Influence of anisotropy properties and structural inhomogeneity on elasticity and fracture of titanium alloys produced by electron-beam melting

被引:1
作者
Klimenov, Vasiliy A. [1 ]
Kolubaev, Evgeny A. [2 ]
Han, Zeli [1 ]
Chumaevskii, Andrey V. [2 ]
Klopotov, Anatoly A. [3 ]
Ustinov, Artem M. [3 ]
Kovalevskaya, Zhanna G. [1 ]
Moskvichev, Evgeny [2 ]
Pan, Menghua [1 ]
机构
[1] Natl Res Tomsk Polytech Univ, Div Mat Sci, 30 Lenin Ave, Tomsk 634050, Russia
[2] RAS, Siberian Branch, Inst Strength Phys & Mat Sci, 2-4 Pr Akad Skii, Tomsk 634055, Russia
[3] Tomsk State Univ Architecture & Bldg, Dept Appl Mech & Mat Sci, Solyanaya Sq 2, Tomsk 634003, Russia
关键词
Additive manufacturing; Electron beam; Titanium wire; Structure and properties; Anisotropy; Inhomogeneity; MECHANICAL-PROPERTIES; TI-6AL-4V;
D O I
10.1007/s00170-024-14843-7
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The paper studies the influence of anisotropy of properties and structural inhomogeneity on hardness and mechanical properties of titanium Ti-4Al-3 V alloy produced by wire-feed electron-beam additive manufacturing. Tensile and compressive strength testing of the alloy specimens determines its elastic modulus and strength properties at different points. VIC-3D digital optical system is used to study the mechanical properties of the material under stress. The fractography analysis explains the observed behavior of the material under different loading. It is shown that after the tension, specimens possess close values of mechanical properties in various directions, except for their bottom, where the structure changes due to partial mixing of deposited and substrate materials. Just the material plasticity changes notably in the volume, which is the highest in the growth direction. This is probably stipulated by the low number of barriers to the dislocation motion during tension. In compressive strength testing, constrained conditions for the dislocation motion in columnar grains provide a higher strength for specimens cut in the growth direction, than for those cut in the printing direction. All this will allow us to more accurately choose the hardening technology of such materials and probably recommend methods of fabricating small-sized parts.
引用
收藏
页码:5575 / 5594
页数:20
相关论文
共 52 条
[1]  
[Anonymous], 1986, GOST 1497-84
[2]  
[Anonymous], 1997, GOST 25.503-97
[3]  
Babichev AP., 1991, Physical values: manual
[4]   Crystallographic texture and mechanical properties by electron beam freeform fabrication of copper/steel gradient composite materials [J].
Chen, Guoqing ;
Shu, Xi ;
Liu, Junpeng ;
Zhang, Binggang ;
Feng, Jicai .
VACUUM, 2020, 171
[5]   Microstructural Control of Additively Manufactured Metallic Materials [J].
Collins, P. C. ;
Brice, D. A. ;
Samimi, P. ;
Ghamarian, I. ;
Fraser, H. L. .
ANNUAL REVIEW OF MATERIALS RESEARCH, VOL 46, 2016, 46 :63-91
[6]   Metallurgy, mechanistic models and machine learning in metal printing [J].
DebRoy, T. ;
Mukherjee, T. ;
Wei, H. L. ;
Elmer, J. W. ;
Milewski, J. O. .
NATURE REVIEWS MATERIALS, 2021, 6 (01) :48-68
[7]  
[Федоров Василий Викторович Fedorov V.V.], 2020, [Фундаментальные проблемы современного материаловедения, Fundamental'nye problemy sovremennogo materialovedenia, Fundamental'nye problemy sovremennogo materialovedeniya], V17, P243, DOI 10.25712/ASTU.1811-1416.2020.02.015
[8]   Directional Solidification of a Nickel-Based Superalloy Product Structure Fabricated on Stainless Steel Substrate by Electron Beam Additive Manufacturing [J].
Fortuna, S., V ;
Gurianov, D. A. ;
Kalashnikov, K. N. ;
Chumaevskii, A., V ;
Mironov, Yu P. ;
Kolubaev, E. A. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2021, 52 (02) :857-870
[9]   On the Control of Elemental Composition, Macro-, and Microstructure of Directionally Solidified Additive Products from Nickel-Based Alloy [J].
Fortuna, Sergey ;
Gurianov, Denis ;
Nikonov, Sergey ;
Osipovich, Kseniya ;
Kolubaev, Evgeny .
METALS, 2023, 13 (08)
[10]  
Gaspar B, 2012, Materials Engineering