Investigation into the sintered behavior and properties of nanostructured WC-Co-Ni-Fe hard metal alloys

被引:61
|
作者
Chang, Shih-Hsien [1 ]
Chang, Po-Yu [1 ]
机构
[1] Natl Taipei Univ Technol, Dept Mat & Mineral Resources Engn, Taipei 10608, Taiwan
关键词
Sintering; Nano-WC; Composite; TRS and K-IC; NODULAR CAST-IRON; MECHANICAL-PROPERTIES; CEMENTED CARBIDES; NANO WC; POWDER; PERFORMANCE; HIP;
D O I
10.1016/j.msea.2014.03.096
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Nanomaterials normally possess high strength, high hardness and excellent ductility and toughness. In the research, various vacuum sintering temperatures (1250 degrees C, 1300 degrees C, 1350 degrees C and 1400 degrees C) were explored in order to investigate the optimal parameters of micro- and nano-WC sintered composites; and further to compare the sintered behavior and properties of two different sizes of WC materials. All specimens were fabricated by using vacuum sintering of the powder metallurgy technique. The experimental results show that micro- and nano-WC specimens generated a good liquid-phase sintering at 1350 degrees C sintered for 1 h, and thus, exhibited excellent mechanical properties. The porosities were decreased to 036% and 0.8%, the hardness was enhanced to 90.1 and 91.4 HRA and the TRS was increased to 1441.62 and 1540.56 MPa, respectively. Since there is an effect upon the grain refinement, nano-WC obviously possesses better performance than the micro-WC hard metal alloys. Meanwhile, the K-IC value for sintered nano-WC dramatically increased to 12.71 MPa m(1/2). (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:150 / 156
页数:7
相关论文
共 50 条
  • [41] Mechanism of Formation of the High-Coercivity State in Nanostructured Hard Magnetic Fe-Cr-Co and Fe-Ni-Al-Co-Cu Alloys
    Milyaev, I. M.
    Milyaev, A. I.
    Yusupov, V. S.
    RUSSIAN METALLURGY, 2009, (03): : 250 - 252
  • [42] Sintering behavior and mechanical properties of WC-10Co, WC-10Ni and WC-10Fe hard materials produced by high-frequency induction heated sintering
    Shon, In-Jin
    Jeong, In-Kyoon
    Ko, In-Yong
    Doh, Jung-Mann
    Woo, Kee-Do
    CERAMICS INTERNATIONAL, 2009, 35 (01) : 339 - 344
  • [43] Diffusion parameters of grain-growth inhibitors in WC based hardmetals with Co, Fe/Ni and Fe/Co/Ni binder alloys
    Buchegger, Christoph
    Lengauer, Walter
    Bernardi, Johannes
    Gruber, Jakob
    Ntaflos, Theo
    Kiraly, Franz
    Langlade, Jessica
    INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2015, 49 : 67 - 74
  • [44] Effect of Fe/Ni ratio on the microstructure and properties of WC-Fe-Ni-Co cemented carbides
    Gao, Yang
    Luo, Bing-Hui
    He, Ke-Jian
    Zhang, Wen-Wen
    Bai, Zhen-Hai
    CERAMICS INTERNATIONAL, 2018, 44 (02) : 2030 - 2041
  • [45] Study of characteristics and properties of spark plasma sintered WC with the use of alternative Fe-Ni-Nb binder as Co replacement
    Borges Rosa, Joice Medeiros
    Lugon, Rafael Delorence
    Silva, Keytiane de Souza
    das Chagas, Victor Muniz
    Guimaraes, Renan da Silva
    de Carvalho, Cassio Santos
    de Paiva Barreto, Lucas Pires
    Filgueira, Marcello
    INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2020, 92
  • [46] Nanostructured Al-Mm-Ni-(Fe,Co) alloys produced by devitrification
    Latuch, J
    Dimitrov, H
    Audebert, F
    Kulik, T
    INTERFACIAL EFFECTS AND NOVEL PROPERTIES OF NANOMATERIALS, 2003, 94 : 71 - 74
  • [47] Chlorination of components of the WC-Co, WC-TiC-Co, and TiC-Mo-Ni hard alloys under electroerosion
    Satyvaldiev, AS
    Asanov, UA
    Dronov, EO
    RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 1996, 69 (03) : 460 - 461
  • [48] OBSERVATION OF SPINEL PARTICLES IN SINTERED WC-CO HARD METAL BY TRANSMISSION ELECTRON-MICROSCOPY
    ROUX, HL
    JOURNAL OF PHYSICS F-METAL PHYSICS, 1978, 8 (10): : L213 - &
  • [49] FE-NI-CO ALLOYS FOR GLASS TO METAL SEALS
    MAIRS, KH
    JOURNAL OF METALS, 1952, 4 (05): : 460 - 464
  • [50] Structural and microwave absorption properties of nanostructured Fe-Co alloys
    Bergheul, S.
    Otmane, F.
    Azzaz, M.
    ADVANCED POWDER TECHNOLOGY, 2012, 23 (05) : 580 - 582