Possibilities And Problems Of Using MIM Technology In Manufacturing Parts Of Aircraft Elements Made Of Titanium And Titanium Alloys

被引:3
作者
Krotov, Dmitry Mikhailovich [1 ]
机构
[1] Bauman Moscow State Tech Univ, Moscow 105005, Russia
来源
XLIV ACADEMIC SPACE CONFERENCE: DEDICATED TO THE MEMORY OF ACADEMICIAN S.P. KOROLEV AND OTHER OUTSTANDING RUSSIAN SCIENTISTS - PIONEERS OF SPACE EXPLORATION | 2021年 / 2318卷
关键词
Titanium; Metal injection molding; MIM-technologies; microstructure; titanium aluminide alloy; titanium hydride; hot isostatic pressing; HIGHLY POROUS TITANIUM; INJECTION-MOLDING PROCESS; MECHANICAL-PROPERTIES; SMALL ADDITION; SINTERING DENSIFICATION; PHASE-TRANSFORMATIONS; DEBINDING BEHAVIOR; BINDER SYSTEM; TI-6AL-4V; MICROSTRUCTURE;
D O I
10.1063/5.0037321
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This article discusses the growing trend in using MIM technologies in manufacturing small titanium parts with complex geometric configurations for aerospace and other industries. Mechanical properties can be affected by: density, oxygen, carbon, and nitrogen content, microstructure, and doping content. It is proven, that oxygen degrades required properties of the parts obtained from titanium and its alloys using MIM technology. These properties particularly include tensile ductility, cold processibility, fatigue strength and resistance to stress corrosion. Using tine powder of spherical configuration improves purity of the surface of the final sintered products. However; it increases the content of impurities, in particular oxygen. It is shown, that the technological possibilities for obtaining parts using MIM-Ti are limited to sizes up to 0.05 m and weight up to 0.05 kg. Main factors of technological limitations in size and weight are the configuration of the part itself, the source material, and processing conditions. As an alternative to expensive spherical powders, it is possible to use titanium hydride powder.
引用
收藏
页数:10
相关论文
共 132 条
  • [11] Low elastic modulus Ti-17Nb processed by powder injection moulding and post-sintering heat treatments
    Bidaux, J. -E.
    Pasquier, R.
    Rodriguez-Arbaizar, M.
    Girard, H.
    Carreno-Morelli, E.
    [J]. POWDER METALLURGY, 2014, 57 (05) : 320 - 323
  • [12] Bidaux J. -E., 2016, KEY ENG MAT, V704
  • [13] Bidaux J.-E., 2011, EUROP CELLS MAT, V22, P32
  • [14] Bidaux JE., 2012, PIM Int, V6, P72
  • [15] Role of alloying elements in microstructure evolution and alloying elements behaviour during sintering of a near-β titanium alloy
    Carman, A.
    Zhang, L. C.
    Ivasishin, O. M.
    Savvakin, D. G.
    Matviychuk, M. V.
    Pereloma, E. V.
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2011, 528 (03): : 1686 - 1693
  • [16] Porous titanium processed by powder injection moulding of titanium hydride and space holders
    Carreno-Morelli, E.
    Rodriguez-Arbaizar, M.
    Amherd, A.
    Bidaux, J. -E.
    [J]. POWDER METALLURGY, 2014, 57 (02) : 93 - 96
  • [17] Production of titanium grade 4 components by powder injection moulding of titanium hydride
    Carreno-Morelli, E.
    Bidaux, J. -E.
    Rodriguez-Arbaizar, M.
    Girard, H.
    Hamdan, H.
    [J]. POWDER METALLURGY, 2014, 57 (02) : 89 - 92
  • [18] Carreno-Morelli E., 2011, EUR CELLS MATER, V22, P33
  • [19] Carreno-Morelli E., 2013, EUR CELLS MATER, V26, P16
  • [20] Carreno-Morelli E., 2010, PIMInternational, V4, P60