Microstructure and wear behavior of inductive nitriding layer in Ti-25Nb-3Zr-2Sn-3Mo alloys

被引:6
作者
Jiang, Xueting [1 ]
Dai, Yan [2 ]
Xiang, Qing [1 ]
Liu, Jing [1 ]
Yang, Feng [1 ]
Zhang, Daixiong [3 ]
机构
[1] Guizhou Normal Univ, Sch Mat & Architectural Engn, Guiyang 550025, Peoples R China
[2] Guizhou Univ, Sch Mat & Met, Guiyang 550025, Peoples R China
[3] Chongqing Technol & Business Univ, Coll Environm & Resources, Chongqing Key Lab Catalysis & New Environm Mat, Chongqing 400067, Peoples R China
基金
中国国家自然科学基金;
关键词
Ti-25Nb-3Zr-2Sn-3Mo (TLM) alloy; Induction nitriding; Gradient structure; Wear resistance; Wear mechanism;
D O I
10.1016/j.surfcoat.2021.127835
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In human implant materials, beta (beta) titanium alloys have been extensively used because of their excellent biocompatibility and lower elasticity modulus; however, they have poor hardness and wear resistance. Herein, vacuum induction nitriding technology is used to strengthen the surface of a Ti-25Nb-3Zr-2Sn-3Mo (TLM) alloy. The nitriding layer microstructure is characterised using X-ray diffraction (XRD), scanning electron microscopy (SEM)-energy dispersive spectrometry (EDS) and optical microscopy (OM). The mechanical properties of nitriding layer are tested using cross-sectional hardness gradient and nano-indentation. Furthermore, the wear resistance and mechanism of nitriding layer are examined using a self-made reciprocating wear tester, a threedimensional (3D) pmfilometer and SEM, respectively. The results demonstrate that an approximately 30thick nitriding layer is formed on the TLM alloy surface after induction nitriding treatment. Interestingly, it forms a gradient structure that can improve the hardness and wear resistance of samples. Moreover, at a maximum test load of 10 N, the abrasion loss of the raw sample is 463 times that of the nitriding sample. Furthermore, the friction coefficient of the raw sample significantly exceeds that of the nitriding sample at three test loads. The wear mechanism between the friction pair Al2O3 ball and the raw sample is primarily a combination of abrasive and adhesive wear, whereas that of the nitriding sample is primarily abrasive wear. The results demonstrate that the nitriding layer significantly improves the wear performance of TLM alloys.
引用
收藏
页数:8
相关论文
共 40 条
  • [1] Vakili-Azghandi M., Roknian M., Szpunar J.A., Et al., Surface modification of pure titanium via friction stir processing: microstructure evolution and dry sliding wear performance, J. Alloys Compd., 816, (2020)
  • [2] Wu Z., Xing Y.Q., Huang P., Et al., Tribological properties of dimple-textured titanium alloys under dry sliding contact, Surf. Coat. Technol., 309, pp. 21-28, (2017)
  • [3] Zhao Y.T., Lu M.Y., Fan Z.Q., Et al., Laser deposition of wear-resistant titanium oxynitride/titanium composite coatings on Ti-6Al-4V alloy, Appl. Surf. Sci., 531, (2020)
  • [4] Shi A., Cai D., Hu J., Et al., Development of a low elastic modulus and antibacterial Ti-13Nb-13Zr-5Cu titanium alloy by microstructure controlling, Mater. Sci. Eng. C, 126, (2021)
  • [5] Liu Y.P., Zhu D.K., Gilbert J.L., Sub-nano to nanometer wear and tribocorrosion of titanium oxide-metal surfaces by in situ atomic force microscopy, Acta Biomater., 126, pp. 477-484, (2021)
  • [6] Chen J., Ma F.C., Liu P., Et al., Effects of different processing conditions on super-elasticity and low modulus properties of metastable β-type Ti-35Nb-2Ta-3Zr alloy, Vacuum, 146, pp. 164-169, (2017)
  • [7] Mavros N., Larimian T., Esqivel J., Et al., Spark plasma sintering of low modulus titanium-niobium-tantalum-zirconium (TNTZ) alloy for biomedical applications, Mater. Des., 183, (2019)
  • [8] Karre R., Niranjan M.K., Dey S.R., First principles theoretical investigations of low Young's modulus beta Ti–Nb and Ti–Nb–Zr alloys compositions for biomedical applications, Mater. Sci. Eng. C, 50, pp. 52-58, (2015)
  • [9] Tian Y., Yu Z., Ong C.Y.A., Et al., Nonlinear elastic behavior induced by nano-scale α phase in β matrix of β-type Ti–25Nb–3Zr–2Sn–3Mo titanium alloy, Mater. Lett., 145, pp. 283-286, (2015)
  • [10] Kaur M., Singh K., Review on titanium and titanium based alloys as biomaterials for orthopaedic applications, Mater. Sci. Eng. C, 102, pp. 844-862, (2019)