Hot Deformation Characteristics and Dynamic Recrystallization Mechanisms of a Semi-Solid Forged AZ91D Magnesium Alloy

Materials Pub Date : 2024-08-08 DOI:10.3390/ma17163939
Zehua Yan, Guozheng Zhang, Sheng Yang, Wei Zhang, H. Ning, Bo Xu
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Abstract

Magnesium alloys show great promise in high-speed transport, aerospace, and military technology; however, their widespread adoption encounters challenges attributed to limitations such as poor plasticity and strength. This study examines the high-temperature deformation of semi-solid forged AZ91D magnesium alloy through a combination of experiments and simulations, with a focus on comprehending the influence of deformation conditions on dynamic recrystallization (DRX). The findings disclose that conspicuous signs of DRX manifest in the yield stress curve as strain increases. Additionally, decreasing the strain rate and temperature correlates with a reduction in both yield stress and peak strain, and the activation energy is 156.814 kJ/mol, while the critical strain and peak strain remain relatively consistent (εc=0.66208εp). Microstructural changes during high-temperature deformation and the onset of DRX are thoroughly examined through experimental methods. Moreover, a critical strain model for DRX and a predictive model for the volume fraction of DRX were formulated. These equations and models, validated through a combination of experiments and simulations, serve as invaluable tools for predicting the mechanical behavior and microstructural evolution, which also establishes a foundation for accurately predicting the deformation behavior of this alloy. By analyzing the hot deformation characteristics and dynamic compression mechanism of the newly developed semi-solid forging AZ91D magnesium alloy, a numerical simulation model can be effectively established. This model objectively reflects the changes and distributions of stress, strain, and rheological velocity, providing a scientific basis for selecting subsequent plastic deformation process parameters and designing mold structures.
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半固态锻造 AZ91D 镁合金的热变形特性和动态再结晶机理
镁合金在高速运输、航空航天和军事技术领域大有可为;然而,由于塑性和强度较差等局限性,镁合金的广泛应用遇到了挑战。本研究通过实验和模拟相结合的方法研究了半固态锻造 AZ91D 镁合金的高温变形,重点是理解变形条件对动态再结晶(DRX)的影响。研究结果表明,随着应变的增加,屈服应力曲线上会出现明显的 DRX 征兆。此外,应变速率和温度的降低与屈服应力和峰值应变的降低相关,活化能为 156.814 kJ/mol,而临界应变和峰值应变保持相对一致(εc=0.66208εp)。通过实验方法深入研究了高温变形过程中的微观结构变化和 DRX 的发生。此外,还建立了 DRX 临界应变模型和 DRX 体积分数预测模型。这些方程和模型通过实验和模拟相结合的方法得到了验证,是预测力学行为和微结构演变的宝贵工具,也为准确预测该合金的变形行为奠定了基础。通过分析新开发的半固态锻造 AZ91D 镁合金的热变形特性和动态压缩机理,可以有效地建立一个数值模拟模型。该模型客观反映了应力、应变和流变速度的变化和分布,为后续塑性变形工艺参数的选择和模具结构的设计提供了科学依据。
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