Mechanistic Origin of Ductility in Precipitation Hardening AlMgScZr Alloys

Han Chen, Zhe Chen, G. Ji, S. Zhong, Hao Wei Wang, A. Borbély, Y. Ke, Y. Bréchet
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Abstract

Precipitation hardening is the most effective strategy to enhance the mechanical properties of metals. Dislocation mechanisms to control strengthening during precipitation have been demonstrated extensively. However, owing to the complexity of different precipitates in alloys, variations in ductility caused by precipitation are very complex and have not been clarified so far. In this study, the effects of precipitation on ductility in precipitation hardening aluminium alloys are investigated based on a modified dislocation-based approach and experimental characterisation. The AlMgScZr alloy with spherical Al3(Sc, Zr) precipitates is used as a model alloy system to understand the effects of precipitation on ductility. Via heat treatment, shearable and non-shearable Al3(Sc, Zr) precipitates are introduced in the AlMg matrix. The results show that the ductility of AlMgScZr alloy decreases when shearable precipitates occur, while it increases during the shearable–non-shearable transition. The variation in ductility is mainly controlled by the dynamic recovery rate of the dislocations. This dislocation mechanism is supported by analysing the different precipitation–dislocation interactions and evaluating the dislocation density evolution during deformation. This study reveals the dislocation mechanism for controlling ductility during precipitation, which can provide a theoretical foundation for the design of high-performance structural materials.
析出硬化AlMgScZr合金塑性的机理
沉淀硬化是提高金属力学性能最有效的方法。在沉淀过程中控制强化的位错机制已经得到了广泛的证明。然而,由于合金中不同析出物的复杂性,由析出物引起的延性变化非常复杂,迄今尚未得到澄清。在本研究中,基于改进的位错方法和实验表征,研究了沉淀硬化铝合金中析出物对塑性的影响。以具有球形Al3(Sc, Zr)析出相的AlMgScZr合金为模型合金体系,研究了析出相对塑性的影响。通过热处理,在AlMg基体中引入了可剪切和不可剪切Al3(Sc, Zr)相。结果表明:AlMgScZr合金在可剪切析出时塑性降低,而在可剪切-不可剪切过渡时塑性提高;塑性的变化主要受位错动态恢复速率的控制。通过分析不同的析出-位错相互作用以及变形过程中位错密度的演化,支持了这种位错机制。本研究揭示了位错在析出过程中控制塑性的机理,可为高性能结构材料的设计提供理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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