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材料导报  2026, Vol. 40 Issue (6): 25020116-7    https://doi.org/10.11896/cldb.25020116
  金属与金属基复合材料 |
激光增材制造异构钛合金的力学性能及其变形机理
胡一雄1, 邓方2, 张柯康1, 孟锦晖3, 赵枫4, 刘洋1,*
1 宁波大学机械工程与力学学院,浙江 宁波 315211;
2 江西应用技术职业学院汽车学院,江西 赣州 341000;
3 陕西飞机工业有限责任公司,陕西 汉中 723213;
4 浙江天钛增材制造技术有限公司,浙江 宁波 315200
Mechanical Properties and Deformation Mechanisms of Laser Additive Manufactured Heterogeneous Titanium Alloys
HU Yixiong1, DENG Fang2, ZHANG Kekang1, MENG Jinhui3, ZHAO Feng4, LIU Yang1,*
1 School of Mechanical Engineering and Mechanics, Ningbo University, Ningbo 315211, Zhejiang, China;
2 School of Automotive, Jiangxi College of Applied Technology, Ganzhou 341000, Jiangxi, China;
3 AVIC Shaanxi Aircraft Industrial Co., Ltd., Hanzhong 723213, Shaanxi, China;
4 Zhe Jiang Tiny Titanium AM Technology Co., Ltd., Ningbo 315200, Zhejiang, China
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摘要 在Ti-6Al-4V(TC4)钛合金粉末中添加适当的316L粉末,并通过激光选区熔化增材制造工艺调控其微观组织,获得了异构钛合金。发现在4.5%(质量分数)316L含量下可获得综合压缩力学性能最优的异构钛合金(TC4-4.5SS);而2% 316L含量下能得到抗压强度明显增强的异构钛合金(TC4-2SS),但其塑性无增强。TC4-4.5SS异构钛合金稳定元素含量较高,浓度梯度明显,导致渐进性应变诱导马氏体相变从而增塑;而TC4-2SS异构钛合金由于β相稳定元素不足,在加载过程中会诱发大范围的相变行为,进而表现出更为显著的加工硬化现象。
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胡一雄
邓方
张柯康
孟锦晖
赵枫
刘洋
关键词:  激光增材制造  异构钛合金  力学性能  β相含量  相变    
Abstract: Heterogeneous titanium alloys were fabricated by incorporating an appropriate amount of 316L powder into Ti-6Al-4V(TC4) titanium alloy powder, with the microstructure precisely modulated through in-situ laser powder bed fusion(LPBF). It was found that heterogeneous titanium alloys containing 4.5% 316L(TC4-4.5SS) exhibit the optimal combination of compressive mechanical properties, while the alloy with 2% 316L(TC4-2SS) shows a significant improvement in compressive strength without a corresponding enhancement in plasticity. The TC4-4.5SS alloy exhibits an increased content of stabilizing elements and a pronounced concentration gradient, which promotes progressive strain-induced martensitic transformation and enhanced plasticity. In contrast, the TC4-2SS alloy contains insufficient stabilizing elements in the β phase. As a result, extensive simultaneous phase transformations occurred during loading, leading to more pronounced work hardening.
Key words:  laser additive manufacturing    heterogeneous titanium alloy    mechanical property    β phase content    phase transition
出版日期:  2026-03-25      发布日期:  2026-04-03
ZTFLH:  TG146.2  
基金资助: 国家自然科学基金(52375347);宁波市自然科学基金重点项目(2023J008)
通讯作者:  *刘洋,宁波大学机械工程与力学学院教授、博士研究生导师。目前主要从事激光增材制造(3D打印)、激光加工、智能制造技术等方面的研究。liuyang1@nbu.edu.cn   
作者简介:  胡一雄,宁波大学机械工程与力学学院硕士研究生,主要研究领域为金属材料增材制造。
引用本文:    
胡一雄, 邓方, 张柯康, 孟锦晖, 赵枫, 刘洋. 激光增材制造异构钛合金的力学性能及其变形机理[J]. 材料导报, 2026, 40(6): 25020116-7.
HU Yixiong, DENG Fang, ZHANG Kekang, MENG Jinhui, ZHAO Feng, LIU Yang. Mechanical Properties and Deformation Mechanisms of Laser Additive Manufactured Heterogeneous Titanium Alloys. Materials Reports, 2026, 40(6): 25020116-7.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.25020116  或          https://www.mater-rep.com/CN/Y2026/V40/I6/25020116
1 Ni J T, Zhou Q J, Yi F, et al. Rare Metals, 2022, 46(10), 1365(in Chinese).
倪江涛, 周庆军, 衣凤, 等. 稀有金属, 2022, 46(10)1365.
2 Zhang J K, Kong X Y, Ma S J, et al. Acta Aeronautica et Astronautica Sinica, 2021, 42(10), 467(in Chinese).
张纪奎, 孔祥艺, 马少俊, 等. 航空学报, 2021, 42(10), 467.
3 Liu P, Gao Q M, Lyu L J, et al. Chinese Journal of Reparative and Reconstructive Surgery, 2022, 36(12), 1558 (in Chinese).
刘鹏, 高秋明, 吕利军, 等. 中国修复重建外科杂志, 2022, 36(12), 1558.
4 Xu Q B, Liu S Y. World Nonferrous Metals, 2022(16), 96(in Chinese).
徐全斌, 刘诗园. 世界有色金属, 2022(16), 96.
5 Fan D Y, Wang Q, Zhou Y J, et al. Journal of Prevention and Treatment for Stomatological Diseases, 2021, 29(4), 284(in Chinese).
范东阳, 王强, 周怡君, 等. 口腔疾病防治杂志, 2021, 29(4), 284.
6 Yan T Q, Chen B Q, Liang J Y, et al. Laser & Optoelectronics Progress, 2022, 59(17), 327(in Chinese).
闫泰起, 陈冰清, 梁家誉, 等. 激光与光电子学进展, 2022, 59(17), 327.
7 Tsai M T, Chen Y W, Chao C Y, et al. Journal of Alloys and Compounds, 2020, 816, 152615.
8 Shin K Y, Kim J H, Terner M, et al. Materials Science and Engineering:A, 2019, 751, 311.
9 Vrancken B, Thijs L, Kruth J P, et al. Journal of Alloys and Compounds, 2012, 541, 177.
10 Guo Q M, Hou H L, Ren X P. Journal of Mechanical Engineering, 2009, 45(9), 249(in Chinese).
郭青苗, 侯红亮, 任学平. 机械工程学报, 2009, 45(9), 249.
11 Wang Y, Wu B, Su Y J, et al. Nonferrous Metals Engineering, 2020, 10(11), 33(in Chinese).
汪洋, 吴冰, 宿彦京, 等. 有色金属工程, 2020, 10(11), 33.
12 Xiao Y, Yang Y, Wang D, et al. Composites Part B:Engineering, 2023, 253, 110534.
13 Chen N, Kou H, Wu Z, et al. Materials Science and Engineering:A, 2022, 835, 142696.
14 Coakley J, Vorontsov V A, Jones N G, et al. Journal of Alloys and Compounds, 2015, 646, 946.
15 Zhang C L, Bao X Y, Zhang J Y, et al. Rare Metal Materials and Engineering, 2021, 50(2), 717(in Chinese).
张崇乐, 包翔云, 张金钰, 等. 稀有金属材料与工程, 2021, 50(2), 717.
16 Bhattacharjee A, Bhargava S, Varma V, et al. Scripta Materialia, 2005, 53(2), 195.
17 Liang Z, Sun Z, Zhang W, et al. Journal of Alloys and Compounds, 2019, 782, 1041.
18 Zhang D, Qiu D, Gibson M A, et al. Nature, 2019, 576(7785), 91.
19 Wu X, Yang M, Yuan F, et al. Proceedings of the National Academy of Sciences, 2015, 112(47), 14501.
20 Mohammed M T, Geetha M. Transactions of Nonferrous Metals Society of China, 2015, 25(3), 759.
21 Zhang T, Huang Z, Yang T, et al. Science, 2021, 374(6566), 478.
22 Zhuo Y T, Wang S M, Li C, et al. Rare Metal Materials and Engineering, 2021, 50(4), 1365(in Chinese).
左玉婷, 王书明, 李聪, 等. 稀有金属材料与工程, 2021, 50(4), 1365.
23 Grosdidier T, Philippe M J. Materials Science and Engineering:A, 2000, 291(1-2), 218.
24 Xiao J, Shang X, Zhang J, et al. Materials Science and Engineering:A, 2023, 876, 145181.
25 Biswal R, Zhang X, Shamir M, et al. Additive Manufacturing, 2019, 28, 517.
26 Murr L, Ramirez A, Gaytan S, et al. Materials Science and Engineering:A, 2009, 516(1-2), 205.
27 Choisez L, Ding L, Marteleur M, et al. Acta Materialia, 2022, 235, 1359.
28 Jin I K, Lee J G, Lee Y J, et al. Journal of Alloys and Compounds, 2025, 1010, 925.
29 Ma B, Tang B, Wang D, et al. Intermetallics, 2024, 173, 966.
30 Shi J, Shuai M, Chen X, et al. Materials Today Communications, 2024, 41, 2352.
31 Ma X, Li F, Fang X, et al. Journal of Alloys and Compounds, 2019, 784, 111.
32 Sun Y, Chen K, Alexandrov I V, et al. International Journal of Fatigue, 2023, 169, 0142.
33 Zheng Y, Choudhuri D, Alam T, et al. Scripta Materialia, 2016, 123, 81.
34 Cao S, Han J, Wang H, et al. Journal of Materials Research and Technology, 2023, 27, 6135.
35 Chen C, Han D, Song Y, et al. Transactions of Nonferrous Metals Society of China, 2023, 33, 3332.
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