首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Computational analysis of the intermetallic formation during the dissimilar metal aluminum-to-steel friction stir welding process
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Computational analysis of the intermetallic formation during the dissimilar metal aluminum-to-steel friction stir welding process

机译:异种金属铝-钢摩擦搅拌焊接过程中金属间化合物形成的计算分析

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The extent of inter-material mixing and the formation of intermetallic compounds play a critical role in the structural integrity and mechanical properties of the joints in the case of dissimilar metal friction stir welding. In general, there is a critical volume fraction of the intermetallic compounds in the mix zone of the friction stir welding-joint at which the mechanical properties of the joint are maximized. That is, insufficient inter-material mixing and the accompanying sub-critical volume fraction of the intermetallic compounds results in insufficient inter-material bonding and inferior joint strength. Conversely, super-critical volume fraction of the intermetallic compounds typically gives rise to the joint embrittlement. To address the problem of the effect of the friction stir welding process parameters on the extent of intermetallic compound formation, a multi-physics computational framework has been developed and applied to the case of dissimilar metal friction stir welding involving commercially pure (CP) aluminum and AISI 1005 low-carbon steel. The multi-physics framework comprises the following main modules: (a) finite-element-based friction stir welding-process modeling; (b) quantum-mechanics, atomistic and CALPHAD-type continuum material thermodynamics analyses of the intermetallic compound-nucleation process; (c) a continuum-type analysis of multi-component diffusion-controlled growth of the intermetallic compounds; and (d) Kolmogorov-Johnson-Mehl-Avrami type analysis of the evolution of the intermetallic compound volume fraction within the friction stir welding joint as a function of the friction stir welding process parameters. The results obtained revealed that: (i) the extent and the spatial distribution of the intermetallic compounds is a sensitive function of the friction stir welding-process parameters; and (ii) among the six potential Al-Fe intermetallic compounds, FeAl and Fe3Al are associated with the largest volume fractions and, hence, play a key role in both attaining the required joint strength and in the potential loss of the joint fracture toughness.
机译:在异种金属摩擦搅拌焊接的情况下,材料间混合的程度和金属间化合物的形成对接头的结构完整性和机械性能起着至关重要的作用。通常,在摩擦搅拌焊接接头的混合区域中存在临界体积分数的金属间化合物,在该区域中,接头的机械性能最大化。即,材料间混合不足以及金属间化合物的伴随的次临界体积分数导致材料间结合不足和接头强度降低。相反,金属间化合物的超临界体积分数通常引起接头脆化。为了解决摩擦搅拌焊接工艺参数对金属间化合物形成程度的影响的问题,已开发了一种多物理场计算框架并将其应用于涉及商业纯铝(CP)和铝的异种金属摩擦搅拌焊接的情况。 AISI 1005低碳钢。多物理场框架包括以下主要模块:(a)基于有限元的搅拌摩擦焊接过程建模; (b)金属间化合物成核过程的量子力学,原子学和CALPHAD型连续体材料热力学分析; (c)金属间化合物的多组分扩散控制生长的连续型分析; (d)Kolmogorov-Johnson-Mehl-Avrami型式分析了搅拌摩擦焊接接头中金属间化合物体积分数随搅拌摩擦焊接工艺参数的变化。结果表明:(i)金属间化合物的范围和空间分布是搅拌摩擦焊接工艺参数的敏感函数; (ii)在六种潜在的Al-Fe金属间化合物中,FeAl和Fe3Al与最大的体积分数相关,因此,在获得所需的接头强度和接头断裂韧性的潜在损失方面都起着关键作用。

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