AA5083铝合金搅拌摩擦焊温度场数值模拟

I. Zybin, M. S. Antokhin
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摘要

在搅拌摩擦焊中,保证焊接接头无连续性缺陷的重要参数之一是提供所需的金属结合区温度。在使用热电偶直接测定金属搅拌区的实验温度时,会出现重大困难。在这方面,应用数值方法描述搅拌摩擦焊接过程中的温度场分布是有意义的。本文采用Abaqus/Explicit有限元软件对搅拌摩擦焊温度场进行数值模拟。建模考虑了耦合欧拉-拉格朗日方法、Johnson - Cook塑性模型和库仑摩擦定律。利用有限元方法,考虑零件、基体和刀具的热物理性质,建立了零件、基体和刀具的模型。为了减少计算时间,采用了一种基于金属质量尺度的方法,通过重新计算金属的密度和热性能。对选取的焊接模式参数进行了材料质量和热容量的标度系数匹配。为了验证搅拌摩擦焊接温度场数值模拟结果的有效性,采用热电偶对搅拌摩擦焊接温度场进行了实验研究。本文展示了利用欧拉-拉格朗日耦合方法和Abaqus/Explicit软件对搅拌摩擦焊接温度场进行数值模拟的可能性。由于采用了与材料质量标度相关的方法,计算时间缩短了10倍以上。
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Numerical modeling of temperature fields during friction stir welding of the AA5083 aluminum alloy
One of the important parameters ensuring the production of a welded joint without continuity defects during friction stir welding is the provision of the required temperature in the metal bonding zone. Significant difficulties arise when determining experimentally the temperature directly in the stir zone of metals using thermocouples. In this regard, the application of numerical methods describing the distribution of temperature fields during friction stir welding is relevant. In the work, numerical modeling of temperature fields during friction stir welding was used, which was based on the finite element method using Abaqus/Explicit software. Modeling was carried out taking into account the coupled Euler – Lagrange approach, the Johnson – Cook plasticity model, and the Coulomb friction law. Using the finite element method, the models of a part, substrate, and tool were constructed taking into account their thermophysical properties. To reduce the computation time, an approach based on the metal mass scaling by recalculating the density of the metal and its thermal properties was used. The authors matched coefficients of scaling of the material mass and heat capacity for the selected welding mode parameters. To evaluate the validity of the results of numerical modeling of temperature fields during friction stir welding, the experimental research of the temperature fields using thermocouples was carried out. The paper shows the possibility of numerical modeling of temperature fields during friction stir welding with the help of the coupled Euler – Lagrange approach and Abaqus/Explicit software. Due to the application of the approach associated with material mass scaling, the calculation time is reduced by more than 10 times.
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