Three-Dimensional Thermal Model of Resistance Spot Welding in Aluminum

A. Kabir, J. Khan, K. Broach
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Abstract

A 3-D thermal model for resistance spot welding in aluminum is presented. The numerical model, validated with experimental findings, considers phase change and the associated weld-pool convection. A parametric study is performed to determine the influence of welding features such as faying surface (work-piece contact surface) contact resistance, current, electrode-work-piece surface-thermal-contact-conductance and electrode tip diameter. These parameters have significant effects on the nugget and heat-affected-zone geometry. The phase change morphology, including melting and solidification rates and weld pool dynamics, is also significantly influenced by the parameters studied. The strongest convection was observed at the center of the molten pool in a plane aligned with gravity. Although two prominent convection cells develop, the phase change morphology is not significantly affected due to the short welding time (less than 0.05 seconds) and low fluid velocity (smaller than 1 × 10−2 mm/s). The nugget grows nonlinearly with increasing current and faying surface contact resistance while diminishing with increasing electrode work-piece surface-thermal-contact-conductance. The influence of faying surface contact resistance on nugget size is less than that of the other parameters. Optimum selection of electrode tip diameter provides the best possible nugget. The duration of weld pool existence increases with the increasing current but decreases with the increasing electrode work-piece surface-thermal-contact-conductance.
铝电阻点焊三维热模型
建立了铝电阻点焊的三维热模型。该数值模型考虑了相变和相关的焊池对流,并与实验结果相吻合。进行了参数化研究,以确定焊面(工件接触面)接触电阻、电流、电极-工件表面-热接触-电导和电极尖端直径等焊接特征的影响。这些参数对熔核和热影响区几何形状有显著影响。相变形貌,包括熔化和凝固速率以及熔池动态也受到所研究参数的显著影响。在熔池中心与重力对齐的平面上观察到最强的对流。由于焊接时间短(小于0.05秒)和流体速度低(小于1 × 10−2 mm/s),虽然形成了两个突出的对流细胞,但相变形貌没有受到明显影响。熔核随着电流的增大和表面接触电阻的增大呈非线性增长,而随着电极工件表面热接触电导的增大而减小。表面接触电阻对熔核尺寸的影响小于其他参数。最佳选择的电极尖端直径提供最好的可能的金块。熔池的存在时间随电流的增大而增大,但随电极工件表面热接触电导的增大而减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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