[1] 黄海博, 孙文磊. Ni60激光熔覆工艺参量对涂层裂纹及厚度的影响[J]. 激光技术, 2021, 45(6): 788-793.HUANG H B, SUN W L. Influence of laser cladding process parameters on crack and thickness of Ni60[J]. Laser Technology, 2021, 45(6): 788-793(in Chinese).
[2] 吴腾, 师文庆, 谢林圯. 激光熔覆铁基TiC复合涂层成形质量的控制方法[J]. 激光技术, 2022, 46(3): 344-354.WU T, SHI W Q, XIE L Y. Forming quality control method of laser cladding Fe-based TiC composite coating[J]. Laser Technology, 2022, 46(3): 344-354(in Chinese).
[3] 赵欣鑫, 肖华强, 游川川. TC4表面激光熔覆TiAl合金涂层的工艺和组织性能[J]. 激光技术, 2021, 45(6): 697-702.ZHAO X X, XIAO H Q, YOU Ch Ch, et al. Process and microstructure properties of laser cladding TiAl alloy coating on TC4 surface[J]. Laser Technology, 2021, 45(6): 697-702(in Chinese).
[4] ZHANG Y, LI Z, NIE P, et al. Effect of cooling rate on the microstructure of laser-remelted Inconel718 coating[J]. Metallurgical & Materials Transactions, 2013, A44(12): 5513-5521.
[5] CHLEBUS E, GRUBER K, KUŹNICKA B, et al. Effect of heat treatment on the microstructure and mechanical properties of Inconel718 processed by selective laser melting[J]. Materials Science & Engineering, 2015, A639: 647-655.
[6] TABERNERO I, LAMIKIZ A, MARTÍNEZ S, et al. Evaluation of the mechanical properties of Inconel718 components built by laser cladding[J]. International Journal of Machine Tools & Manufacture, 2011, 51(6): 465-470.
[7] 鲁耀钟, 雷卫宁, 任维彬, 等. K418合金叶片激光再制造Inconel718覆层匹配与强化[J]. 激光技术, 2020, 44(1): 54-60.LU Y Zh, LEI W N, REN W B, et al. Matching and strengthening between Inconel718 cladding and K418 alloy blades by laser remanufacturing[J]. Laser Technology, 2020, 44(1): 54-60(in Chinese).
[8] 张杰, 张群莉, 姚建华. 激光熔覆工艺参数对In718合金组织及元素偏析的影响[J]. 热加工工艺, 2022, 51(19): 30-34.ZHANG J, ZHANG Q L, YAO J H. Effect of laser cladding process parameters on microstructure and element segregation of In718 alloy[J]. Hot Working Technology, 2022, 51(19): 30-34(in Chinese).
[9] 张尧成. 激光熔覆Inconel718合金涂层的成分偏聚与强化机理研究[D]. 上海: 上海交通大学, 2013: 61-90.ZHANG Y Ch. Studies on component segregation and strengthening mechanism of laser cladding Inconel718 alloy coating[D]. Shanghai: Shanghai Jiaotong University, 2013: 61-90(in Chinese).
[10] LÜ H, LI Z, LI X, et al. Effect of vanadium content on the microstructure and mechanical properties of In718 alloy by laser cladding[J]. Materials, 2021, 14(9): 2362-2364.
[11] CHENG H M, LIU F C, et al. Microstructure and tensile property of electromagnetic stirring assisted laser repaired Inconel718 superalloy-sciencedirect[J]. Rare Metal Materials and Engineering, 2018, 47(10): 2949-2956.
[12] 聂学武, 周建忠, 徐家乐, 等. 超声振幅对激光熔覆WC/In718复合涂层组织及性能的影响[J]. 表面技术, 2020, 49(9): 206-214.NIE X W, ZHOU J Zh, XU J L, et al. Effect of ultrasound amplitude on microstructure and properties of laser cladding WC/In718 composite coatings[J]. Surface Technology, 2020, 49(9): 206-214.
[13] 张杰, 张群莉, 陈智君, 等. 固溶温度对激光增材制造Inconel718合金组织和性能的影响[J]. 表面技术, 2019, 48(2): 47-53.ZHANG J, ZHANG Q L, CHEN Zh J, et al. Effects of solution temperature on microstructure and properties of Inconel718 alloy fabricatedvia laser additive manufacturing[J]. Surface Technology, 2019, 48(2): 47-53(in Chinese).
[14] 张群莉, 张杰, 李栋, 等. 不同时效温度下激光增材再制造In718合金层的组织与性能研究[J]. 稀有金属材料与工程, 2020, 49(5): 1785-1792.ZHANG Q L, ZHANG J, LI D, et al. Microstructure and properties of laser additive remanufactured In718 alloy with different aging temperatures[J]. Rare Metal Materials and Engineering, 2020, 49(5): 1785-1792 (in Chinese).
[15] 席明哲, 高士友. 激光快速成形Inconel718超合金拉伸力学性能研究[J]. 中国激光, 2012, 39(3): 0303004.XI M Zh, GAO Sh Y. Research on tensile properties of Inconel718 superalloy fabricated by laser rapid forming process[J]. Chinese Journal of Lasers, 2012, 39(3): 0303004(in Chinese).
[16] CONG D, HONG Z, REN Z, et al. Thermal fatigue resistance of hot work die steel repaired by partial laser surface remelting and alloying process[J]. Optics & Lasers in Engineering, 2014, 54(3): 55-61.
[17] 张蕾涛, 李海涛, 贾润楠, 等. 激光重熔Ni60/50% WC复合涂层的制备及性能[J]. 金属热处理, 2021, 46(5): 229-234.ZHANG L T, LI H T, JIA R N, et al. Preparation and properties of laser remelted Ni60/50% WC composite coating[J]. Metal Heat Treatment, 2021, 46(5): 229-234(in Chinese).
[18] GUBENKO S I, NIKUL'CHENKO I A. Fragmentation of nonmetallic inclusions during local remelting upon laser steel processing[J]. Steel in Translation, 2020, 50(3): 203-208.
[19] 陈子豪, 孙文磊, 黄勇, 等. 镍基高温合金激光熔覆涂层组织及性能研究[J]. 激光技术, 2021, 45(4): 441-447.CHEN Z H, SUN W L, HUANG Y, et al. Microstructure and properties of nickel-based superalloy laser cladding coatings[J]. Laser Technology, 2021, 45(4): 441-447(in Chinese).
[20] 陈源. 激光增材制造Inconel718合金裂纹形成机制及其控制[D]. 上海: 上海交通大学, 2017: 39-45.CHEN Y. Studies on formation mechanism and control methods of cracking in laser additive manufactured Inconel718 alloy[D]. Shanghai: Shanghai Jiaotong University, 2017: 39-45(in Chinese).
[21] XIN B, REN J, WANG X, et al. Effect of laser remelting on cladding layer of Inconel718 superalloy formed by laser metal deposition[J]. Materials, 2020, 13(21): 4927.
[22] 黄卫东. 激光立体成形[M]. 西安: 西北工业大学出版社, 2007: 284-300.HUANG W D. Laser stereoforming[M]. Xi'an: Northwestern Polytechnical University Press, 2007: 284-300(in Chinese).