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PHF 工艺下 Al-Li 合金的力学性能与微观结构演变

Mechanical Properties and Microstructure Evolution of Al-Li Alloy Under the PHF Process.

作者信息

Gong Zhiang, Huang Xiang, Wang Peiliao, Ma Huijuan

机构信息

Hubei Key Laboratory of Advanced Technology for Automotive Components, Wuhan University of Technology, Wuhan 430070, China.

Hubei Collaborative Innovation Center for Automotive Components Technology, Wuhan 430070, China.

出版信息

Materials (Basel). 2025 Jan 26;18(3):566. doi: 10.3390/ma18030566.

Abstract

Currently, Al-Li alloys have been widely concerned in the aerospace and other fields due to their excellent comprehensive mechanical properties. However, the limitation of the long thermomechanical treatment still needs further improvement. Therefore, for an Al-Li alloy with multiple strengthening phases, this work proposes a pre-strain and pre-aged hardening warm forming (PHF) process. In the process, the multiphase precipitation and phase transformation are regulated by macro-control of the pre-strain, pre-aging, and warm forming stages. It is discovered that the 2A97 Al-Li alloy, with "7% pre-strain + 80 °C/16 h pre-aging + 250 °C/10 min warm forming", exhibits the relatively optimal tensile/yield strength of 565.3 MPa/531.2 MPa. The addition of pre-strain facilitates the nucleation and precipitation of T phases through the consumption of δ' phases and θ' phases and promotes dynamic recrystallization during the warm forming process. The fine and uniform T phases are observed at the warm-maintaining time of 10 min. However, further extension of warm-maintaining time results in the coarsening of T phases and the reduction in strength. The proposed PHF process significantly shortens the thermomechanical treatment cycle of Al-Li alloys, which provides theoretical guidance for exploring the new short-process forming method.

摘要

目前,铝锂合金因其优异的综合力学性能而在航空航天等领域受到广泛关注。然而,长时间热机械处理的局限性仍有待进一步改善。因此,对于一种具有多种强化相的铝锂合金,本研究提出了一种预应变和预时效强化温成形(PHF)工艺。在此工艺中,通过对预应变、预时效和温成形阶段的宏观控制来调控多相析出和相变。研究发现,2A97铝锂合金在“7%预应变+80℃/16h预时效+250℃/10min温成形”条件下,表现出相对最优的抗拉强度/屈服强度,分别为565.3MPa/531.2MPa。预应变的加入通过消耗δ'相和θ'相促进了T相的形核和析出,并在温成形过程中促进了动态再结晶。在保温10min时观察到细小且均匀的T相。然而,保温时间的进一步延长会导致T相粗化且强度降低。所提出的PHF工艺显著缩短了铝锂合金的热机械处理周期,为探索新型短流程成形方法提供了理论指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5bc/11818580/91bca11291e5/materials-18-00566-g001.jpg

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