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Simulating Microstructure Evolution of Ultrasonic Welding of Battery Tabs

机译:模拟电池贴片超声波焊接的微观结构演变

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Ultrasonic welding offers ability to weld thin layers of malleable metals at low temperature and low power consumption. During ultrasonic welding, intensive material interactions occur due to the severe plastic deformation (SPD) and frictional heat generation, which leads to the microstructural change. Different grain microstructures have been observed after different ultrasonic welding conditions. Theory of the microstructural evolution was for the first time hypothesized as three regimes, namely SPD, dynamic recrystallization (DRX) and grain growth according to the material thermomechanical loading conditions. A novel metallo-thermo-mechanically coupled model was developed to model the temperature-dependent mechanical deformation and microstructural evolution during the ultrasonic spot welding process. The numerical analysis was carried out with a three-dimensional (3D) finite element model using DEFORM 11.0. The material constitutive model considered cyclic plasticity, thermal softening and acoustic softening. Dynamic recrystallization and grain growth kinetics laws were applied to simulate the microstructural evolution under different welding time durations. The simulation results demonstrated that the essential characteristics of the deformation field and microstructure evolution during ultrasonic welding were well captured by the metallo-thermo-mechanically coupled model. The numerical framework developed in this study has been shown to be a powerful tool to optimize the ultrasonic welding process for its mechanical properties and microstructures.
机译:超声波焊接能够在低温下焊接薄层的可延伸金属层和低功耗。在超声波焊接期间,由于严重的塑性变形(SPD)和摩擦发电,发生了密集的材料相互作用,这导致微观结构变化。在不同的超声波焊接条件之后已经观察到不同的晶粒微观结构。微观结构演化的理论是第一次假设为三个制度,即SPD,动态重结晶(DRX)和晶粒生长,根据材料热机械负载条件。开发了一种新型的金属热机械耦合模型,以模拟超声波点焊过程中的温度依赖性机械变形和微观结构演化。使用变形11.0,用三维(3D)有限元模型进行数值分析。材料本构模型认为循环可塑性,热软化和声学软化。应用动态重结晶和晶粒生长动力学定律来模拟不同焊接时间持续时间下的微观结构演变。仿真结果表明,通过金属热机械耦合模型捕获超声波焊接期间变形场和微观结构演化的基本特征。本研究开发的数值框架已被证明是优化超声波焊接过程的强大工具,以实现其机械性能和微观结构。

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