Study on the Wear Resistance of Ni-Co-ZrO2 Composite Coatings with Different ZrO2 Nanoparticle Concentrations Prepared Using Electrodeposition on the Micro-Surface of Spindle Hook Teeth

Abstract : To improve the wear resistance of the surface of the cotton picker spindle, a Ni-Co-ZrO 2 composite coating with different ZrO 2 nanoparticle concentrations was prepared using electrodeposition technology on the micro surface of spindle hook teeth, and the morphologies of the surface and cross-section, element contents, grain sizes, microhardness and friction coefficients of the Ni-Co-ZrO 2 composite coating were obtained; a simulated wear test was conducted based on the independently developed spindle hook tooth wear device, and the morphologies and elemental distributions of the composite coating before and after wear were obtained; the effects of different ZrO 2 nanoparticle concentrations (0, 2, 4, 6, 8 g/L) on the morphology, element content, grain size, microhardness, friction coefficient and wear resistance of the coating were discussed. The test results indicated that compared with Ni-Co coatings, Ni-Co-ZrO 2 composite coatings featured a more compact coating structure, a greater coating thickness, and a smaller grain size. The presence of ZrO 2 nanoparticles led to further improvement of the coating’s microhardness, friction coefficient and wear resistance. When the mass concentration of ZrO 2 nanoparticles reached 4 g/L, the microhardness of Ni-Co-ZrO 2 composite coating reached the maximum value, 545.4 Hv 0.1, and the friction coefficient decreased to 0.06. At the same time, in the simulated wear test, the composite coating with this concentration had the smallest wear area and the highest wear resistance. Keywords: ZrO2 nanoparticles; micro surface of spindle hook teeth; electrodeposition; Ni-Co-ZrO2 composite coatings; wear resistance Abstract : To improve the wear resistance of the surface of the cotton picker spindle, a Ni-Co-ZrO 2 composite coating with different ZrO 2 nanoparticle concentrations was prepared using electrodeposition technology on the micro surface of spindle hook teeth, and the morphologies of the surface and cross-section, element contents, grain sizes, microhardness and friction coefficients of the Ni-Co-ZrO 2 composite coating were obtained; a simulated wear test was conducted based on the independently developed spindle hook tooth wear device, and the morphologies and elemental distributions of the composite coating before and after wear were obtained; the effects of different ZrO 2 nanoparticle concentrations (0, 2, 4, 6, 8 g/L) on the morphology, element content, grain size, microhardness, friction coefficient and wear resistance of the coating were discussed. The test results indicated that compared with Ni-Co coatings, Ni-Co-ZrO 2 composite coatings featured a more compact coating structure, a greater coating thickness, and a smaller grain size. The presence of ZrO 2 nanoparticles led to further improvement of the coating’s microhardness, friction coefficient and wear resistance. When the mass concentration of ZrO 2 nanoparticles reached 4 g/L, the microhardness of Ni-Co-ZrO 2 composite coating reached the maximum value, 545.4 Hv 0.1, and the friction coefficient decreased to 0.06. At the same time, in the simulated wear test, the composite coating with this concentration had the smallest wear area and the highest wear resistance. Keywords: ZrO2 nanoparticles; micro surface of spindle hook teeth; electrodeposition; Ni-Co-ZrO2 composite coatings; wear resistance Abstract : To improve the wear resistance of the surface of the cotton picker spindle, a Ni-Co-ZrO 2 composite coating with different ZrO 2 nanoparticle concentrations was prepared using electrodeposition technology on the micro surface of spindle hook teeth, and the morphologies of the surface and cross-section, element contents, grain sizes, microhardness and friction coefficients of the Ni-Co-ZrO 2 composite coating were obtained; a simulated wear test was conducted based on the independently developed spindle hook tooth wear device, and the morphologies and elemental distributions of the composite coating before and after wear were obtained; the effects of different ZrO 2 nanoparticle concentrations (0, 2, 4, 6, 8 g/L) on the morphology, element content, grain size, microhardness, friction coefficient and wear resistance of the coating were discussed. The test results indicated that compared with Ni-Co coatings, Ni-Co-ZrO 2 composite coatings featured a more compact coating structure, a greater coating thickness, and a smaller grain size. The presence of ZrO 2 nanoparticles led to further improvement of the coating’s microhardness, friction coefficient and wear resistance. When the mass concentration of ZrO 2 nanoparticles reached 4 g/L, the microhardness of Ni-Co-ZrO 2 composite coating reached the maximum value, 545.4 Hv 0.1, and the friction coefficient decreased to 0.06. At the same time, in the simulated wear test, the composite coating with this concentration had the smallest wear area and the highest wear resistance. Keywords: ZrO2 nanoparticles; micro surface of spindle hook teeth; electrodeposition; Ni-Co-ZrO2 composite coatings; wear resistance To improve the wear resistance of the surface of the cotton picker spindle, a Ni-Co-ZrO 2 composite coating with different ZrO 2 nanoparticle concentrations was prepared using electrodeposition technology on the micro surface of spindle hook teeth, and the morphologies of the surface and cross-section, element contents, grain sizes, microhardness and friction coefficients of the Ni-Co-ZrO 2 composite coating were obtained; a simulated wear test was conducted based on the independently developed spindle hook tooth wear device, and the morphologies and elemental distributions of the composite coating before and after wear were obtained; the effects of different ZrO 2 nanoparticle concentrations (0, 2, 4, 6, 8 g/L) on the morphology, element content, grain size, microhardness, friction coefficient and wear resistance of the coating were discussed. The test results indicated that compared with Ni-Co coatings, Ni-Co-ZrO 2 composite coatings featured a more compact coating structure, a greater coating thickness, and a smaller grain size. The presence of ZrO 2 nanoparticles led to further improvement of the coating’s microhardness, friction coefficient and wear resistance. When the mass concentration of ZrO 2 nanoparticles reached 4 g/L, the microhardness of Ni-Co-ZrO 2 composite coating reached the maximum value, 545.4 Hv 0.1, and the friction coefficient decreased to 0.06. At the same time, in the simulated wear test, the composite coating with this concentration had the smallest wear area and the highest wear resistance. Keywords: ZrO2 nanoparticles; micro surface of spindle hook teeth; electrodeposition; Ni-Co-ZrO2 composite coatings; wear resistance Keywords: ZrO2 nanoparticles; micro surface of spindle hook teeth; electrodeposition; Ni-Co-ZrO2 composite coatings; wear resistance Keywords:

相关文章

  • Topological piezoelectricity in bulk ferroelectrics
    [Zheng Wu, Yating Ran, Yuanbo Li, Danyang Wang, Xiaobing Li, Feifei Wang, Anyang Cui, Xiaoming Shi, Yifan Chen, Feilong Yan, Zhongchen Gao, Zhihua Duan, Liman Sai, Xiaomei Qin, Tao Wang, Yanxue Tang, Xiangyong Zhao, Qiaozhen Zhang, Jie Jiao, Haosu Luo, Yiu-Wing Mai, Fei Li, Zibin Chen, Houbing Huang, Shujun Zhang]
  • Study on the microstructure and properties of FeCoNiCrMo high entropy alloy coatings on Ti6Al4V fabricated by laser cladding: Enhancement mechanism of novel nano eutectic phase
    [Chen Cui, Meiping Wu, Jitai Han, Xiaojin Miao, Yin Li, Kui Zhu, Fei Li, Peng Li]
  • Optimized tribological properties and wear mechanisms of low UHMWPE-content PEEK composites under water-lubricated conditions
    [Yongliang Jin, Jie Yi, Weiran Shen, Fei Li, Kun Hu, Zhendong Huang, Yu Zhu]
  • qq

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    ex

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    yx

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    ph

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    广告图片

    润滑集