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Deformation Behavior of Single Prismatic Battery Cell Cases and Cell Assemblies Loaded by Internal Pressure

机译:内压加载的单棱柱形电芯外壳和电芯组件的变形行为

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The safety of electrochemical energy storage system depends on the structural integrity of the call containment. Nominal values of cell case dimensions and material properties are the standard inputs for the mechanical analysis of prismatic lithium-ion batteries. However, such data usually do not account for any considerations on the influence of the manufacturing processes of the cell case. This study investigates the effects of the cell wall thickness and elastic modulus, resulting from deep-drawing process, on the cell and cell assembly response. It is found that the deep-drawing process degrades Young's modulus relative to standard values and leads to a spatial variation in the wall thickness of the cell case. The use of actual cell case material properties and cell wall thickness values is required to obtain validated finite element models of the battery cell case. Using experiments on internal pressure loaded single battery cells and finite element computations, it is demonstrated that the use of nominal cell casing characteristics significantly underestimates the resistance provided by the cell case to counter swelling of the active battery components.
机译:电化学储能系统的安全性取决于呼叫遏制的结构完整性。电池外壳尺寸和材料特性的标称值是棱柱形锂离子电池机械分析的标准输入。然而,这些数据通常不考虑对电池外壳制造过程影响的任何考虑因素。本研究研究了深拉工艺产生的细胞壁厚度和弹性模量对细胞和细胞组装响应的影响。研究发现,深冲过程降低了相对于标准值的杨氏模量,并导致电池壳壁厚的空间变化。需要使用实际的电池外壳材料特性和电池壁厚值来获得经过验证的电池外壳有限元模型。通过对内部压力负载的单节电池的实验和有限元计算,证明使用标称电池外壳特性大大低估了电池外壳为抵消有源电池组件膨胀而提供的阻力。

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