Structure and properties of low-carbon steel after twist extrusion

被引:4
|
作者
Zavdoveev, A. [1 ]
Belousov, N. N. [1 ]
Pashinska, E. [1 ]
Maksakova, A. [1 ]
Dobatkin, S. [2 ]
Glazunov, F. [1 ]
Varyukhin, V. [3 ]
机构
[1] NAS Ukraine, Donetsk Inst Phys & Engn, Donetsk, Ukraine
[2] Russian Acad Sci, Baikov Inst Met & Mat Sci, Moscow, Russia
[3] NAS Ukraine, Donetsk Inst Phys & Engn, DonPhTI NASU, Donetsk, Ukraine
关键词
mechanical properties; metals; microscopy;
D O I
10.1680/emr.14.00016
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The new developing technologies of metal formation, based on simple shear, are known as severe plastic deformation (SPD) technologies. They are actively used for improving the mechanical properties of metals. Even complex systems such as steels have not been adequately investigated for SPD process. However, studies are in progress as is reflected from the publications in the literature. Due to insufficient knowledge of the structural changes, occurring in low-carbon steels during SPD, there is a need for a more detailed consideration by modern methods. This paper discusses the characteristics of the formation of structure and texture of low-carbon steels subjected to warm twist extrusion (TE). A relatively new method, which makes possible a detailed study of the structure of metals, is electron backscattered diffraction (EBSD). EBSD has shown that warm TE increases the structure isotropy, thus leading to significant fragmentation and activation of the mechanisms of dynamic polygonization, recrystallization and grain-boundary sliding. These structural features lead to hardening of the material by 1.5 times, while maintaining a high level of plasticity.
引用
收藏
页码:89 / 93
页数:5
相关论文
共 50 条
  • [21] STRUCTURE AND PROPERTIES OF LOW-CARBON STEEL AFTER QUENCHING FROM THE INTERCRITICAL TEMPERATURE-RANGE
    ORLOV, LG
    ENTIN, RI
    KOGAN, LI
    OGORODNIK, VK
    PANKOVA, MN
    RUSSIAN METALLURGY, 1986, (05): : 99 - 102
  • [22] Fine structure of low-carbon steel after electrolytic plasma treatment
    Bayatanova, Lyaila
    Rakhadilov, Bauyrzhan
    Kurbanbekov, Sherzod
    Skakov, Mazhyn
    Popova, Natalya
    MATERIALS TESTING, 2021, 63 (09) : 842 - 847
  • [23] STRUCTURE AND MECHANICAL-PROPERTIES OF GRAPHITIZED LOW-CARBON STEEL WITH WORKING
    BELCHENKO, GI
    SHEVTSOV, AM
    PRIKHODKO, AI
    METAL SCIENCE AND HEAT TREATMENT, 1990, 32 (3-4) : 193 - 196
  • [24] Effect of cooling rate on the structure and properties of low-carbon tube steel
    Pyshmintsev, I. Yu.
    Boryakova, A. N.
    Smirnov, M. A.
    METALLURGIST, 2008, 52 (7-8) : 464 - 469
  • [25] Structure and mechanical properties of low-carbon steel for oil and gas pipelines
    Veselov I.N.
    Pyshmintsev I.Y.
    Laev K.A.
    Zhukova S.Y.
    Steel in Translation, 2011, 41 (2) : 165 - 170
  • [26] Effect of cooling rate on the structure and properties of low-carbon tube steel
    I. Yu. Pyshmintsev
    A. N. Boryakova
    M. A. Smirnov
    Metallurgist, 2008, 52 : 464 - 469
  • [27] Effect of explosion treatment on structure and mechanical properties of low-carbon steel
    Kasatkin, S.B.
    Petushkov, V.G.
    Zhurnal Neorganicheskoj Khimii, 426 (2-4): : 28 - 31
  • [28] The effect of structure dispersion on mechanical properties of low-carbon structural steel
    Panov, D. O.
    Orlova, E. N.
    Pertsev, A. S.
    Vagin, R. A.
    Simonov, Y. N.
    Smirnov, A., I
    Nikulina, A. A.
    OBRABOTKA METALLOV-METAL WORKING AND MATERIAL SCIENCE, 2014, (01): : 39 - 45
  • [29] INFLUENCE OF RECRYSTALLIZATION ANNEALING ON THE PROPERTIES AND STRUCTURE OF LOW-CARBON FERRITIC STEEL IF
    Kowalczyk, K.
    Jablonska, M.
    Rusz, S.
    Junak, G.
    ARCHIVES OF METALLURGY AND MATERIALS, 2018, 63 (04) : 1957 - 1961
  • [30] Microstructure and properties of low-carbon weld steel after thermomechanical strengthening
    V. M. Schastlivtsev
    T. I. Tabatchikova
    I. L. Yakovleva
    S. Yu. Klyueva
    A. A. Kruglova
    E. I. Khlusova
    V. V. Orlov
    The Physics of Metals and Metallography, 2012, 113 : 480 - 488