Features of the product formation by the electron beam deposition method

被引:0
作者
Gudenko A.V. [1 ]
Sliva A.P. [1 ]
Dragunov V.K. [1 ]
Shcherbakov A.V. [1 ]
机构
[1] Moscow Power Engineering Institute (MEI), National Research University, Moscow
关键词
corrosion-resistant austenitic steel; deposited wire; deposition rate; Electron beam deposition; microstructure of deposited metal;
D O I
10.1080/09507116.2021.1919449
中图分类号
学科分类号
摘要
Electron beam deposition is a process that involves the use of an electron beam as a source of energy and wire as a raw material for the fabrication of metal products with complex shape in a vacuum and is part of the promising additive technologies group. In this paper a methodology for determining the electron-beam deposition regimes of a wire by the example of corrosion-resistant austenitic steel ANSI 316L is proposed. The proposed calculation methodology connects the main parameters of the process: the electron beam current, the addition wire feed rate, the movement speed of the electron gun and the dimensions of the deposited rollers. The investigation results of the microstructure and properties of the deposited metal are presented. Examples of the obtained cylindrical and conical products are adduced. © 2021 Informa UK Limited, trading as Taylor & Francis Group.
引用
收藏
页码:17 / 23
页数:6
相关论文
共 50 条
  • [21] Electron beam induced deposition of iron carbon nanostructures from iron dodecacarbonyl vapour
    Bruk, MA
    Zhikharev, EN
    Grigoriev, EI
    Spirin, AV
    Kalnov, VA
    Kardash, IE
    MICRO- AND NANOELECTRONICS 2003, 2004, 5401 : 305 - 310
  • [22] Electron beam versus thermal deposition of aluminum top electrode for organic solar cells
    Ablat, Abduleziz
    Hirsch, Lionel
    Abbas, Mamatimin
    MATERIALS LETTERS, 2022, 312
  • [23] Low-energy electron beam deposition of drug coatings intended for burn treatment
    Rogachev, A. V.
    Liu, Yiming
    Li, Zhenggang
    Rogachev, A. A.
    Tan, Xiaoxue
    Jiang, Xiaohong
    Pyzh, A. E.
    Yarmolenko, V. A.
    Rudenkov, A. S.
    Yarmolenko, M. A.
    Gorbachev, D. L.
    APPLIED SURFACE SCIENCE, 2025, 687
  • [24] Electron Beam Deposition of Lanthanum Hexaboride Films for Usage as Anti-Reflective Coating
    Kuzanyan, A. A.
    Kuzanyan, A. S.
    Petrosyan, S. I.
    Kuzanyan, V. S.
    Badalyan, G. R.
    JOURNAL OF CONTEMPORARY PHYSICS-ARMENIAN ACADEMY OF SCIENCES, 2020, 55 (02) : 164 - 170
  • [25] As-grown superconducting MgB2 films prepared by electron beam deposition
    Okuzono, M
    Doi, T
    Ishizaki, Y
    Kobayashi, Y
    Hakuraku, Y
    Kitaguchi, H
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) : 3253 - 3256
  • [26] Thermal stability of defects introduced by p-type silicon electron beam deposition in
    Danga, H. T.
    Auret, F. D.
    Tunhuma, S. M.
    Omotoso, E.
    Igumbor, E.
    Meyer, W. E.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2017, 409 : 46 - 49
  • [27] Growth of [010] oriented α-MoO3 nanorods by pulsed electron beam deposition
    Liu, Can
    Li, Zhengcao
    Zhang, Zhengjun
    APPLIED PHYSICS LETTERS, 2011, 99 (22)
  • [28] The effect of WO3 source stability on the properties of films deposited by electron beam deposition
    Alamri, S. N.
    VACUUM, 2009, 83 (06) : 996 - 1000
  • [29] Modulated structures in amorphous films of Cr-silicide prepared by electron-beam-deposition
    Kitano, Y
    Yamamoto, K
    Wada, M
    Yin, J
    Toda, Y
    Tanaka, K
    Tanabe, E
    Komatsu, M
    Sakai, T
    ZEITSCHRIFT FUR METALLKUNDE, 2006, 97 (03): : 310 - 314
  • [30] Low-energy electron beam deposition of coatings based on lignin and quercetin, their structure and properties
    Liu, Yiming
    Cao, Jinxing
    Rogachev, A. V.
    Rogachev, A. A.
    Kontsevaya, I. I.
    Jiang, Xiaohong
    Yarmolenko, V. A.
    Rudenkov, A. S.
    Yarmolenko, M. A.
    Gorbachev, D. L.
    Pyzh, A. E.
    VACUUM, 2022, 205