Hot deformation behavior and processing map of a powder metallurgy Ti–22Al–25Nb alloy

It can be discovered that the nucleation occurs at trigeminal grain boundary. It is easy for newly formed recrystallized grains to grow owing to large recrystallization driving force, and then necklace-shaped grains with serrated grain boundary form along the elongated grains boundaries. [Display om...

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Published inJournal of alloys and compounds Vol. 600; pp. 215 - 221
Main Authors Jia, Jianbo, Zhang, Kaifeng, Liu, Liming, Wu, Fuyao
Format Journal Article
LanguageEnglish
Published Kidlington Elsevier B.V 05.07.2014
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Abstract It can be discovered that the nucleation occurs at trigeminal grain boundary. It is easy for newly formed recrystallized grains to grow owing to large recrystallization driving force, and then necklace-shaped grains with serrated grain boundary form along the elongated grains boundaries. [Display omitted] •A powder metallurgy Ti–22Al–25Nb alloy was fabricated by hot pressed sintering.•Isothermal compression tests of the P/M Ti–22Al–25Nb alloy were performed.•The hot deformation behavior was studied by processing maps and microstructures.•Stability and instability domains were obtained based on the instability parameters.•The deformation mechanisms and microstructures in stability domains were discussed. Powder metallurgy (P/M) Ti–22Al–25Nb alloy billets were fabricated by hot pressing (HP) from argon atomized pre-alloyed powders at a temperature of 1050°C under a pressure of 35MPa, sintering for 1h. Cylindrical specimens from HP’ed billets were compressed within the deformation temperature range of 950–1070°C using strain rates from 0.001 to 1s−1 to a height reduction of 50%. Processing maps at strains of 0.4 and 0.6 were constructed on the basis of dynamic material model (DMM) theory by using the flow stress data obtained from hot compression tests. The processing map at a strain of 0.6 reveals a single dynamic recrystallization (DRX) domain and three lamellar globularization domains. Furthermore, an instability region is exhibited at temperatures lower than 980°C and strain rates higher than 0.1s−1. The hot deformation behavior regimes represented by DRX, lamellar globularization and the instability flow have been discussed in reference to microstructural evolution during hot compression. Kinetic analysis of the flow stress data at a strain of 0.6 was investigated. The results indicate that dislocation slip and climb (DSC) are likely to be the deformation mechanism responsible for the stability domains.
AbstractList Powder metallurgy (P/M) Ti-22Al-25Nb alloy billets were fabricated by hot pressing (HP) from argon atomized pre-alloyed powders at a temperature of 1050 [degrees]C under a pressure of 35 MPa, sintering for 1 h. Cylindrical specimens from HP'ed billets were compressed within the deformation temperature range of 950-1070 [degrees]C using strain rates from 0.001 to 1 s super(-1) to a height reduction of 50%. Processing maps at strains of 0.4 and 0.6 were constructed on the basis of dynamic material model (DMM) theory by using the flow stress data obtained from hot compression tests. The processing map at a strain of 0.6 reveals a single dynamic recrystallization (DRX) domain and three lamellar globularization domains. Furthermore, an instability region is exhibited at temperatures lower than 980 [degrees]C and strain rates higher than 0.1 s super(-1). The hot deformation behavior regimes represented by DRX, lamellar globularization and the instability flow have been discussed in reference to microstructural evolution during hot compression. Kinetic analysis of the flow stress data at a strain of 0.6 was investigated. The results indicate that dislocation slip and climb (DSC) are likely to be the deformation mechanism responsible for the stability domains.
It can be discovered that the nucleation occurs at trigeminal grain boundary. It is easy for newly formed recrystallized grains to grow owing to large recrystallization driving force, and then necklace-shaped grains with serrated grain boundary form along the elongated grains boundaries. [Display omitted] •A powder metallurgy Ti–22Al–25Nb alloy was fabricated by hot pressed sintering.•Isothermal compression tests of the P/M Ti–22Al–25Nb alloy were performed.•The hot deformation behavior was studied by processing maps and microstructures.•Stability and instability domains were obtained based on the instability parameters.•The deformation mechanisms and microstructures in stability domains were discussed. Powder metallurgy (P/M) Ti–22Al–25Nb alloy billets were fabricated by hot pressing (HP) from argon atomized pre-alloyed powders at a temperature of 1050°C under a pressure of 35MPa, sintering for 1h. Cylindrical specimens from HP’ed billets were compressed within the deformation temperature range of 950–1070°C using strain rates from 0.001 to 1s−1 to a height reduction of 50%. Processing maps at strains of 0.4 and 0.6 were constructed on the basis of dynamic material model (DMM) theory by using the flow stress data obtained from hot compression tests. The processing map at a strain of 0.6 reveals a single dynamic recrystallization (DRX) domain and three lamellar globularization domains. Furthermore, an instability region is exhibited at temperatures lower than 980°C and strain rates higher than 0.1s−1. The hot deformation behavior regimes represented by DRX, lamellar globularization and the instability flow have been discussed in reference to microstructural evolution during hot compression. Kinetic analysis of the flow stress data at a strain of 0.6 was investigated. The results indicate that dislocation slip and climb (DSC) are likely to be the deformation mechanism responsible for the stability domains.
Author Zhang, Kaifeng
Jia, Jianbo
Liu, Liming
Wu, Fuyao
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  surname: Liu
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  organization: Research Institute of Aerospace Special Material and Technology, China Aerospace Science and Industry Corporation, Beijing 100074, China
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Keywords P/M Ti–22Al–25Nb alloy
Kinetic analysis
Processing maps
Dynamic recrystallization
Instability flow
Plastic flow
Compressive testing
Dislocation glide
Niobium alloys
Dynamical recrystallization
Powder metallurgy
Titanium base alloys
Dislocation climb
Hot pressing
Aluminium alloys
Sintering
Kinetics
Atomizing
P/M Ti-22Al-25Nb alloy
Transition element alloys
Strain rate
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Snippet It can be discovered that the nucleation occurs at trigeminal grain boundary. It is easy for newly formed recrystallized grains to grow owing to large...
Powder metallurgy (P/M) Ti-22Al-25Nb alloy billets were fabricated by hot pressing (HP) from argon atomized pre-alloyed powders at a temperature of 1050...
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pascalfrancis
elsevier
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StartPage 215
SubjectTerms Alloy powders
Applied sciences
Billets
Cold working, work hardening; annealing, quenching, tempering, recovery, and recrystallization; textures
Cross-disciplinary physics: materials science; rheology
Deformation
Dynamic recrystallization
Elasticity. Plasticity
Exact sciences and technology
Hot pressing
Instability
Instability flow
Kinetic analysis
Materials science
Mechanical properties and methods of testing. Rheology. Fracture mechanics. Tribology
Metals. Metallurgy
P/M Ti–22Al–25Nb alloy
Physics
Powder metallurgy
Processing maps
Stability
Strain
Titanium base alloys
Treatment of materials and its effects on microstructure and properties
Title Hot deformation behavior and processing map of a powder metallurgy Ti–22Al–25Nb alloy
URI https://dx.doi.org/10.1016/j.jallcom.2014.02.116
https://search.proquest.com/docview/1559694557
https://search.proquest.com/docview/1677907484
Volume 600
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