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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Intermetallic compounds (IMCs) formation during dissimilar friction-stir welding of AA5005 aluminum alloy to St-52 steel: numerical modeling and experimental study
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Intermetallic compounds (IMCs) formation during dissimilar friction-stir welding of AA5005 aluminum alloy to St-52 steel: numerical modeling and experimental study

机译:AA5005铝合金的不同摩擦搅拌焊接期间的金属间化合物(IMCS)形成ST-52钢:数值建模和实验研究

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摘要

In this research, AA5005-O aluminum-magnesium alloy and St-52 low carbon steel sheets were friction-stir welded in a butt-dissimilar joint design. Effects of different processing parameters including tool rotational speed (w), traverse velocity (v), plunge depth, and offset distance on the solid-state weldability of these dissimilar materials were assessed in terms of formation of intermetallic compound (IMC) layer at the interface. A 3D thermo-mechanical finite element modeling procedure was employed to predict the nucleation and growth of IMC layer. Formation of various FeAl, FeAl3, and Fe2Al5 IMCs at the interface, layer morphology, and thickness were experimentally studied as well, by using X-ray diffraction (XRD) and field emission scanning electron microscopy (FE-SEM) analysis techniques. A good agreement between the simulated thermal results and experimental data was noticed. The results showed that the thickness of IMC layer at the interface as the main controlling parameter in transverse tensile property and fracture behavior of produced dissimilar joints can be varied extremely as a function of processing parameters. By decreasing the heat input and suppressing the kinetics of IMCs layer formation, the tensile performance of dissimilar welded joints is improved, considerably. However, the soundness of these dissimilar welds played another main role as a restriction mechanism against this trend. The maximum joining efficiency is attained around 90% at an optimized working window of w=1200rpm, v=90mm/min, and a plunge depth of 0.3mm with an offset distance of 0.5mm toward the Al side. The hardness of this optimized dissimilar weld is enhanced even more than the steel base metal caused by the formation of IMC layer at the interface as well as the dispersion of reinforcing intermetallic particles (IMPs).
机译:在本研究中,AA5005-O铝镁合金和ST-52低碳钢板在对接的关节设计中摩擦搅拌焊接。不同加工参数包括刀具旋转速度(W),横向速度(V),插入深度和偏移距离这些不同材料的固态可焊性的偏移距离,在形成金属间化合物(IMC)层方面进行评估界面。采用3D热机械有限元建模程序预测IMC层的成核和生长。通过使用X射线衍射(XRD)和现场发射扫描电子显微镜(Fe-SEM)分析技术,在界面,层形态和厚度上形成各种Feal,Feal3和Fe2Al5 IMCs,层,层形态和厚度。注意到模拟热结果与实验数据之间的良好一致性。结果表明,由于横向拉伸性和产生的异种接头的横向拉伸性和断裂行为的主要控制参数的界面中的IMC层的厚度可以极大地作为处理参数的函数而变化。通过减小热输入和抑制IMCS层的动力学,显着的焊接接头的拉伸性能显着。然而,这些不同焊缝的声音在这种趋势的限制机制中发挥了另一个主要作用。在W = 1200rpm,V = 90mm / min的优化工作窗口处,最大连接效率约为90%,并且朝向Al侧的0.3mm的偏移距离为0.3mm。这种优化的不同焊缝的硬度增强了由在界面处形成IMC层引起的钢基础金属以及增强金属间颗粒(Imms)的分散。

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