[1]朱 霞, 董俊慧, 罗志锋. Ti-6Al-4V合金的轧制与组织性能[J]. 金属热处理, 2020, 45(1): 222-227 Zhu Xia, Dong Junhui, Luo Zhifeng. Rolling, microstructure and properties of Ti-6Al-4V alloy[J]. Heat Treatment of Metals, 2020, 45(1): 222-227. [2]Elias Carlos Nelson, Meyers Marc André, Valiev Ruslan Z, et al. Ultrafine grained titanium for biomedical applications: An overview of performance[J]. Materials Research and Technology, 2013, 2(4): 340-350. [3]Cassar G, Avelar-Batista Wilson J C, Banfield S, et al. Surface modification of Ti-6Al-4V alloys using triode plasma oxidation treatments[J]. Surface and Coatings Technology, 2012, 206(22): 4553-4561. [4]Manda Premkumar, Chakkingal Uday, Singh A K. Hardness characteristic and shear band formation in metastable β-titanium alloys[J]. Materials Characterization, 2014, 96: 151-157. [5]李凤华, 董梦格, 王丽娜, 等. 纯钛TA1和钛合金TC4表面固体渗硼[J]. 东北大学学报(自然科学版), 2014, 35(9): 1284-1287. Li Fenghua, Dong Mengge, Wang Lina, et al. Solid boronizing on the surface of pure titanium TA1 and titanium alloy TC4[J]. Journal of Northeastern University(Natural Science), 2014, 35(9): 1284-1287. [6]Zarchi H R K, Soltanieh M, Aboutalebi M R, et al. Thermodynamic study on pack aluminizing systems of pure titanium and nickel[J]. Transactions of Nonferrous Metals Society of China, 2013, 23(6): 1838-1846. [7]Bell T, Dong H. Surface engineering of titanium the metal for the 21st century[C]//Proceedings of the 12th International Federation Heat Treatment and Surface Engineering Congress. Melbourne, Australia, 2000: 1-6. [8]王泽莹, 张 峰, 王振霞, 等. 纯钛表面等离子渗镍合金层的显微组织及摩擦学性能[J]. 机械工程材料, 2012, 36(4): 73-76. Wang Zeying, Zhang Feng, Wang Zhenxia, et al. Microstructure and tribology property of plasma nickelized alloy layer on pure titanium surface[J]. Materials for Mechanical Engineering, 2012, 36(4): 73-76. [9]潘晓龙, 刘啸峰, 王少鹏. TC4钛合金表面磁控溅射TiAlN涂层的组织和性能[J]. 钛工业进展, 2013, 30(5): 31-34. Pan Xiaolong, Liu Xiaofeng, Wang Shaopeng. Microstructure and properties of TiAlN coating prepared by magnetron sputtering on titanium alloy[J]. Titanium Industry Progress, 2013, 30(5): 31-34. [10]王 亮, 彭先文. 钛及钛合金的表面渗氧强化技术[J]. 现代机械, 2013(2): 74-75. Wang Lang, Peng Xianwen. Surface oxygen diffusion hardening technology of titanium and titanium alloy[J]. Modern Machinery, 2013(2): 74-75. [11]郑 刚, 许晓静, 宋振华, 等. TC4钛合金盐浴硼氧共渗剂的成分[J]. 材料热处理学报, 2015, 36(12): 213-219. Zeng Gang, Xu Xiaojing, Song Zhenhua, et al. Salt-bath oxygen-boriding on TC4 titanium alloy by different oxygen-boriding agents[J]. Transactions of Materials and Heat Treatment, 2015, 36(12): 213-219. [12]何志盛, 许晓静, 韩 天, 等. Ti-6A1-4V合金的盐浴硼氧共渗[J]. 金属热处理, 2018, 43(1): 184-189. He Zhishen, Xu Xiaojin, Han Tian, et al. Salt bath oxygen-boriding of Ti-6Al-4V alloy[J]. Heat Treatment of Metals, 2018, 43(1): 184-189. [13]Xu Xiaojing, Liu Yangguang, Tabie Vitus, et al. Effect of La2O3 on resistance to high-temperature oxidation and corrosion of aluminized and aluminum-chrome coating[J]. Materials Research Express, 2019, 6: 1265b7. [14]赵 栋, 董文超, 焦清洋, 等. TC4-DT钛合金SH-CCT曲线的测定[J]. 金属热处理, 2020, 45(5): 157-161. Zhao Dong, Dong Wenchao, Jiao Qingyang, et al. Measurement of SH-CCT curves of TC4-DT titanium alloy[J]. Heat Treatment of Metals, 2020, 45(5): 157-161. [15]张金柱, 杨宗伦, 魏可媛. 稀土元素在化学热处理中的催渗和扩散机理研究[J]. 材料导报, 2006, 20: 223-225. Zhang Jinzhu, Yang Zonglun, Wei Keyuan. Study of the catalysis and diffusion mechanism by rare earth (RE) elements during the thermo-chemical treatment[J]. Materials Review, 2006, 20: 223-225. [16]衣晓红, 樊占国, 张景垒, 等. TC4钛合金固体渗硼及渗硼过程动力学研究[J]. 东北大学学报(自然科学版), 2010, 31(1): 88-91. Yi Xiaohong, Fan Zhanguo, Zang Jinglei, et al. Pack boronizing of TC4 titanium alloy and kinetics of boronizing process[J]. Journal of Northeastern University(Natural Science), 2010, 31(1): 88-91. |