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1.
Materials (Basel) ; 13(1)2020 Jan 02.
Article in English | MEDLINE | ID: mdl-31906581

ABSTRACT

A novel strategy of microstructure design is introduced to improve the mechanical properties of TiAl alloys, fabricated by powder metallurgy. The gas atomization powder and as-HIPed (Hot isostatic pressing) TiAl are investigated by scanning electron microscopy, energy dispersive spectrometry, transmission electron microscopy, and electron backscattered diffraction. The dispersed submicron precipitate in the microstructure is determined to be Y2O3. A microstructure with uniform fine grain is obtained. The room temperature strength and strain reach 793 MPa and 1.5%, respectively. The strength and strain at 700 °C are still as high as 664 MPa and 9.2%, respectively. The fine grain and precipitate lead to a high room-temperature plasticity.

2.
Sci Rep ; 9(1): 12393, 2019 Aug 27.
Article in English | MEDLINE | ID: mdl-31455782

ABSTRACT

A novel forging process has been designed for better mechanical properties of Ti-43Al-6Nb-1Mo-1Cr-(0,0.6)B alloys in this paper. Multi step forging process could provide much finer microstructure, higher room-temperature strength, increased high-temperature strength and elongation with these alloys. The forged alloys without boron exhibit strength and elongation as 676.05 ± 11.37 MPa and 41.32 ± 1.38% at 800 °C, while the average grain size represents as 12.63 ± 3.77 µm. The forged alloys with 0.6 at.% B represent better mechanical properties than the forged alloys without boron, due to the refined microstructure with dispersive borides. Meanwhile, the detailed mechanism of increased strength and elongation caused by finer microstructure were concluded and discussed.

3.
Materials (Basel) ; 10(2)2017 Feb 18.
Article in English | MEDLINE | ID: mdl-28772561

ABSTRACT

In this study, an easily controlled transformation similar to the ß + α → ß + α + γ and the analysis of metastable phases in a ß solidifying Ti-44.5Al-8Nb-2.5V alloy were investigated. Therefore, a liquid alloy copper-quenching followed by annealing at an application temperature (850 °C) has been carried out. Following quenching, a microstructure composed of several supersaturated phases-the basket-weave ß0 (ßbv) phase, the plate-like α2 (αp) phase and the stripe-like γ (γs) phase-was obtained. In the annealing processes, phase transformations in the prior ßbv and αp phases domain corresponded nicely to the ß + α → ß + α + γ transformation during solidification. Also, in the annealed γs phase, the kinetics of the phase transformations involving the metastable L12 phase was firstly detected by transmission electron microscopy (TEM). The L12 phase had a lattice structure similar to the γ phase, whereas the composition of the phase was similar to the α2 phase. The formation of the γ pre-twin phase with an anti-phase boundary (APB) was detected in the γs phase of the matrix. The orientation relationships between the γs and precipitated: γ (γp) phase are <101]γs//<114]γp, (10 1 ¯ )γs//( 1 ¯ 10)γp and (0 1 ¯ 0)γs//(22 1 ¯ )γp.

4.
J Mech Behav Biomed Mater ; 4(8): 2074-80, 2011 Nov.
Article in English | MEDLINE | ID: mdl-22098907

ABSTRACT

A ß-type Ti-based composite, Ti-35Nb-2.5Sn-15-hydroxyapatite (HA), has been synthesized by mechanical alloying and powder metallurgy. The effects of milling time on microstructure, mechanical properties and biocompatibility of the sintered composites were investigated by scanning electronic microscopy (SEM), X-ray diffraction (XRD), microhardness tests, compression tests and cells culture. The results revealed when milling time increased, the homogeneity and relative density of the sintered composite increased, but the finished sintering temperature decreased. The compression Young's modulus of sintered composite from 12 h milled powders was about 22 GPa and its compression strength was 877 MPa. The cell culture results indicated cell viability for these sintered composites was very good. These results revealed the Ti-35Nb-2.5Sn-15HA composite could be useful for medical implants.


Subject(s)
Alloys/chemistry , Durapatite/chemistry , Hot Temperature , Mechanical Phenomena , Niobium/chemistry , Tin/chemistry , Titanium/chemistry , 3T3 Cells , Animals , Biocompatible Materials/chemistry , Biocompatible Materials/toxicity , Cell Survival/drug effects , Hardness , Mice , Powders , Stress, Mechanical , Time Factors
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