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Computational Investigation of Hardness Evolution During Friction-Stir Welding of AA5083 and AA2139 Aluminum Alloys

机译:AA5083和AA2139铝合金摩擦搅拌焊接过程中硬度演变的计算研究

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摘要

A fully coupled thermo-mechanical finite-element analysis of the friction-stir welding (FSW) process developed in our previous work is combined with the basic physical metallurgy of two wrought aluminum alloys to predict/assess their FSW behaviors. The two alloys selected are AA5083 (a solid-solution strengthened and strain-hardened/stabilized Al-Mg-Mn alloy) and AA2139 (a precipitation hardened quaternary Al-Cu-Mg-Ag alloy). Both of these alloys are currently being used in military-vehicle hull structural and armor systems. In the case of non-age-hardenable AA5083, the dominant microstructure-evolution processes taking place during FSW are extensive plastic deformation and dynamic re-crystallization of highly deformed material subjected to elevated temperatures approaching the melting temperature. In the case of AA2139, in addition to plastic deformation and dynamic recrystallization, precipitates coarsening, over-aging, dissolution, and re-precipitation had to be also considered. Limited data available in the open literature pertaining to the kinetics of the aforementioned microstructure-evolution processes are used to predict variation in the material hardness throughout the various FSW zones of the two alloys. The computed results are found to be in reasonably good agreement with their experimental counterparts.
机译:在我们之前的工作中,对搅拌摩擦焊(FSW)过程进行了完全耦合的热机械有限元分析,并结合了两种锻造铝合金的基本物理冶金学来预测/评估其FSW行为。选择的两种合金是AA5083(一种固溶强化和应变硬化/稳定化的Al-Mg-Mn合金)和A22139(一种沉淀硬化的四元Al-Cu-Mg-Ag合金)。目前,这两种合金都用于军事车辆的船体结构和装甲系统。对于不可时效硬化的AA5083,在FSW期间发生的主要微观结构演变过程是广泛的塑性变形和高度变形材料的动态再结晶,这些材料在接近熔化温度的高温下经受了高温。对于AA2139,除了塑性变形和动态再结晶外,还必须考虑沉淀物的粗化,过时效,溶解和再沉淀。在公开文献中与上述微观结构演变过程的动力学有关的有限数据可用于预测两种合金在各个FSW区域中材料硬度的变化。发现计算结果与实验结果相当吻合。

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