首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Fully coupled thermomechanical finite element analysis of material evolution during friction-stir welding of AA5083
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Fully coupled thermomechanical finite element analysis of material evolution during friction-stir welding of AA5083

机译:AA5083搅拌摩擦焊过程中材料演变的全耦合热机械有限元分析

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摘要

Interactions between the rotating and advancing pin-shaped tool (terminated at one end with a circular-cylindrical shoulder) with the clamped welding plates and the associated material and heat transport during a friction-stir welding (FSW) process are studied computationally using a fully coupled thermomechanical finite element analysis. To surmount potential numerical problems associated with extensive mesh distortions/entanglement, an arbitrary Lagrangian-Eulerian (ALE) formulation was used, which enabled adaptive remeshing (to ensure the continuing presence of a high-quality mesh) while allowing full tracking of the material-free surfaces. To demonstrate the utility of the present computational approach, the analysis is applied to the case of FSW of AA5083 (a solid-solution strengthened and strain-hardened/stabilized Al-Mg wrought alloy). To account for the competition between plastic deformation-controlled strengthening and dynamic recrystallization-induced softening phenomena during the FSW process, the original Johnson-Cook strain and strain-rate hardening and temperature-softening material strength model is modified using the available recrystallization kinetics experimental data. Lastly, the computational results obtained in the present work are compared with their experimental counterparts available in the open literature. This comparison revealed that general trends regarding spatial distribution and temporal evolutions of various material-state quantities and their dependence on the FSW process parameters are reasonably well predicted by the present computational approach.
机译:旋转搅拌的销形工具(一端终止于圆柱肩部)与夹紧的焊接板之间的相互作用以及相关的材料和摩擦搅拌焊接(FSW)过程中的热传递之间的相互作用是通过完全计算的耦合热机械有限元分析。为了克服与广泛的网格变形/纠缠相关的潜在数值问题,使用了任意的拉格朗日-欧拉(ALE)公式,该公式可以进行自适应重新网格化(以确保高质量网格的持续存在),同时允许对材料进行完全跟踪-自由表面。为了证明本计算方法的实用性,将分析应用于AA5083(固溶强化和应变硬化/稳定化的Al-Mg锻造合金)的FSW情况。为了解决FSW过程中塑性变形控制的强化与动态再结晶引起的软化现象之间的竞争,使用可用的再结晶动力学实验数据修改了原始的Johnson-Cook应变和应变速率硬化与温度软化的材料强度模型。 。最后,将当前工作中获得的计算结果与开放文献中的实验结果进行比较。该比较表明,通过当前的计算方法可以合理地很好地预测有关各种材料状态量的空间分布和时间演变及其对FSW工艺参数的依赖性的总体趋势。

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