材料科学
合金
极限抗拉强度
机制(生物学)
本构方程
断裂(地质)
复合材料
冶金
结构工程
有限元法
工程类
哲学
认识论
作者
Dao‐Guang He,Yuan Chen,Shibing Chen,Y.C. Lin,Jia-Fu Wu
出处
期刊:Materials
[MDPI AG]
日期:2024-05-29
卷期号:17 (11): 2628-2628
摘要
High-temperature tensile tests were developed to explore the flow features of an Al-Zn-Mg-Cu alloy. The fracture characteristics and microstructural evolution mechanisms were thoroughly revealed. The results demonstrated that both intergranular fractures and ductile fractures occurred, which affected the hot tensile fracture mechanism. During high-temperature tensile, the second phase (Al2CuMg) at the grain boundaries (GBs) promoted the formation and accumulation of dimples. With the continual progression of high-temperature tensile, the aggregation/coarsening of dimples along GBs appear, aggravating the intergranular fracture. The coalescence and coarsen of dimples are reinforced at higher tensile temperatures or lower strain rates. Considering the impact of microstructural evolution and dimple formation/coarsening on tensile stresses, a physical mechanism constitutive (PMC) equation is herein proposed. According to the validation and analysis, the predictive results were in preferable accordance with the testing data, showing the outstanding reconfiguration capability of the PMC model for high-temperature tensile features in Al–Zn–Mg–Cu alloys.
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