A Detailed Simulation Model to Evaluate the Crash Safety of a Li-Ion Pouch Battery Cell

B. Schaufelberger, A. Altes, A. Trondl, T. Kisters, C. Fehrenbach, P. Matura, M. May
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Abstract

. In crash situations with an electric vehicle, the integrity of the battery cells is critical for the consequences of the crash. A short circuit triggered by deformation and damage of the internal cell structure can cause overheating of the battery (thermal runaway) and may result in a vehicle fire or even an explosion. Thus, for assessing the crashworthiness of electric vehicles, evaluating the deformation states of potential crash situations with respect to the occurrence of a short circuit is crucial. A particular challenge for building a cell model with acceptable computational time lies in the very different spatial scales regarding the overall cell size and the thickness of individual layers. Cells installed in vehicles have dimensions of several centimeters, whereas the thickness of the individual layers is in the micrometer range. Much research has already been conducted based on homogenized cell models that do not explicitly account for the internal layer structure, and existing material models calibrated to experimental data (e.g. [1]-[3]), while explicitly considering the layered structure is just pursued more recently (e.g. [4]-[7]). determined by in-house experiments on the respective materials. For validation, bending tests and indentation tests with different punch geometries along with CT-scans at selected indentation depths are available. Comparing the simulation results with the failure sequence and the force-displacement curve from the experiment, a closer view on critical deformations and on their respective stress states is obtained. The results indicate that in-depth understanding and modelling of the failure behavior is crucial for correctly modeling battery cells under crash loading scenarios.
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锂离子袋状电池碰撞安全性的详细仿真模型
. 在电动汽车的碰撞情况下,电池的完整性对碰撞的后果至关重要。由电池内部结构的变形和损坏引发的短路可能导致电池过热(热失控),并可能导致车辆起火甚至爆炸。因此,对于评估电动汽车的耐撞性,评估潜在碰撞情况的变形状态与短路的发生是至关重要的。构建具有可接受计算时间的细胞模型的一个特殊挑战在于,关于整体细胞大小和各层厚度的空间尺度非常不同。安装在车辆上的电池有几厘米的尺寸,而单个层的厚度在微米范围内。许多研究已经基于均质细胞模型进行,这些模型没有明确地考虑内层结构,以及根据实验数据校准的现有材料模型(例如[1]-[3]),而明确考虑层状结构只是最近才追求的(例如[4]-[7])。由各自材料的内部实验确定。为了验证,可以使用不同的冲压几何形状进行弯曲测试和压痕测试,并在选定的压痕深度进行ct扫描。将模拟结果与试验得到的破坏序列和力-位移曲线进行比较,对临界变形及其各自的应力状态有了更深入的了解。结果表明,深入了解和建模失效行为对于正确建模碰撞加载场景下的电池至关重要。
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