[1]Hooyar A, Shima E H, Nicolas S, et al. Additive manufacturing of low-cost porous titanium-based composites for biomedical applications: Advantages, challenges and opinion for future development[J]. Journal of Alloys and Compounds, 2020, 827: 154263. [2]Cheng K Y, Pagan N, Bijukumar D, et al. Carburized titanium as a solid lubricant on hip implants: Corrosion, tribocorrosion and biocompatibility aspects[J]. Thin Solid Films, 2018, 665(1): 148-158. [3]王 飞, 张 超, 周隐玉, 等. 钛及钛合金表面增强技术的研究进展[J]. 热加工工艺, 2017, 46(18): 20-24, 29. Wang Fei, Zhang Chao, Zhou Yinyu, et al. Research progress of surface strengthening techniques for titanium and its alloys[J]. Hot Working Technology, 2017, 46(18): 20-24, 29. [4]Cheng J, Li F, Zhu S, et al. Electrochemical corrosion and tribological evaluation of TiAl alloy for marine application[J]. Tribology International, 2017, 115: 483-492. [5]付 颖, 张 艳, 包星宇, 等. 钛合金表面耐磨涂层研究进展[J]. 中国腐蚀与防护学, 2018, 38(2): 117-123. Fu Ying, Zhang Yan, Bao Xingyu, et al. Research progress on wear-resistant coatings for Ti-alloy[J]. Journal of Chinese Society for Corrosion and Protection, 2018, 38(2): 117-123. [6]李孟宇, 杨 振, 徐耀东, 等. 离子注入表面改性技术在钛合金中的研究进展[J]. 黑龙江科技信息, 2017(11): 104. [7]张文毓. 钛合金表面耐磨处理技术研究现状[J]. 全面腐蚀控制, 2017, 31(2): 25-29, 87. Zhang Wenyu. Titanium alloy surface wear-resisting processing engineering research present situation[J]. Total Corrosion Control, 2017, 31(2): 25-29, 87. [8]李崇桂, 王 斌, 潘 斌, 等. 钛合金表面改性技术研究进展[J]. 热加工工艺, 2015, 44(16): 22-25. Li Chonggui, Wang Bin, Pan Bin, et al. Research progress of surface modification techniques for titanium alloys[J]. Hot Working Technology, 2015, 44(16): 22-25. [9]赵 晖, 王宝婷, 杜春燕, 等. TC4钛合金表面改性技术研究进展[J]. 沈阳理工大学学报, 2017, 36(2): 74-77. Zhao Hui, Wang Baoting, Du Chunyan, et al. Research progress of surface modification technology of TC4 titanium alloy[J]. Journal of Shenyang Ligong University, 2017, 36(2): 74-77. [10]任鑫明, 马北越, 张博文, 等. 钛合金及钢表面激光熔覆涂层的研究进展[J]. 材料研究与应用, 2017, 11(3): 141-145, 152. Ren Xinming, Ma Beiyue, Zhang Bowen, et al. Research development of laser cladding coatings on the surfaces of titanium alloy and steel[J]. Materials Research and Application, 2017, 11(3): 141-145, 152. [11]李振鹏, 颜志斌, 吴 璇, 等. 20CrMnTi真空脉冲感应渗碳及耐磨性研究[J]. 贵州师范大学学报(自然科学版), 2019, 37(1): 20-25. Li Zhenpeng, Yan Zhibin, Wu Xuan, et al. Study on 20CrMnTi vacuum pulse induced carburizing and wear resistance[J]. Journal of Guizhou Normal University (Natural Sciences), 2019, 37(1): 20-25. [12]杨 峰, 赵驯峰, 郑纪豹, 等. 38CrMoAl钢真空电磁感应快速渗氮动力学研究[J]. 贵州师范大学学报(自然科学版), 2021, 39(3): 85-91. Yang Feng, Zhao Xunfeng, Zheng Jibao, et al. Investigation on the kinetics of rapid nitriding of 38CrMoAl steel under vacuum electromagnetic induction[J]. Journal of Guizhou Normal University (Natural Sciences), 2021, 39(3): 85-91. [13]齐勇田, 王文山. 激光熔覆原位生成Ti(C0.3N0.7)增强相机制[J]. 应用激光, 2016, 36(5): 511-515. Qi Yongtian, Wang Wenshan. Formation mechanism of in-situ Ti(C0.3N0.7) reinforced phase through laser cladding technology[J]. Applied Laser, 2016, 36(5): 511-515. [14]李 帅, 孙 兰, 刘 毅, 等. 第二相碳化物对Ti(C, N)基金属陶瓷组织和性能的影响[J]. 硬质合金, 2019, 36(6): 472-476. Li Shuai, Sun Lan, Liu Yi, et al. Effect of second-phase carbides on microstructure and properties of Ti(C, N)-based cermets[J]. Cemented Carbide, 2019, 36(6): 472-476. [15]吴 旋, 官 敬, 刘 静, 等. TA2钛合金真空感应渗碳层在含氟混合酸中的腐蚀行为[J]. 表面技术, 2019, 48(12): 304-311. Wu Xuan, Guan Jing, Liu Jing, et al. Corrosion behavior of TA2 titanium alloy vacuum induction carburizing layer in fluorine-containing mixed acid[J]. Surface Technology, 2019, 48(12): 304-311. [16]吴宏亮, 缪 强, 徐 一, 等. Ti6Al4V合金表面Ti(C, N)改性层的摩擦性能[J]. 金属热处理, 2012, 37(1): 53-56. Wu Hongliang, Miu Qiang, Xu Yi, et al. Tribological properties of Ti(C, N) film on Ti6Al4V alloy surface[J]. Heat Treatment of Metals, 2012, 37(1): 53-56. [17]Rabin Basnet, 张吴晖, 闫鹏庆, 等. TC21钛合金液相等离子体法制备碳氮渗层[J]. 机械制造与自动化, 2017, 46(6): 41-44. Rabin Basnet, Zhang Wuhui, Yan Pengqing, et al. Preparation of carbonitride layer on TC21 titanium alloy by liquid phase method plasma electrolytic[J]. Machine Building & Automation, 2017, 46(6): 41-44. [18]苏浩文, 赵 晴, 程法嵩, 等. TC4钛合金微弧氧化-SiC复合膜的膜层结构及摩擦磨损行为[J]. 表面技术, 2017, 46(4): 174-179. Su Haowen, Zhao Qing, Cheng Fahao, et al. Film structure and frictional wear behaviour of TC4 titanium alloy micro arc oxidation-SiC composite coating[J]. Surface Technology, 2017, 46(4): 174-179. |