Microstructure and Phase Composition of VT1-0, VT6, and VT14 Titanium Alloys Produced by Wire-Feed Electron-Beam Additive Manufacturing; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 16, iss. 6

Detalhes bibliográficos
Parent link:Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques
Vol. 16, iss. 6.— 2022.— [P. 983-991]
Outros Autores: Panin A. V. Alexey Viktorovich, Kazachenok M. S. Marina Sergeevna, Kazantseva L. A. Lyudmila Aleseevna, Martynov S. A. Sergey Andreevich, Panina A. A. Aleksandra Anatolievna, Lobova T. A. Tatjyana Anatoljevna
Resumo:Title screen
Using optical, scanning- and transmission-electron microscopy, and also electron backscatter diffraction, we demonstrate that the microstructure of samples of commercially pure titanium VT1-0 and titanium alloys VT6 and VT14, obtained by the wire-feed electron-beam additive method, consists of columnar primary grains of the β phase of titanium containing crystals of packet and lamellar martensite phases. Х-ray diffraction phase analysis shows that the concentration of the residual β phase in the VT6 and VT14 samples is 2.9 and 10.5%, respectively. The concentration of alloying elements in the α and β phases of titanium alloys is measured by energy-dispersive analysis. The effect of alloying elements on the lattice parameters of the α phase of the samples is demonstrated. The different concentration of the residual β phase in titanium alloys VT6 and VT14 can be explained by considering the electronic structure of atoms of alloying elements. Tensile residual stress is present in samples VT1-0, while the residual stress in samples VT6 and VT14 is compressive. The presence of aluminum in the titanium alloys affects the sign and magnitude of the residual stress in titanium-alloy samples
Текстовый файл
AM_Agreement
Idioma:inglês
Publicado em: 2022
Assuntos:
Acesso em linha:https://doi.org/10.1134/S1027451022060180
Formato: Recurso Eletrônico Capítulo de Livro
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=669415

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200 1 |a Microstructure and Phase Composition of VT1-0, VT6, and VT14 Titanium Alloys Produced by Wire-Feed Electron-Beam Additive Manufacturing  |d Микроструктура и фазовый состав титановых сплавов ВТ1-0, ВТ6 и ВТ14, полученных методом электронно-лучевой проволочной аддитивной технологии  |f A. V. Panin, M. S. Kazachenok, L. A. Kazantseva [et al.] 
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330 |a Using optical, scanning- and transmission-electron microscopy, and also electron backscatter diffraction, we demonstrate that the microstructure of samples of commercially pure titanium VT1-0 and titanium alloys VT6 and VT14, obtained by the wire-feed electron-beam additive method, consists of columnar primary grains of the β phase of titanium containing crystals of packet and lamellar martensite phases. Х-ray diffraction phase analysis shows that the concentration of the residual β phase in the VT6 and VT14 samples is 2.9 and 10.5%, respectively. The concentration of alloying elements in the α and β phases of titanium alloys is measured by energy-dispersive analysis. The effect of alloying elements on the lattice parameters of the α phase of the samples is demonstrated. The different concentration of the residual β phase in titanium alloys VT6 and VT14 can be explained by considering the electronic structure of atoms of alloying elements. Tensile residual stress is present in samples VT1-0, while the residual stress in samples VT6 and VT14 is compressive. The presence of aluminum in the titanium alloys affects the sign and magnitude of the residual stress in titanium-alloy samples 
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610 1 |a titanium alloy VT14 (Ti–5Al–3Mo–1.5V) 
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