Aluminum Bronze Crystallization on Deformed Base during Electron Beam Additive Manufacturing

被引:1
|
作者
Nikonov, Anton Y. [1 ,2 ]
Lychagin, Dmitry V. [1 ,3 ]
Bibko, Artem A. [1 ,3 ]
Novitskaya, Olga S. [1 ]
机构
[1] RAS, ISPMS Inst Strength Phys & Mat Sci, SB, Akad Skii Pr 2-4, Tomsk 634055, Russia
[2] TSU Tomsk State Univ, Dept Met Phys, Lenin Ave 36, Tomsk 634050, Russia
[3] TSU Tomsk State Univ, Dept Mineral & Geochem, Lenin Ave 36, Tomsk 634050, Russia
基金
俄罗斯科学基金会;
关键词
additive manufacturing; aluminum bronze; molecular dynamics simulation; electron backscatter diffraction; MOLECULAR-DYNAMICS; STRUCTURAL EVOLUTION; COPPER; MICROSTRUCTURE; ALLOY; DEFORMATION; SIMULATION; WIRE;
D O I
10.3390/met13061012
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To obtain products by using additive manufacturing (AM) methods, it is necessary to take into account the features of the formed internal structure of the material. The internal structure depends on the 3D printing parameters. To predict it, it is effective to use computer modeling methods. For this purpose, using the example of aluminum bronze, the influence of the base structure and heat input during surfacing on the grain structure of the deposited layers was studied. To create numerical models, we used data obtained from electron backscatter diffraction (EBSD) analysis of samples. The heterogeneity of the formation of the structure in each selected zone is established, which indicates the heterogeneity of heat input in local areas of the material in one mode of surfacing. For typical cases of crystallization, modeling using the molecular dynamics (MD) method of crystallization processes with different heat inputs to the base with characteristics specified based on experimental data was carried out. It was established that the amount of heat input determines the degree of melting and the inherited defectiveness of growing crystals. The formation of misorientation boundaries and crystallization centers of new grains is determined by the conditions of joint growth of grains with given crystallographic parameters of the computational model. The grain structure obtained as a result of simulation is consistent with the experimentally observed structure of the samples.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Influence of Electron Beam Additive Manufacturing on the Friction and Wear of Aluminum Bronze
    Filippov A.V.
    Shamarin N.N.
    Khoroshko E.S.
    [J]. Russian Engineering Research, 2023, 43 (05) : 588 - 591
  • [2] Anisotropy of the Mechanical Properties of the Aluminum Bronze Obtained by the Electron Beam Additive Manufacturing
    Khoroshko, E. S.
    Filippov, A., V
    Shamarin, N. N.
    Tarasov, S. Yu
    [J]. PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON PHYSICAL MESOMECHANICS. MATERIALS WITH MULTILEVEL HIERARCHICAL STRUCTURE AND INTELLIGENT MANUFACTURING TECHNOLOGY, 2020, 2310
  • [3] Growth and Deformation Simulation of Aluminum Bronze Grains Produced by Electron Beam Additive Manufacturing
    Nikonov, Anton Yu.
    Lychagin, Dmitry V.
    Bibko, Artem A.
    Novitskaya, Olga S.
    [J]. METALS, 2022, 12 (01)
  • [4] Study of the Structure and Mechanical Properties of Aluminum Bronze Printed by Electron Beam Additive Manufacturing
    Khoroshko, Ekaterina
    Filippov, Andrey
    Tarasov, Sergei
    Shamarin, Nikolay
    Kolubaev, Evgeny
    Moskvichev, Evgeny
    Lychagin, Dmitry
    [J]. OBRABOTKA METALLOV-METAL WORKING AND MATERIAL SCIENCE, 2020, 22 (02): : 118 - 129
  • [5] Process Setup and Boundaries of Wire Electron Beam Additive Manufacturing of High-Strength Aluminum Bronze
    Raute, Julius
    Biegler, Max
    Rethmeier, Michael
    [J]. METALS, 2023, 13 (08)
  • [6] Hardening Mechanisms in Stainless Steel/Aluminum Bronze Composite Fabricated Using Electron Beam Additive Manufacturing
    Zykova A.P.
    Panfilov A.O.
    Vorontsov A.V.
    Kolubaev E.A.
    Tarasov S.Y.
    [J]. Steel in Translation, 2022, 52 (10) : 912 - 919
  • [7] Formation of Microstructure and Mechanical Characteristics in Electron Beam Additive Manufacturing of Aluminum Bronze with an In-Situ Adjustment of the Heat Input
    Zykova, A. P.
    Panfilov, A. O.
    Chumaevskii, A., V
    Vorontsov, A. V.
    Nikonov, S. Yu
    Moskvichev, E. N.
    Gurianov, D. A.
    Savchenko, N. L.
    Tarasov, S. Yu
    Kolubaev, E. A.
    [J]. RUSSIAN PHYSICS JOURNAL, 2022, 65 (05) : 811 - 817
  • [8] Aluminum Bronze/Udimet 500 Composites Prepared by Electron-Beam Additive Double-Wire-Feed Manufacturing
    Zykova, Anna
    Chumaevskii, Andrey
    Panfilov, Aleksandr
    Vorontsov, Andrey
    Nikolaeva, Aleksandra
    Osipovich, Kseniya
    Gusarova, Anastasija
    Chebodaeva, Valentina
    Nikonov, Sergey
    Gurianov, Denis
    Filippov, Andrey
    Dobrovolsky, Artem
    Kolubaev, Evgeny
    Tarasov, Sergei
    [J]. MATERIALS, 2022, 15 (18)
  • [9] Formation of Microstructure and Mechanical Characteristics in Electron Beam Additive Manufacturing of Aluminum Bronze with an In-Situ Adjustment of the Heat Input
    A. P. Zykova
    A. O. Panfilov
    A. V. Chumaevskii
    A. V. Vorontsov
    S. Yu Nikonov
    E. N. Moskvichev
    D. A. Gurianov
    N. L. Savchenko
    S. Yu Tarasov
    E. A. Kolubaev
    [J]. Russian Physics Journal, 2022, 65 : 811 - 817
  • [10] In-situ dispersion hardened aluminum bronze/steel composites prepared using a double wire electron beam additive manufacturing
    Anna Zykova
    Aleksandr Panfilov
    Andrey Chumaevskii
    Andrey Vorontsov
    Evgeny Moskvichev
    Sergey Nikonov
    Denis Gurianov
    Nickolai Savchenko
    Evgeny Kolubaev
    Sergei Tarasov
    [J]. Progress in Additive Manufacturing, 2023, 8 : 1067 - 1082