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Design strategy for microalloyed ultra-ductile magnesium alloys

机译:微合金超韧性镁合金的设计策略

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This article describes a design strategy deployed in developing ultra-ductile Mg alloys based on a microalloying concept, which aims to restrict grain growth considerably during alloy casting and forming. We discuss the efficiency of the design approach, and evaluate the resulting microstruc-tural and mechanical properties. After processing, the so-designed alloys ZQCa3 (Mg-3Zn-0.5Ag-0.25Ca-0.15Mn , in wt.%) and ZKQCa3 (Mg-3Zn-0.5Zr-0.5Ag-0.25Ca-0.15Mn , in wt.%) reveal very fine grains (<10mum), high ductility (elongation to fracture of up to 30%) at moderate strength or high strength (ultimate tensile strength of up to 350 MPa) at reasonable ductility. These properties are explained based on thermodynamic modelling, microstructure analysis including transmission electron microscopy studies, and microstructural and mechanical testing after annealing, and are compared to a related commercial alloy (ZK31).
机译:本文介绍了一种基于微合金化概念开发超延展镁合金的设计策略,该策略旨在在合金铸造和成形过程中极大地限制晶粒的生长。我们讨论了设计方法的效率,并评估了所产生的微观结构和机械性能。加工后,如此设计的合金ZQCa3(Mg-3Zn-0.5Ag-0.25Ca-0.15Mn,以重量%计)和Z​​KQCa3(Mg-3Zn-0.5Zr-0.5Ag-0.25Ca-0.15Mn,以重量计)。 %)表现出非常细的晶粒(<10mum),在中等强度下具有高延展性(断裂伸长率最高可达30%)或在合理的延性下具有高强度(最高抗拉强度可达350 MPa)。这些性质基于热力学建模,包括透射电子显微镜研究在内的微观结构分析以及退火后的微观结构和机械测试进行了解释,并与相关的商用合金(ZK31)进行了比较。

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