Influence of Pulse Laser on Microstructure and Property of TiB2/Inconel 718 Composite Fabricated by Laser Powder Bed Fusion

被引:0
作者
Yang, Qi [1 ]
Guo, Pengfei [1 ]
Wang, Zhen [1 ]
Zhai, Changshuai [1 ]
Geng, Jianfeng [1 ]
Wang, Huijun [1 ]
Yu, Jun [2 ]
Lin, Xin [2 ]
机构
[1] Qingdao Univ Technol, Shandong Engn Res Ctr Addit Mfg, Qingdao 266520, Shandong, Peoples R China
[2] Northwestern Polytech Univ, State Key Lab Solidificat Proc, Xian 710072, Shaanxi, Peoples R China
来源
CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG | 2025年 / 52卷 / 08期
关键词
TiB2/Inconel; 718; composite; pulsed laser; laser powder bed fusion; microstructure; microhardness; MECHANICAL-PROPERTIES; DENSIFICATION; EVOLUTION;
D O I
10.3788/CJL241250
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Objective Ceramic-particle-reinforced metal matrix composites are widely used in aerospace, energy, automotive, and other fields owing to their lightweightness, high strength, thermal-fatigue resistance, thermal-corrosion resistance, and designability. Laser powder bed fusion is an effective method for preparing ceramic-particle-reinforced nickel-based composites. However, the ceramic particles in the formed material are unevenly distributed, thus resulting in the unstable performance of the material. Methods In this study, TiB2/Inconel 718 composite was selected as the research object. Pulse laser was employed during laser powder bed fusion experiments. By changing the laser power (P), spot spacing (P-d), and exposure time (T-e), the effect of laser-energy density on the forming quality, microstructure, and hardness of the composite material was investigated. The ImageJ software was used to statistically analyze the primary dendrite spacings of the samples. Furthermore, the relationship between the primary dendrite spacing and laser linear-energy density was established. Results and Discussions As the laser volumetric energy density increases gradually, the density of the composite material increases gradually. At low energy densities, the composite material exhibits few fusion defects. After the laser volumetric energy density reaches 165.1 J/mm(3), the density stabilizes at 8.0 g/cm(3). Under the pulsed-laser mode, the as-deposited microstructure shows columnar dendrites parallel to the build direction, i.e., the high-gradient epitaxial growth effect is dominant. The pulse laser enables a more uniform temperature field of the molten pool, thus rendering the dendrites finer and more uniform. However, under an extremely high energy density, the molten pool is more unstable, thus resulting in disordered dendrite orientations. Conclusions Pulse laser significantly reduces the heat input during the forming process, which causes low fusion levels. As the pulse-laser energy density increases, the low fusion level is mitigated and the sample density increases. Nanosized TiB2 particles are evenly distributed at the dendrite trunks and interdendritic areas, which is attributed to the stirring effect of the pulse laser on the melt pool. As the laser linear energy density (E-l) increases, the primary dendrite spacing (lambda(1)) increases linearly based on the equation lambda(1)=0.4896+0.0031E(l). Additionally, the hardness of the TiB2/Inconel 718 composite fabricated via pulsed-laser powder bed fusion can reach 365.8 HV. However, when the laser energy density is beyond the threshold of 240 J/mm(3), the microhardness level decreases, which is attributed to the excessive energy input, thus causing the melting of TiB2 particles and hence the formation of defects.
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页数:11
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共 31 条
[1]   Processing and properties of monolithic TiB2 based materials [J].
Basu, B. ;
Raju, G. B. ;
Suri, A. K. .
INTERNATIONAL MATERIALS REVIEWS, 2006, 51 (06) :352-374
[2]   Micro-structure and mechanical properties of nano-TiC reinforced Inconel 625 deposited using LAAM [J].
Bi, G. ;
Sun, C. N. ;
Nai, M. L. ;
Wei, J. .
LASERS IN MANUFACTURING (LIM 2013), 2013, 41 :821-827
[3]   Investigations of γ′, γ" and δ precipitates in heat-treated Inconel 718 alloy fabricated by selective laser melting [J].
Cao, G. H. ;
Sun, T. Y. ;
Wang, C. H. ;
Li, Xing ;
Liu, M. ;
Zhang, Z. X. ;
Hu, P. F. ;
Russell, A. M. ;
Schneider, R. ;
Gerthsen, D. ;
Zhou, Z. J. ;
Li, C. P. ;
Chen, G. F. .
MATERIALS CHARACTERIZATION, 2018, 136 :398-406
[4]  
Chen F, 2020, Study on microstructures and mechanical properties of TiN/Inconel 718 composites fabricated by selective laser melting D
[5]   Effect of sintering profile on densification of nano-sized Ni/Al2O3 composite [J].
Cho, Dong-Guk ;
Yang, Seung-Kyu ;
Yun, Joon-Chul ;
Kim, Hyung-Sub ;
Lee, Jai-Sung ;
Lee, Caroline Sunyong .
COMPOSITES PART B-ENGINEERING, 2013, 45 (01) :159-164
[6]   Rapid manufacturing of metal components by laser forming [J].
Costa Santos, Edson ;
Shiomi, Masanari ;
Osakada, Kozo ;
Laoui, Tahar .
INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2006, 46 (12-13) :1459-1468
[7]   Laser additive manufacturing of nano-TiC reinforced Ni-based nanocomposites with tailored microstructure and performance [J].
Gu, Dongdong ;
Zhang, Hongmei ;
Dai, Donghua ;
Xia, Mujian ;
Hong, Chen ;
Poprawe, Reinhart .
COMPOSITES PART B-ENGINEERING, 2019, 163 :585-597
[8]   Y2O3 nanoparticles decorated IN738LC superalloy manufactured by laser powder bed fusion: Cracking inhibition, microstructures and mechanical properties [J].
Guo, Chuan ;
Yu, Zhengrong ;
Hu, Xiaogang ;
Li, Gan ;
Zhou, Fan ;
Xu, Zhen ;
Han, Shuang ;
Zhou, Yang ;
Ward, R. Mark ;
Zhu, Qiang .
COMPOSITES PART B-ENGINEERING, 2022, 230
[9]   Direct laser metal deposition cladding of IN718 on DIN 1.2714 tool steel reinforced by the SiC nanoparticles [J].
Hajideh, Mojtaba Rezaee ;
Farahani, Mohammadreza .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2023, 23 :2020-2030
[10]   Selective laser melting of Hastelloy X nanocomposite: Effects of TiC reinforcement on crack elimination and strength improvement [J].
Han, Quanquan ;
Gu, Yuchen ;
Huang, Jun ;
Wang, Liqiao ;
Low, Kenny W. Q. ;
Feng, Qixiang ;
Yin, Yingyue ;
Setchi, Rossitza .
COMPOSITES PART B-ENGINEERING, 2020, 202 (202)