CN 41-1243/TG ISSN 1006-852X
Volume 42 Issue 6
Jan.  2023
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ZHANG Bin, GUO Hongyi. Microstructures and mechanical properties of PCBN materials[J]. Diamond & Abrasives Engineering, 2022, 42(6): 699-704. doi: 10.13394/j.cnki.jgszz.2022.0078
Citation: ZHANG Bin, GUO Hongyi. Microstructures and mechanical properties of PCBN materials[J]. Diamond & Abrasives Engineering, 2022, 42(6): 699-704. doi: 10.13394/j.cnki.jgszz.2022.0078

Microstructures and mechanical properties of PCBN materials

doi: 10.13394/j.cnki.jgszz.2022.0078
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  • Received Date: 2022-05-25
  • Rev Recd Date: 2022-07-26
  • The PCBN material was prepared by high temperature and high pressure method at 1 500℃ and different holding times with CBN-TiN-Ti-Al2O3 as the initial raw material. The phase compositions, microstructures, mechanical properties and cutting performance of PCBN under different sintering holding times were discussed. The results show that the holding time has no obvious effect on the phase compositions of PCBN, but it is helpful to improve its crystallinity and to realize its sintering uniformity and densification. When the holding time is 9.00 min, the PCBN material with the best comprehensive performance can be obtained with the relative density of 99.1%, the bending strength of 910.9 MPa, the wear ratio of 7120 and the microhardness of 33.5 GPa. The tool made of this PCBN can process up to 365 die steel parts.

     

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  • [1]
    ZHANG L L, KOU Z L, XU C, et. al. Sintering behaviors of fine-grained CBN-10wt.% Al3.21Si0.47 system under high pressure [J]. Diamond & Related Materials,2012,29:84-88.
    [2]
    邱慧, 吴媛媛, 班新星, 等. TiC含量对PCBN微观组织与力学性能的影响 [J]. 热加工工艺,2017,46(14):54-57.

    QIU Hui, WU Yuanyuan, BAN Xinxing, et al. Effects of TiC content on microstructure and mechanical properties of PCBN [J]. Hot Working Technology,2017,46(14):54-57.
    [3]
    王永凯, 位星, 王大鹏, 等. 六方氮化硼直接转化合成多晶立方氮化硼的研究 [J]. 金刚石与磨料磨具工程,2021,41(3):19-22.

    WANG Yongkai, WEI Xing, WANG Dapeng, et al. Study on synthesis of polycrystalline cubic boron nitride from hexagonal boron nitride by direct phase transition [J]. Diamond & Abrasives Engineering,2021,41(3):19-22.
    [4]
    莫培程, 陈超, 陈家荣, 等. CBN/TiC/Al合成PCBN及其性能研究 [J]. 人工晶体学报, 2020, 49(3): 480-484.

    MO Peicheng, CHEN Chao, CHEN Jiarong, et al. Study on synthesis and properties of PCBN from CBN/TiC/Al [J]. Journal of Synthetic Crystals, 2020, 49(3): 480-484.
    [5]
    姜伟, 周卫宁, 林峰. CBN-Ti-B-Al-SiC系在高温高压下的烧结 [J]. 超硬材料工程, 2010, 22(4): 24-29.

    JIANG Wei, ZHOU Weining, LIN Feng. Sintering CBN-Ti-B-Al-SiC under high temperature and high pressure [J]. Superhard Material Engineering, 2010, 22(4): 24-29.
    [6]
    邹娟, 成照楠, 邹芹, 等. CBN含量对PCBN车刀切削性能影响的模拟与实验研究 [J]. 矿冶工程,2021,41(3):134-137. doi: 10.3969/j.issn.0253-6099.2021.03.032

    ZOU Juan, CHENG Zhaonan, ZOU Qin, et al. Simulation and experimental study of the influence of CBN Content on the Cutting Performances of PCBN turning tool [J]. Mining and Metallurgical Engineering,2021,41(3):134-137. doi: 10.3969/j.issn.0253-6099.2021.03.032
    [7]
    张燕, 夏志辉, 徐东鸣. PCBN刀具高速精密切削W-Ni-Fe合金的性能研究 [J]. 粉末冶金工业,2016,26(6):35-40.

    ZHANG Yan, XIA Zhihui, XU Dongming. Study on properties of W-Ni-Fe alloy for high speed precision cutting by PCBN tool [J]. Powder Metallurgy Industry,2016,26(6):35-40.
    [8]
    孙韶锋, 孙熙钊. 高铬钢轧辊切削与PCBN刀具 [J]. 天津冶金,2021(4):44-47. doi: 10.3969/j.issn.1006-110X.2021.04.014

    SUN Shaofeng, SUN Xizhao. High chrome steel roller cutting with PCBN tool [J]. Tianjin Metallurgy,2021(4):44-47. doi: 10.3969/j.issn.1006-110X.2021.04.014
    [9]
    崔金蒙, 孟德忠, 吴哲, 等. PCBN刀具切削性能和磨损机理研究综述 [J]. 金刚石与磨料磨具工程,2020,40(6):83-91.

    CUI Jinmeng, MENG Dezhong, WU Zhe, et al. Review on cutting performance and wear mechanism of PCBN tools [J]. Diamond & Abrasives Engineering,2020,40(6):83-91.
    [10]
    魏文静, 沈浩. PCBN刀具断续车削Cr12MoV钢表面粗糙度的试验研究 [J]. 机械科学与技术,2014,33(10):1514-1517.

    WEI Wenjing, SHEN Hao. Study on surface roughness experiment in interrupted turning of hardened tool steel Cr12MoV with PCBN cutting tools [J]. Mechanical Science and Technology for Aerospace Engineering,2014,33(10):1514-1517.
    [11]
    高妮萍. 高速硬车20CrMnTi刀具耐用度研究 [J]. 机械设计与制造工程,2021,50(2):97-100. doi: 10.3969/j.issn.2095-509X.2021.02.021

    GAO Niping. Research on tool durability of high speed hard turning 20CrMnTi [J]. Machine Design and Manufacturing Engineering,2021,50(2):97-100. doi: 10.3969/j.issn.2095-509X.2021.02.021
    [12]
    FIORINI P, BYRNE G. The influence of built-up layer formation on cutting performance of GG25 grey cast iron [J]. CIRP Annals,2016,65(1):93-96. doi: 10.1016/j.cirp.2016.04.045
    [13]
    GUTNICHENKO O, BUSHLYA V, ZHOU J, et al. Tool wear and machining dynamics when turning high chromium white cast iron with pcBN tools [J]. Wear,2017,390:253-269.
    [14]
    ZHANG L L, LIN F, LV Z, et al. CBN-Al-HfC composites sintering behaviors and mechanical properties under high pressure [J]. International Journal of Refractory Metals & Hard Materials,2015,50:221-226.
    [15]
    MO P C, CHEN C, CHEN J R, et al. Effect of sintering temperature on synthesis of PCBN in CBN-Ti-Al-W system [J]. Diamond and Related Materials,2020,103:107714. doi: 10.1016/j.diamond.2020.107714
    [16]
    罗涛, 江文清, 徐敏. TiN-Al体系结合剂配比对聚晶立方氮化硼复合材料性能的影响 [J]. 机械工程材料,2021,45(11):34-37. doi: 10.11973/jxgccl202111007

    LUO Tao, JIANG Wenqing, XU Min. Effect of TiN-Al system binder ratio on properties of polycrystalline cubic nitride composite [J]. Materials for Mechanical Engineering,2021,45(11):34-37. doi: 10.11973/jxgccl202111007
    [17]
    邓福铭, 贺雪花, 邓雯丽, 等. 不同TiN含量整体式PCBN复合材料微观组织及性能研究 [J]. 金刚石与磨料磨具工程,2019,39(5):39-43.

    DENG Fuming, HE Xuehua, DENG Wenli, et al. Microstructure and properties of solid PCBN composites with different TiN contents [J]. Diamond & Abrasives Engineering,2019,39(5):39-43.
    [18]
    YUAN Y, CHENG X, CHANG R, et al. Reactive sintering CBN-Ti-Al composites by spark plasma sintering [J]. Diamond and Related Materials,2016,69:138-143. doi: 10.1016/j.diamond.2016.08.009
    [19]
    MO P C, CHEN C, CHEN C, et al. Effect of temperature on sintering of PCBN with Ti, Si3N4, AlN, Y2O3 additives [J]. Journal of Superhard Materials,2021,43:166-174. doi: 10.3103/S1063457621030084
    [20]
    HOTTA M, GOTO T. Densification and microstructure of Al2O3-CBN composites prepared by spark plasma sintering [J]. Journal of the Ceramic Society of Japan,2008,116(6):744-748.
    [21]
    KLIMCZYK P, CURA M, VLAICU A M. et al. Al2O3-CBN composites sintered by SPS and HPHT methods [J]. Journal of the European Ceramic Society,2016,36(7):1783-1789. doi: 10.1016/j.jeurceramsoc.2016.01.027
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