Influence of WC and Co on machinability in mist and dry cutting of cemented carbides

被引:0
|
作者
Fujiwara, Junsuke [1 ]
Miyamoto, Takeshi [1 ]
Kanayama, Hirokazu [1 ]
Heo, Jung Sung [1 ]
Hanasaki, Shinsaku [1 ]
机构
[1] Osaka Univ, Suita, Osaka 5650871, Japan
关键词
cutting; cemented carbides; tool wear mechanism; mist cutting; PCD;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Cemented carbides are sintered metals consist of hard particles (WC, TiC, TaC, etc) and metallic binder. They have high hardness and strength even at high temperature, and are used for not only cutting tools but also forming rolls, dies and so on. They are well known as difficult-to-cut materials. The tool wear is so severe in cutting with a diamond tool that grinding is commonly used for finish machining. As the results, the productivity becomes low and the production cost becomes high. In previous study, using with PCD (Poly-Crystal Diamond) the relationship between tool life and cutting conditions was made, clear. For example, the tool life became shorter with the increase of the feed rate, and the tool life was independent of the depth of cut. Recently, the demand of the cemented carbides is increasing. In order to get high productivity, cutting finish is desirable instead of grinding. In this paper, three kinds of cemented carbides were turned with the PCD tool. And the influence of WC and Co on the machinability in dry and mist cutting was investigated in detail. As the result, the tool wear depended on the WC contents, and the lubricating action restrained the flank wear in the mist cutting. Summary of results are shown as follows: (1) In mist cutting of cemented carbides, the more the WC was included, the longer the tool life becomes. (2) The more the WC was included, the more chip shape becomes irregular.
引用
收藏
页码:17 / 20
页数:4
相关论文
共 50 条
  • [31] Role of the Co phase in superplasticity for WC-Co cemented carbides
    Hosokawa, H
    Shimojima, K
    Kawakami, M
    Sano, S
    Terada, O
    Mabuchi, M
    MATERIALS TRANSACTIONS, 2004, 45 (04) : 1391 - 1394
  • [32] Strengthening zones in the Co matrix of WC-Co cemented carbides
    Konyashin, I.
    Lachmann, F.
    Ries, B.
    Mazilkin, A. A.
    Straumal, B. B.
    Kuebel, Chr.
    Llanes, L.
    Baretzky, B.
    SCRIPTA MATERIALIA, 2014, 83 : 17 - 20
  • [33] Influence of Micron WC Addition on the Microstructure and Mechanical Properties of Ultrafine WC–Co Cemented Carbides at the Elevated Temperature
    C. Liu
    N. Lin
    Y. H. He
    W. S. Liu
    Y. Z. Ma
    Journal of Superhard Materials, 2018, 40 : 40 - 46
  • [34] The influence of various Re:Co ratios on microstructures and properties of WC-Co-Re cemented carbides
    Konyashin, I
    Schwedt, A.
    MATERIALS LETTERS, 2019, 249 : 57 - 61
  • [35] Nanohardness of Individual Phases in WC-Co Cemented Carbides
    Duszova, Annamaria
    Halgas, Radoslav
    Priputen, Pavol
    Bl'anda, Marek
    Hvizdos, Pavol
    Lofaj, Frantisek
    Dusza, Jan
    LOCAL MECHANICAL PROPERTIES IX, 2014, 586 : 23 - +
  • [36] Coercive Force of γ-Phase in WC-Co Cemented Carbides
    刘寿荣
    孙景
    RARE METALS, 1994, (04) : 299 - 301
  • [37] Oxidation temperatures of WC-Co cemented tungsten carbides
    Efimovich, Igor
    Zolotukhin, Ivan
    OBRABOTKA METALLOV-METAL WORKING AND MATERIAL SCIENCE, 2024, 26 (02): : 199 - 211
  • [38] APT analysis of WC-Co based cemented carbides
    Weidow, Jonathan
    Andren, Hans-Olof
    ULTRAMICROSCOPY, 2011, 111 (06) : 595 - 599
  • [39] Spark plasma sintering of nanocrystalline WC/Co cemented carbides
    Sun, JF
    Zhang, FM
    Shen, J
    PROCEEDINGS OF THE 1ST INTERNATIONAL CONFERENCE ON NEW FORMING TECHNOLOGY, 2004, : 499 - 504
  • [40] Randomness characterization of microstructure of WC-Co cemented carbides
    Wang, Dong
    Zhao, Jun
    Li, An-Hai
    Cailiao Gongcheng/Journal of Materials Engineering, 2012, (11): : 27 - 30