Structure and Thermal Stability of High-Strength Cu-18Nb Composite Depending on the Degree of Deformation

被引:18
|
作者
Deryagina, I. L. [1 ]
Popova, E. N. [1 ]
Valova-Zaharevskaya, E. G. [1 ]
Patrakov, E. I. [1 ]
机构
[1] Russian Acad Sci, Mikheev Inst Met Phys, Ural Branch, Ul S Kovalevskoi 18, Ekaterinburg 620108, Russia
来源
PHYSICS OF METALS AND METALLOGRAPHY | 2018年 / 119卷 / 01期
关键词
composites; Cu-Nb; structure; thermal stability; WIRE-DRAWN; CU-AG; NB; MICROSTRUCTURE; TEXTURE;
D O I
10.1134/S0031918X18010088
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The microstructure and thermal stability of multifiber in situ Cu-18Nb composites with a true strain (e) of 10.2 and 12.5 have been studied by the methods of scanning and transmission electron microscopy and X-ray diffraction analysis. It has been established that niobium dendrites in the copper matrix acquire the shape of ribbons with thicknesses of less than 100 nm under strong plastic deformation. As the strain grows, the thickness of niobium ribbons decreases, and the degree of axial texture 110aNba center dot aEuro111 center dot DA (drawing axes) and the macrostresses in the crystal lattice of niobium increase. Interplanar distances between adjacent {110}Nb planes are stretched in the longitudinal section of the composites and reduced in their transversal section under the action of macrostresses. It has been shown that, as a result of the annealing of these composites, niobium fibers sustain coagulation, which begins at 300A degrees C, actively develops with increasing temperature, and leads to the appreciable softening of a composite at 700A degrees C. The softening of a composite after the annealing is accompanied by the relaxation of macrostresses in niobium and the recovery of its unit cell parameters to standard values.
引用
收藏
页码:92 / 102
页数:11
相关论文
共 50 条
  • [41] PREPARATION OF CONTINUOUS, SUPERCONDUCTING AND HIGH-STRENGTH NB3GE COMPOSITE FILAMENT
    AHMAD, I
    HEFFERMAN, WJ
    GUBSER, DU
    IEEE TRANSACTIONS ON MAGNETICS, 1977, 13 (01) : 483 - 486
  • [42] Relation between the Degree of Alloying, Structure, and Mechanical Properties of High-Strength Steel
    Oryshchenko A.S.
    Malyshevskii V.A.
    Petrov S.N.
    Shumilov E.A.
    Steel in Translation, 2018, 48 (3) : 143 - 148
  • [43] Interface Structure of High Strength and High Conductivity Cu-Nb Microcomposites
    Liang Ming
    Wang Pengfei
    Xu Xiaoyan
    Jiao Gaofeng
    Li Chengshan
    Zhang Pingxiang
    RARE METAL MATERIALS AND ENGINEERING, 2017, 46 (05) : 1288 - 1292
  • [44] High-strength low-alloy powder steel with a composite structure
    Meilakh A.G.
    Steel in Translation, 2009, 39 (11) : 1035 - 1037
  • [45] HIGH-STRENGTH HIGH-CONDUCTIVITY CU-NB MICROCOMPOSITE WIRE BY POWDER-METALLURGY
    POURRAHIMI, S
    HASHEMI, HN
    FONER, S
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1990, 9 (12) : 1484 - 1487
  • [46] Microstructural size effects in high-strength high-conductivity Cu-Cr-Nb alloys
    Anderson, KR
    Groza, JR
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2001, 32 (05): : 1211 - 1224
  • [47] Microstructural size effects in high-strength high-conductivity Cu-Cr-Nb alloys
    Ken R. Anderson
    Joanna R. Groza
    Metallurgical and Materials Transactions A, 2001, 32 : 1211 - 1224
  • [48] High temperature strength and thermal stability for melt growth composite
    Nakagawa, N
    Ohtsubo, H
    Mitani, A
    Shimizu, K
    Waku, Y
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2005, 25 (08) : 1251 - 1257
  • [49] THERMAL DEFORMATION AND STRENGTH OF COMPOSITE-MATERIALS AT HIGH-TEMPERATURES
    TRETYACHENKO, GN
    GRACHEVA, LI
    MECHANICS OF COMPOSITE MATERIALS, 1986, 22 (05) : 545 - 550
  • [50] Effect of Uniform Compression Deformation on the Structure and Properties of High-Strength Magnesium Alloys
    Volkova, E. F.
    METAL SCIENCE AND HEAT TREATMENT, 2016, 58 (7-8) : 411 - 416