• Chinese Journal of Lasers
  • Vol. 49, Issue 16, 1602010 (2022)
Chang Liu1、2, Changrong Chen2、3, Qianting Wang1、2、4、*, Guofu Lian3, Xu Huang3, Meiyan Feng3, and Jicheng Dai5
Author Affiliations
  • 1School of Materials Science and Engineering, Fujian University of Technology, Fuzhou 350118, Fujian, China
  • 2Fujian Provincial Precision Processing Manufacturing Engineering Research Center, Fuzhou 350118, Fujian, China
  • 3School of Mechanical and Automobile Engineering, Fujian University of Technology, Fuzhou 350118, Fujian, China
  • 4Fujian Provincial Key Laboratory of Advanced Materials Processing and Application, Fuzhou 350118, Fujian, China
  • 5Haian Rubber Group Co., Ltd., Putian 351254, Fujian, China
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    DOI: 10.3788/CJL202249.1602010 Cite this Article Set citation alerts
    Chang Liu, Changrong Chen, Qianting Wang, Guofu Lian, Xu Huang, Meiyan Feng, Jicheng Dai. Flowability and Mechanical Properties of Gradient Ti-6Al-4V Porous Structures[J]. Chinese Journal of Lasers, 2022, 49(16): 1602010 Copy Citation Text show less
    References

    [1] Lei J F, Ge Y S, Liu T et al. Research on dynamic mechanical properties of 316L stainless steel processed using selective laser melting[J]. Laser & Optoelectronics Progress, 58, 2314009(2021).

    [2] Gu D D, Zhang H M, Chen H Y et al. Laser additive manufacturing of high-performance metallic aerospace components[J]. Chinese Journal of Lasers, 47, 0500002(2020).

    [3] Qin Y L, Sun B H, Zhang H et al. Development of selective laser melted aluminum alloys and aluminum matrix composites in aerospace field[J]. Chinese Journal of Lasers, 48, 1402002(2021).

    [4] Donachie M J Jr[M]. Titanium: a technical guide(2000).

    [5] Liu J K[D]. Research and application of medical-oriented registration and repair method of 3D bone model(2020).

    [6] Wang K[D]. Study of TC4 laser selective melting forming on process and properties(2018).

    [7] Li Q, Zhao G R, Yan X C et al. Mechanical properties of porous Ti-6Al-4V titanium alloys fabricated by selective laser melting[J]. Laser & Optoelectronics Progress, 56, 011403(2019).

    [8] Koons G L, Diba M, Mikos A G. Materials design for bone-tissue engineering[J]. Nature Reviews Materials, 5, 584-603(2020).

    [9] Yu G S, Li Z B, Li S J et al. The select of internal architecture for porous Ti alloy scaffold: a compromise between mechanical properties and permeability[J]. Materials & Design, 192, 108754(2020).

    [10] Xiong Y Z, Gao R N, Zhang H et al. Rationally designed functionally graded porous Ti6Al4V scaffolds with high strength and toughness built via selective laser melting for load-bearing orthopedic applications[J]. Journal of the Mechanical Behavior of Biomedical Materials, 104, 103673(2020).

    [11] Fleck N A. An overview of the mechanical properties of foams and periodic lattice materials[J]. Cellular Metals and Polymers, 2004, 1-4(2004).

    [12] Xiao L J, Song W D. Additively-manufactured functionally graded Ti-6Al-4V lattice structures with high strength under static and dynamic loading: experiments[J]. International Journal of Impact Engineering, 111, 255-272(2018).

    [13] Wang H[D]. The effect of 3D-printed Ti6Al4V scaffolds with various macropore structures on osteointegration and osteogenesis(2019).

    [14] Fousová M, Vojtěch D, Kubásek J et al. Promising characteristics of gradient porosity Ti-6Al-4V alloy prepared by SLM process[J]. Journal of the Mechanical Behavior of Biomedical Materials, 69, 368-376(2017).

    [15] Wang Z[D]. Studies on microstructure and properties of selective laser melted Ti6Al4V alloy treated by ultrasonic surface rolling process(2019).

    [16] Zhang S, Wei Q S, Cheng L Y et al. Effects of scan line spacing on pore characteristics and mechanical properties of porous Ti6Al4V implants fabricated by selective laser melting[J]. Materials & Design, 63, 185-193(2014).

    [17] Simonelli M, Tse Y Y, Tuck C. Effect of the build orientation on the mechanical properties and fracture modes of SLM Ti-6Al-4V[J]. Materials Science and Engineering A, 616, 1-11(2014).

    [18] Khoa D D[D]. Microstructure characterizing and mechanical properties of selective laser melted Ti-6AL-4V alloys(2021).

    [19] Xiao Z F[D]. Research on design for additive manufacturing of lightweight complex component manufactured by selective laser melting(2018).

    [20] Zhong T L, He K T, Li H X et al. Mechanical properties of lightweight 316L stainless steel lattice structures fabricated by selective laser melting[J]. Materials & Design, 181, 108076(2019).

    [21] Guo X Y, Ni M, Liu H M et al. Design and numerical simulation of broad coaxial powder feeding nozzles for laser cladding[J]. Laser Technology, 42, 362-368(2018).

    [22] Shao Z L, Jiang W. Structure design and optimization of metal powder pneumatic conveying nozzle based on Fluent[J]. Modern Machinery, 6-10(2018).

    [23] Maskery I, Aboulkhair N T, Aremu A O et al. A mechanical property evaluation of graded density Al-Si10-Mg lattice structures manufactured by selective laser melting[J]. Materials Science and Engineering A, 670, 264-274(2016).

    [24] Li X, Gao R N, Xiong Y Z et al. Fabrication and characterization of porous titanium based on TPMS structure[J]. Rare Metal Materials and Engineering, 49, 325-330(2020).

    [25] Bobbert F S L, Lietaert K, Eftekhari A A et al. Additively manufactured metallic porous biomaterials based on minimal surfaces: a unique combination of topological, mechanical, and mass transport properties[J]. Acta Biomaterialia, 53, 572-584(2017).

    [26] Soro N, Attar H, Wu X H et al. Investigation of the structure and mechanical properties of additively manufactured Ti-6Al-4V biomedical scaffolds designed with a Schwartz primitive unit-cell[J]. Materials Science and Engineering A, 745, 195-202(2019).

    [27] Duan S Q, Liu T T, Liao W H et al. Research on forming quality of overhanging round hole by selective laser melting[J]. Chinese Journal of Lasers, 45, 0402007(2018).

    [28] Wei X M, Wang D, Yang Y Q et al. Study on tensile properties of titanium alloy porous structure using selective laser melting[J]. Chinese Journal of Lasers, 48, 1802016(2021).

    [29] Hedayati R, Ahmadi S M, Lietaert K et al. Isolated and modulated effects of topology and material type on the mechanical properties of additively manufactured porous biomaterials[J]. Journal of the Mechanical Behavior of Biomedical Materials, 79, 254-263(2018).

    [30] Li P, Warner D H, Fatemi A et al. Critical assessment of the fatigue performance of additively manufactured Ti-6Al-4V and perspective for future research[J]. International Journal of Fatigue, 85, 130-143(2016).

    [31] Hao Y[D]. The construction of microstructure on biomedical metallic materials and their biological functional evaluation(2019).

    [32] Ataee A, Li Y C, Fraser D et al. Anisotropic Ti-6Al-4V gyroid scaffolds manufactured by electron beam melting (EBM) for bone implant applications[J]. Materials & Design, 137, 345-354(2018).

    [33] Yadroitsev I, Krakhmalev P, Yadroitsava I. Selective laser melting of Ti6Al4V alloy for biomedical applications: temperature monitoring and microstructural evolution[J]. Journal of Alloys and Compounds, 583, 404-409(2014).

    [34] Sallica-Leva E, Jardini A L, Fogagnolo J B. Microstructure and mechanical behavior of porous Ti-6Al-4V parts obtained by selective laser melting[J]. Journal of the Mechanical Behavior of Biomedical Materials, 26, 98-108(2013).

    [35] Maskery I, Aboulkhair N T, Aremu A O et al. Compressive failure modes and energy absorption in additively manufactured double gyroid lattices[J]. Additive Manufacturing, 16, 24-29(2017).

    [36] Wang Y, Xia J J, Luo Z et al. Self-supporting topology optimization method for selective laser melting[J]. Additive Manufacturing, 36, 101506(2020).

    [37] Liu Y G, Zhang J Q, Gu X J et al. Mechanical performance of a node reinforced body-centred cubic lattice structure manufactured via selective laser melting[J]. Scripta Materialia, 189, 95-100(2020).

    [38] Huang C S[D]. Study on the preparation of Ti-6Al-4V powders by EIGA method and the microstructure and properties of selective laser melted parts(2019).

    [39] Ma S, Tang Q, Han X X et al. Manufacturability, mechanical properties, mass-transport properties and biocompatibility of triply periodic minimal surface (TPMS) porous scaffolds fabricated by selective laser melting[J]. Materials & Design, 195, 109034(2020).

    [40] Wang X L, Xiao Z Y, Zhang G Q et al. Effect of inclination angle on the selective laser melting of Ti6Al4V alloy[J]. Materials Science and Engineering of Powder Metallurgy, 21, 376-382(2016).

    [41] Xu Y L[D]. Mechanical properties tailoring of porous structure using topology optimization and selective laser melting(2019).

    [42] Yan C Z, Hao L, Hussein A et al. Advanced lightweight 316L stainless steel cellular lattice structures fabricated via selective laser melting[J]. Materials & Design, 55, 533-541(2014).

    Chang Liu, Changrong Chen, Qianting Wang, Guofu Lian, Xu Huang, Meiyan Feng, Jicheng Dai. Flowability and Mechanical Properties of Gradient Ti-6Al-4V Porous Structures[J]. Chinese Journal of Lasers, 2022, 49(16): 1602010
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