Effect of nano TiC on microstructure and microhardness of composite additive manufacturing 316L stainless steel

被引:9
作者
Yang, Weiguang [1 ]
Wang, Xi [1 ]
Zhou, Hai [1 ]
Zhou, Ti [2 ]
机构
[1] Yancheng Inst Technol, Sch Mech Engn, Yancheng 224051, Peoples R China
[2] Jilin Univ, Weihai Inst Bion, Changchun 130012, Peoples R China
关键词
composite additive manufacturing; nano-TiC; microstructure; microhardness; MECHANICAL-PROPERTIES; DENSIFICATION BEHAVIOR; LASER; STRENGTH; ALLOY; NANOCOMPOSITES; HARDNESS;
D O I
10.1088/2053-1591/ac3b7d
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The lower surface hardness limits the further application of 316 L stainless steel. In this study, selective laser melting (SLM)/laser metal deposition (LMD) composite additive manufacturing technology was used to prepare five kinds of 316L-nano-TiC cermet strengthening layers on the surface of 316L stainless steel, and to study the effect of nano-TiC particle content on the microstructure and the influence of microhardness. Use Laser microscope, scanning electron microscope (SEM), X-ray diffractometer (XRD) to analyze the structure, element distribution and phase composition of the strengthening layer. The hardness of the strengthened layer was analyzed using a Vickers micro-hardness tester. The study found that the composite SLM/LMD formed samples changed continuously from LMD forming to SLM forming, showing good metallurgical bonding. Diffusion of TiC particles was observed in the SLM strengthening layer, and TiC phase was detected in the strengthening layer. Compared with the 316L matrix, the microhardness of the strengthened layer is significantly improved. When 50 wt% TiC is added, the average hardness of the strengthened layer is 1.9 times that of the 316L matrix, and the highest is 408.9 HV. The results of this study show that the strengthening layer manufactured by composite additive materials can effectively improve the hardness of the 316L stainless steel matrix. As the content of nano-TiC in the preset powder increases, the microhardness of the strengthening layer first increases and then decreases, and the hardness of the 50wt% TiC strengthening layer is the highest. There are distributed nano-TiC particles in the structure of the strengthening layer, and the distribution of nano-TiC particles in the 50wt% TiC strengthening layer is more uniform than other samples. This research provides a new reference for the strengthening of 316L stainless steel through SLM/LMD composite additive manufacturing technology and the addition of nano-TiC particles.
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页数:14
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共 40 条
  • [1] Novel TiB2-reinforced 316L stainless steel nanocomposites with excellent room- and high-temperature yield strength developed by additive manufacturing
    AlMangour, Bandar
    Kim, Young-Kyun
    Grzesiak, Dariusz
    Lee, Kee-Ahn
    [J]. COMPOSITES PART B-ENGINEERING, 2019, 156 : 51 - 63
  • [2] Densification behavior, microstructural evolution, and mechanical properties of TiC/316L stainless steel nanocomposites fabricated by selective laser melting
    AlMangour, Bandar
    Grzesiak, Dariusz
    Borkar, Tushar
    Yang, Jenn-Ming
    [J]. MATERIALS & DESIGN, 2018, 138 : 119 - 128
  • [3] Microstructure and properties of LENS (laser engineered net shaping) manufactured Ni-Ti shape memory alloy
    Baran, Agata
    Polanski, Marek
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2018, 750 : 863 - 870
  • [4] A Review on the various synthesis routes of TiC reinforced ferrous based composites
    Das, K
    Bandyopadhyay, TK
    Das, S
    [J]. JOURNAL OF MATERIALS SCIENCE, 2002, 37 (18) : 3881 - 3892
  • [5] Effect of post-treatments on the fatigue behaviour of 316L stainless steel manufactured by laser powder bed fusion
    Elangeswaran, Chola
    Cutolo, Antonio
    Muralidharan, Gokula Krishna
    de Formanoir, Charlotte
    Berto, Filippo
    Vanmeensel, Kim
    Van Hooreweder, Brecht
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2019, 123 : 31 - 39
  • [6] TiB2 and TiC stainless steel matrix composites
    Farid, Akhtar
    Guo, Shiju
    Cui, Feng-e
    Feng, Peizhong
    Lin, Tao
    [J]. MATERIALS LETTERS, 2007, 61 (01) : 189 - 191
  • [7] Microhardness measurements and the Hall-Petch relationship in an Al-Mg alloy with submicrometer grain size
    Furukawa, M
    Horita, Z
    Nemoto, M
    Valiev, RZ
    Langdon, TG
    [J]. ACTA MATERIALIA, 1996, 44 (11) : 4619 - 4629
  • [8] Highly biodegradable and bioactive Fe-Pd-bredigite biocomposites prepared by selective laser melting
    Gao, Chengde
    Yao, Meng
    Li, Sheng
    Feng, Pei
    Peng, Shuping
    Shuai, Cijun
    [J]. JOURNAL OF ADVANCED RESEARCH, 2019, 20 : 91 - 104
  • [9] A microcantilever investigation of size effect, solid-solution strengthening and second-phase strengthening for ⟨a⟩ prism slip in alpha-Ti
    Gong, Jicheng
    Wilkinson, Angus J.
    [J]. ACTA MATERIALIA, 2011, 59 (15) : 5970 - 5981
  • [10] Selective laser melting of TiC reinforced stainless steel nanocomposites: Mechanical behaviour at elevated temperatures
    Grzesiak, Dariusz
    AlMangour, Bandar
    Krawczyk, Marta
    Baek, Min-Seok
    Lee, Kee-Ahn
    [J]. MATERIALS LETTERS, 2019, 256