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Ti-43Al-9V-0.2Y合金板材中γ相组成的动态再结晶及力学性能

Dynamic Recrystallization of the Constituent γ Phase and Mechanical Properties of Ti-43Al-9V-0.2Y Alloy Sheet.

作者信息

Zhang Yu, Wang Xiaopeng, Kong Fantao, Chen Yuyong

机构信息

State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin 150001, China.

National Key Laboratory of Science and Technology on Precision Heat Processing of Metals, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Materials (Basel). 2017 Sep 15;10(9):1089. doi: 10.3390/ma10091089.

Abstract

A crack-free Ti-43Al-9V-0.2Y alloy sheet was successfully fabricated via hot-pack rolling at 1200 °C. After hot-rolling, the β/γ lamellar microstructure of the as-forged TiAl alloy was completely converted into a homogeneous duplex microstructure with an average γ grain size of 10.5 μm. The dynamic recrystallization (DRX) of the γ phase was systematically investigated. A recrystallization fraction of 62.5% was obtained for the γ phase in the TiAl alloy sheet, when a threshold value of 0.8° was applied to the distribution of grain orientation spread (GOS) values. The high strain rate and high stress associated with hot-rolling are conducive for discontinuous dynamic recrystallization (DDRX) and continuous dynamic recrystallization (CDRX), respectively. A certain high-angle boundary (HAGB: θ = 89° ± 3°<100>), which is associated with DDRX, occurs in both the recrystallized and deformed γ grains. The twin boundaries play an important role in the DDRX of the γ phase. Additionally, the sub-structures and sub-boundaries originating from low-angle boundaries in the deformed grains also indicate that CDRX occurs. The mechanical properties of the alloy sheet were determined at both room and elevated temperatures. At 750 °C, the alloy sheet exhibited excellent elongation (53%), corresponding to a failure strength of 467 MPa.

摘要

通过在1200°C下进行热包轧成功制备了无裂纹的Ti-43Al-9V-0.2Y合金薄板。热轧后,锻造态TiAl合金的β/γ层片状微观结构完全转变为均匀的双相微观结构,γ相平均晶粒尺寸为10.5μm。系统研究了γ相的动态再结晶(DRX)。当对晶粒取向差(GOS)值的分布应用0.8°的阈值时,TiAl合金薄板中γ相的再结晶分数为62.5%。与热轧相关的高应变速率和高应力分别有利于不连续动态再结晶(DDRX)和连续动态再结晶(CDRX)。与DDRX相关的特定高角度边界(HAGB:θ = 89°±3°<100>)出现在再结晶和变形的γ晶粒中。孪晶界在γ相的DDRX中起重要作用。此外,变形晶粒中源自低角度边界的亚结构和亚晶界也表明发生了CDRX。在室温和高温下测定了合金薄板的力学性能。在750°C时,合金薄板表现出优异的伸长率(53%),对应于467MPa的断裂强度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e738/5615743/6d24ea24de61/materials-10-01089-g001.jpg

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