镁合金差速循环扩挤仿真与组织演变规律研究

    Numerical Simulation and Microstructural Evolution Investigation on Cyclic Expansion Extrusion of Magnesium Alloys

    • 摘要: 镁合金是目前工程应用领域最轻的结构金属材料,是装备轻量化的重要选材。细晶强化是同时提升镁合金强韧化的有效手段。提出一种压应力与剪切应力结合的往复变形大塑性变形工艺——差速循环扩挤,在一般循环扩挤变形基础上加入了非对称型腔,改变了金属流动规律,可以通过多次变形获得组织均匀细化的镁合金。采用Deform-3D有限元软件开展了不同模具结构与变形路径下(A、B路径)的数值模拟,分析了镁合金在成形过程中的应力场与应变场的变化规律,并通过试验分析合金不同路径与不同道次下的组织与织构演变规律。结果表明:差速变形通过膨胀充型与非对称挤压协同作用调控材料流动,其中A路径因梯度不对称应力场(非对称性随型腔高度差增大而增强)导致应变区域异质性,即非对称区>对称区>心部,而B路径通过多向应变协调机制实现应力/应变场均匀性提升。B路径凭借非平面应变效应与动态再结晶协同作用,晶粒细化显著优于A路径且长周期有序堆垛相(LPSO)相破碎程度与分布均匀性提高。多道次变形驱动(0002)基面织构极密度由3.7降低至1.8,晶粒多向随机排列特征显著,为调控镁合金各向异性提供了可量化工艺窗口。

       

      Abstract: Magnesium alloys, as the lightest structural metallic materials in engineering applications, serve as critical candidates for equipment lightweighting. Grain refinement strengthening is an effective strategy to simultaneously enhance the strength and toughness. A novel severe plastic deformation process-cyclic expansion extrusion with an asymmetrical extrusion cavity(CEE-AEC) was proposed, which combined compressive and shear stress. By introducing asymmetric cavities into conventional cyclic expansion-extrusion, the process modified metal flow patterns, enabling the fabrication of magnesium alloys with homogeneous refined microstructures through multi-pass deformation. Numerical simulations using Deform-3D finite element software were conducted to investigate stress/strain field evolution under varying die parameters and deformation paths(Route A, B). The experimental analyses further elucidated the microstructure and texture evolution under different paths and passes. The results show that CEE-AEC regulates material flow through synergistic effects of expansion filling and asymmetric extrusion. In Route A, the gradient asymmetric stress field(with enhanced asymmetry corresponding to increased height difference in the cavity) induces heterogeneous strain distribution across regions, where the strain magnitude follows: asymmetric zone>symmetric zone>core region. In contrast, Route B achieves improved stress/strain field uniformity through a multi-directional strain coordination mechanism.Leveraging non-planar strain effects coupled with dynamic recrystallization, Route B exhibits superior grain refinement compared to Route A, along with enhancing fragmentation and homogeneous distribution of long-period stacking ordered(LPSO) phases. Multi-pass deformation processing drives the(0002) basal texture intensity reduction from 3.7 to 1.8, accompanied by significant multi-directional random grain orientation characteristics. A quantifiable process window for regulating anisotropy in magnesium alloys was established.

       

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