CN 41-1243/TG ISSN 1006-852X
Volume 45 Issue 1
Mar.  2025
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HE Keqiao, CHEN Shuaipeng, KANG Xiyue, HE Yuehui. Effect of TiH2 addition on grinding performance of Cu3Sn intermetalliccompound diamond wheels[J]. Diamond & Abrasives Engineering, 2025, 45(1): 12-20. doi: 10.13394/j.cnki.jgszz.2023.0261
Citation: HE Keqiao, CHEN Shuaipeng, KANG Xiyue, HE Yuehui. Effect of TiH2 addition on grinding performance of Cu3Sn intermetalliccompound diamond wheels[J]. Diamond & Abrasives Engineering, 2025, 45(1): 12-20. doi: 10.13394/j.cnki.jgszz.2023.0261

Effect of TiH2 addition on grinding performance of Cu3Sn intermetalliccompound diamond wheels

doi: 10.13394/j.cnki.jgszz.2023.0261
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  • Received Date: 2023-12-01
  • Accepted Date: 2024-03-18
  • Rev Recd Date: 2024-03-04
  • Available Online: 2024-06-21
  •   Objectives  With the development of the modern manufacturing industry, the requirements for material machining accuracy and surface quality are increases continuously. For the precision grinding of high hardness and high wear-resistant materials, superhard material grinding wheels are required to possess high processing efficiency and durability. Intermetallic compound bond diamond grinding wheels have the wear resistance of metal grinding wheels and the self-sharpness of ceramic grinding wheels simultaneously, but they still lacks of sharpness or shape retention when machining hard and brittle materials at high loads and high speeds. To improve the sharpness and shape retention of Cu3Sn intermetallic compound diamond grinding wheels, this study investigates the addition of TiH2. Cu3Sn ball-milling powders, diamond grinding blocks, and grinding wheels with different TiH2 additions are prepared.  Methods  The effects of TiH2 addition on the grinding performance of Cu3Sn intermetallic diamond grinding wheels are investigated using testing and analyzing the micro-morphology, oxygen content, physical phase composition, thermal effect, and mechanical properties.  Results  (1) TiH2 was added to the Cu3Sn intermetallic compound bond, and the mixture is ball milled together. TiH2 inhibits the increase in oxygen content, which improves the properties of the ball-milled bond powder and facilitated the sintering process. When TiH2 is added with a mass fraction of 2.0%, the oxygen content is reduced from 0.67% to a minimum value of 0.51%. (2) TiH2 decomposes into Ti and H2 during the sintering process, and Ti could react with the C atoms on the surface of the diamond to form a Ti—C bond. This chemical bonding between the metal bond and diamonds could increased the bonding strength. TiH2 could improve the mechanical properties of diamond grinding blocks, but a larger amount of TiH2 increased the pores in the metal bond, which reduced its strength. When TiH2 mass fraction is 1.5%, the flexural strength reaches the maximum value of 80.74 MPa, and the addition of 2.0% TiH2 increased the Rockwell hardness to reaches a maximum value of 109.88 HRB. (3) Adding of an appropriate amount of TiH2 forms a chemical metallurgical bond between diamonds and the bonding agent, which strengthens the holding force of the bonding agent to the diamonds, increases the protrusion height and chip space on the working surface, and improves the sharpness of the grinding wheel. At the same time, it can avoid the premature shedding of diamonds, reducing the consumption of the working layer and improving the shape retention of the grinding wheel. The grinding wheels prepared by adding a certain amount of TiH2 prior to the ball milling treatment of Cu3Sn bond powder exhibited better grinding performance. Both sharpness and shape retention are enhanced. When grinding YG8 cemented carbide, the addition of 2.0% TiH2 enhanced the fastest feed rate of the grinding wheel from 0.020 mm/feed to 0.035 mm/feed. Meanwhile, the grinding ratio of the wheel reached a maximum value of 172.03, which is enhanced by 237% compared with the specimen without TiH2 addition.  Conclusions  In this paper, TiH2 is added to Cu3Sn intermetallic compounds by ball milling, and the oxygen content of the bond powder is reduced. At the same time, the carbide-formation element Ti reacts with the diamond to form a chemical metallurgical bond, which improves the bonding strength between the diamond and the bonding agent. This results in improved grinding performance of the diamond wheel and provides a reference for the design and development of diamond grinding wheels with high sharpness and high conformal retention.

     

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  • [1]
    胡妙. 利用激光熔覆在钢铁表面制备WC-Co耐磨涂层的工艺及机理研究 [D]. 南昌: 南昌大学, 2020.

    HU Miao. Study on the process and mechanism of WC-Co wear-resistant coating on the surface of steel by laser cladding [D]. Nanchang: Nanchang University, 2020.
    [2]
    UPADHYAYA G S. Materials science of cemented carbides: An overview [J]. Materials & Design,2001,22(6):483-489. doi: 10.1016/S0261-3069(01)00007-3
    [3]
    谭兴龙, 易茂中, 罗崇玲. 球形钴粉的制备及其在超细晶粒硬质合金中的应用 [J]. 中国有色金属学报,2008,18(2):209-214. doi: 10.3321/j.issn:1004-0609.2008.02.003

    TAN Xinglong, YI Maozhong, LUO Chongling. Preparation of spherical cobalt powder and its application in ultra-fine cemented carbides [J]. The Chinese Journal of Nonferrous Metals,2008,18(2):209-214. doi: 10.3321/j.issn:1004-0609.2008.02.003
    [4]
    HE M, WANG J Y, HE R G, et al. Effect of cobalt content on the microstructure and mechanical properties of coarse grained WC-Co cemented carbides fabricated from chemically coated composite powder [J]. Journal of Alloys and Compounds,2018,766:556-563. doi: 10.1016/j.jallcom.2018.06.366
    [5]
    李志远, 李益民, 何浩, 等. 磨削硬质合金用金属结合剂金刚石砂轮的性能影响因素 [J]. 有色金属科学与工程,2016,7(6):77-82. doi: 10.13264/j.cnki.ysjskx.2016.06.013

    LI Zhiyuan, LI Yimin, HE Hao, et al. Metallic bond diamond grinding wheel for grinding cemented carbide [J]. Nonferrous Metals Science and Engineering,2016,7(6):77-82. doi: 10.13264/j.cnki.ysjskx.2016.06.013
    [6]
    范红伟, 袁巨龙, 吕冰海, 等. 金属结合剂砂轮的研究与发展 [J]. 航空精密制造技术,2010,46(4):38-41. doi: 10.3969/j.issn.1003-5451.2010.04.010

    FAN Hongwei, YUAN Julong, LV Binghai, et al. Progress and prospects of metal bonded grinding wheel [J]. Aviation Precision Manufacturing Technology,2010,46(4):38-41. doi: 10.3969/j.issn.1003-5451.2010.04.010
    [7]
    何聪华, 袁慧. 精密金刚石砂轮的制造、修整及其磨削机理研究进展 [J]. 超硬材料工程,2008,20(4):30-36. doi: 10.3969/j.issn.1673-1433.2008.04.009

    HE Conghua, YUAN Hui. Development of research on the manufacturing, dressing and grinding mechanism of diamond grinding wheel [J]. Superhard Material Engineering,2008,20(4):30-36. doi: 10.3969/j.issn.1673-1433.2008.04.009
    [8]
    杨佳乐, 尹育航, 刘震, 等. 稀土元素及其化合物在超硬磨具中的应用 [J]. 中国稀土学报,2021,39(6):871-880. doi: 10.11785/S1000-4343.20210605

    YANG Jiale, YIN Yuhang, LIU Zhen, et al. Application of rare earth elements and their compounds in superhard abrasive tools [J]. Journal of the Chinese Society of Rare Earths,2021,39(6):871-880. doi: 10.11785/S1000-4343.20210605
    [9]
    CHEN S P, KANG X Y, HE Y H. Study on the preparation of NiAl intermetallic-bonded diamond grinding block and grinding performance for sapphire [J]. Diamond and Related Materials,2022,130:109490. doi: 10.1016/j.diamond.2022.109490
    [10]
    唐洲, 贺跃辉, 陈帅鹏. 烧结温度对Ti-Al金属间化合物黏结剂金刚石磨块力学性能和磨削性能的影响 [J]. 粉末冶金材料科学与工程,2023,28(3):288-295. doi: 10.19976/j.cnki.43-1448/TF.2023032

    TANG Zhou, HE Yuehui, CHEN Shuaipeng. Effects of sintering temperature on mechanical and grinding properties of Ti-Al intermetallic-bonded diamond grinding block [J]. Materials Science and Engineering of Powder Metallurgy,2023,28(3):288-295. doi: 10.19976/j.cnki.43-1448/TF.2023032
    [11]
    高洪吾, 刘士魁, 赵彦波, 等. 加热氧化处理对TiH2释氢行为的影响 [J]. 中国有色金属学报,2005,15(3):363-367. doi: 10.3321/j.issn:1004-0609.2005.03.007

    GAO Hongwu, LIU Shikui, ZHAO Yanbo, et al. Effect of heat oxidation treatment on gas release behavior of TiH2 [J]. The Chinese Journal of Nonferrous Metals,2005,15(3):363-367. doi: 10.3321/j.issn:1004-0609.2005.03.007
    [12]
    王俊程. 基于TiH2 + TiB2反应制备原位TiBw / Ti复合材料的组织性能研究[D]. 广州: 华南理工大学, 2021.

    WANG Juncheng. Research on microstructure and properties of in-situ TiBw / Ti composites prepared by basing on the reaction between TiH2 and TiB2 powders [D]. Guangzhou: South China University of Technology, 2021.
    [13]
    刘恒源. 多孔金属结合剂磨具的制备与性能研究 [D]. 郑州: 河南工业大学, 2021.

    LIU Hengyuan. Study on the process and mechanism of WC-Co wear-resistant coating on the surface of steel by laser cladding [D]. Zhengzhou: Henan University of Technology, 2021.
    [14]
    王耀奇, 张宁, 任学平, 等. 氢化钛的动态分解行为与规律 [J]. 粉末冶金材料科学与工程,2011,16(6):795-798. doi: 10.3969/j.issn.1673-0224.2011.06.001

    WANG Yaoqi, ZHANG Ning, REN Xueping, et al. Behavior and rule of titanium hydride dynamic decomposition [J]. Materials Science and Engineering of Powder Metallurgy,2011,16(6):795-798. doi: 10.3969/j.issn.1673-0224.2011.06.001
    [15]
    曹杰义, 肖平安, 雷豹, 等. TiH2粉末的高能行星球磨及超细晶钛烧结 [J]. 中国有色金属学报,2013,23(10):2825-2832. doi: 10.19476/j.ysxb.1004.0609.2013.10.013

    CAO Jieyi, XIAO Ping'an, LEI Bao, et al. High-energy planetary milling of TiH2 powders and sintering of titanium alloy with ultrafine grains [J]. The Chinese Journal of Nonferrous Metals,2013,23(10):2825-2832. doi: 10.19476/j.ysxb.1004.0609.2013.10.013
    [16]
    王高峰, 松林, 欧志强, 等. MnFeP0.6Si0.25Ge0.15粉末样品的制备及X射线衍射分析 [J]. 内蒙古师范大学学报(自然科学汉文版),2007,36(2):156-159. doi: 10.3969/j.issn.1001-8735.2007.02.009

    WANG Gaofeng, SONG Lin, OU Zhiqiang, et al. Preparation and X-ray diffraction analysis of MnFeP0.6Si0.25Ge0.15 powder [J]. Journal of Inner Mongolia Normal University (Natural Science Edition),2007,36(2):156-159. doi: 10.3969/j.issn.1001-8735.2007.02.009
    [17]
    丁天然, 龙伟民, 张海燕, 等. 氧含量对金刚石工具胎体力学性能的影响 [J]. 焊接,2013(1):42-44,70-71. doi: 10.3969/j.issn.1001-1382.2013.01.010

    DING Tianran, LONG Weimin, ZHANG Haiyan, et al. Effect of oxygen content on mechanical properties in diffusion welding Fe-based matrix and diamond tool [J]. Welding & Joining,2013(1):42-44,70-71. doi: 10.3969/j.issn.1001-1382.2013.01.010
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