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Macro-Modelling of Laser Micro-Joints for Understanding Joint Strength in Electric Vehicle Battery Interconnects

机译:激光微关节宏观建模以了解电动汽车电池互连中的关节强度

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摘要

Laser micro-welding is increasingly being used to produce electrically conductive joints within a battery module of an automotive battery pack. To understand the joint strength of these laser welds at an early design stage, micro-joints are required to be modelled. Additionally, structural modelling of the battery module along with the electrical interconnects is important for understanding the crash safety of electric vehicles. Fusion zone based micro-modelling of laser welding is not a suitable approach for structural modelling due to the computational inefficiency and the difficulty of integrating with the module model. Instead, a macro-model which computationally efficient and easy to integrate with the structural model can be useful to replicate the behaviour of the laser weld. A macro-modelling approach was adopted in this paper to model the mechanical behaviour of laser micro-weld. The simulations were based on 5 mm diameter circular laser weld and developed from the experimental data for both the lap shear and T-peel tests. This modelling approach was extended to obtain the joint strengths for 3 mm diameter circular seams, 5 mm and 10 mm linear seams. The predicted load–displacement curves showed a close agreement with the test data.
机译:激光微焊接越来越多地用于在汽车电池组的电池模块内产生导电接头。要了解这些激光焊缝在早期设计阶段的关节强度,需要进行微关节进行建模。另外,电池模块以及电互连的结构建模对于理解电动车辆的碰撞安全性是重要的。基于融合区的激光焊接的微型建模不是由于计算效率低下的结构建模的合适方法,以及与模块模型集成的难度。相反,与结构模型集成的计算上高效且易于集成的宏模型可用于复制激光焊接的行为。本文采用了一种宏观建模方法,以模拟激光微焊的力学行为。仿真基于5毫米直径的圆激光焊接,并从膝盖剪切和T-剥离测试的实验数据开发。该造型方法延伸以获得3毫米直径圆接缝,5mm和10mm的线性接缝的接合强度。预测的负载 - 位移曲线显示与测试数据密切一致。

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