Chuhao Liu, Di Xie, Yanfei Gao, Xiaodan Zhang, Shengyi Zhong, Huamiao Wang, Ke An, Peter K. Liaw, Yinghong Peng
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引用次数: 0
摘要
通过原位中子衍射(ND)测量和晶体塑性建模,研究了有沉淀物和无沉淀物[Guinier-Preston(GP)区]的挤压镁合金在循环变形下的微观变形机制。建立了宏观循环变形行为与晶粒级微观反应(尤其是孪晶和脱晶)之间的关系。在疲劳循环过程中,溶液态(ST)样品的一般变形机制演变与峰值老化态(PA)样品相似。两种样品在压缩过程中都通过拉伸孪晶产生塑性变形,而在反向拉伸过程中则通过连续的脱翅和位错运动产生塑性变形。主要区别在于,在 PA 样品中,沉淀颗粒的存在限制了孪生/脱孪行为,导致位错滑移在塑性变形中的参与度增加,进而在循环加载过程中产生强化效应。结合之前的原位 ND 结果和晶体塑性模型,我们的工作全面分析了在整个多循环周期加载下沉淀强化和孪晶/脱晶机制之间的相互作用,以及它们对沉淀强化镁合金宏观和微观力学行为的影响。
Precipitation-strengthened micromechanical behaviors of magnesium alloy under cyclic loading
The microscopic-deformation mechanisms of an extruded magnesium alloy with and without precipitates [Guinier-Preston (GP) zones] subjected to cyclic deformation were investigated by in-situ neutron-diffraction (ND) measurements and crystal-plasticity modeling. The relationship between the macroscopic-cyclic-deformation behavior and the microscopic responses (particularly twinning and detwinning) at the grain level was established. The general deformation-mechanism evolution in the solution-state (ST) sample was similar to that in the peak-aged-state (PA) sample over fatigue cycles. Both samples plastically deformed by extension twinning during compression, and by a sequential process of detwinning and dislocation motion under reverse tension. The main difference is that in the PA sample, the presence of precipitating particles constrains the twinning/detwinning behaviors, which leads to an increase in the participation of dislocation slip in the plastic deformation and then induces a strengthening effect during cyclic loading. Based on the combination of the previous in-situ ND results and crystal-plasticity model, our work provides a comprehensive analysis of the interaction between the precipitation strengthening and twinning/detwinning mechanism under the whole multi-cycle cyclic loading and their effect on the macro- and micro-mechanical behavior of the precipitate-strengthened magnesium alloys.
期刊介绍:
The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.