Wang Peijie, Ma Chuanchuan, Xue Chun, Chu Zhibing
School of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China.
Materials (Basel). 2024 Dec 29;18(1):90. doi: 10.3390/ma18010090.
Damage mechanisms are a key factor in materials science and are essential for understanding and predicting the behavior of materials under complex loading conditions. In this paper, the influence of different directions, different rates and different model parameters on the mechanical behavior of AZ31 magnesium alloy during the tensile process is investigated based on the secondary development of the VUMAT user subroutine based on the GTN damage model and verified by the tensile experiments at different loading rates and in different directions. The results show that AZ31 magnesium alloy exhibits significant differences in mechanical properties in radial and axial stretching, where the yield strength is lower in the radial direction than in the axial direction, and the elongation is the opposite. Moreover, the maximum stress and elongation of the material decreased with the increasing tensile rate, revealing the importance of the loading rate on the material properties. Compared with the existing studies, this paper determines the GTN model parameters of the AZ31 magnesium alloy extruded state bar by theresponse surface method combined with the optimization algorithm and obtains the parameter set that can accurately describe the damage behavior of this material. The study also found that the nucleation-averaged plastic strain (εN) has the most significant effect on the maximum stress and fracture point of the stress-strain curve by the sensitivity analysis of six key parameters of the GTN model, while the other parameters change the shape of the curve and the local features to different degrees. Further analysis shows that the differences in yield strength and elongation can be attributed to the differences in basal slip, twinning behavior and dynamic recrystallization in the microstructure, which provides an important guidance for the optimization of the microstructure of AZ31 magnesium alloy. This study not only reveals the influence law of loading conditions on the mechanical properties of AZ31 magnesium alloy but also provides a theoretical basis and reference for understanding the damage mechanism of magnesium alloy and optimizing its mechanical properties.
损伤机制是材料科学中的关键因素,对于理解和预测材料在复杂加载条件下的行为至关重要。本文基于基于GTN损伤模型的VUMAT用户子程序的二次开发,研究了不同方向、不同速率和不同模型参数对AZ31镁合金拉伸过程中力学行为的影响,并通过不同加载速率和不同方向的拉伸实验进行了验证。结果表明,AZ31镁合金在径向和轴向拉伸时力学性能存在显著差异,径向屈服强度低于轴向,伸长率则相反。此外,材料的最大应力和伸长率随拉伸速率的增加而降低,揭示了加载速率对材料性能的重要性。与现有研究相比,本文采用响应面法结合优化算法确定了AZ31镁合金挤压态棒材的GTN模型参数,得到了能够准确描述该材料损伤行为的参数集。研究还发现,通过对GTN模型六个关键参数的敏感性分析,成核平均塑性应变(εN)对应力-应变曲线的最大应力和断裂点影响最为显著,而其他参数则不同程度地改变了曲线形状和局部特征。进一步分析表明,屈服强度和伸长率的差异可归因于微观结构中基面滑移、孪生行为和动态再结晶的差异,这为AZ31镁合金微观结构的优化提供了重要指导。本研究不仅揭示了加载条件对AZ31镁合金力学性能的影响规律,也为理解镁合金损伤机制和优化其力学性能提供了理论依据和参考。