Hot Deformation Behavior and Microstructural Evolution of PM Ti43Al9V0.3Y with Fine Equiaxed γ and B2 Grain Microstructure

The hot deformation behavior and microstructure evolution of powder metallurgy (PM) Ti43Al9V0.3Y alloy with fine equiaxed γ and B2 grains were investigated using uniaxial hot compression. Its stress exponent and activation energy were 2.78 and 295.86 kJ/mol, respectively. The efficiency of...

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Bibliographic Details
Main Authors: Dongdong Zhang, Yuyong Chen, Guoqing Zhang, Na Liu, Fantao Kong, Jing Tian, Jianfei Sun
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/4/896
Description
Summary:The hot deformation behavior and microstructure evolution of powder metallurgy (PM) Ti43Al9V0.3Y alloy with fine equiaxed &#947; and B2 grains were investigated using uniaxial hot compression. Its stress exponent and activation energy were 2.78 and 295.86 kJ/mol, respectively. The efficiency of power dissipation and instability parameters were evaluated, and processing maps at 50% and 80% strains were developed. It is demonstrated that the microstructure evolution was dependent on the temperature, strain, and strain rate. Both temperature and strain increases led to a decrease in the &#947; phase. Moreover, dynamic recrystallization (DRX) and grain boundary slip both played important roles in deformation. Reasonable parameters for secondary hot working included temperatures above 1100 &#176;C but below 1200 &#176;C with a strain rate of less than 1 s<sup>&#8722;1</sup> at 80% strain. Suitable hot working parameters at 50% strain were 1150&#8722;1200 &#176;C/&#8804;1 s<sup>&#8722;1</sup> and 1000&#8722;1200 &#176;C/&#8804;0.05 s<sup>&#8722;1</sup>.
ISSN:1996-1944