cases dominated by the buckling and sliding of the jellyroll’s layered structure. The model was validated against experimental results from in-plane, out-of-plane, and bending tests on jellyroll samples extracted from prismatic lithium-ion cells. The experimental results confirmed the jellyroll’s high compressibility under out-of-plane loads and its behavior as a collection of unconnected layers under in-plane and bending loading. Compared to the widely used crushable foam model, the simplified layered model offered additional flexibility, especially for in-plane and bending load cases. Additionally, it meets critical time increment requirements for explicit analysis and requires a limited number of calibration tests. These results highlight the model’s potential to improve the prediction of the jellyroll’s mechanical behavior in large-scale simulations.
- Citation
- Cioni, D., Morin, D., Strating, A., Kizio, S., et al., "A Simplified Layered Model for Large-Scale Impact Simulations of Li-Ion Prismatic Cells," SAE Int. J. Elec. Veh. 15(2), 2026, https://doi.org/10.4271/14-15-02-0012.
