Chinese Journal of Lasers, Volume. 49, Issue 22, 2202016(2022)

Influence of Nb on Microstructure and Properties of Ti-Zr Congruent Alloy Fabricated Using Laser Directed Energy Deposition

Ningxia Liu, Cunshan Wang*, Yanpeng Liang, and Jingtao Zhang
Author Affiliations
  • Key Laboratory for Materials Modification by Laser, Ion, and Electron Beams, Ministry of Education, Dalian University of Technology, Dalian 116024, Liaoning, China
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    References(25)

    [1] Mu J X, Wang H Y, Qin B H et al. Improved wear and corrosion resistance of biological compatible TiZrNb films on biomedical Ti6Al4V substrates by optimizing sputtering power[J]. Surface and Coatings Technology, 428, 127866(2021).

    [2] Gu J, Liu Z, Xu Y et al. Titanium alloy and its laser processing technology in aviation manufacturing[J]. Applied Laser, 40, 547-555(2020).

    [3] Kapustyan A Y, Ovchinnikov A V, Yanko T B. Syntered titanium alloys for nuclear industry[J]. Problems of Atomic Science and Technology, 113, 134-141(2018).

    [4] Ansari M, Jabari E, Toyserkani E. Opportunities and challenges in additive manufacturing of functionally graded metallic materials via powder-fed laser directed energy deposition: a review[J]. Journal of Materials Processing Technology, 294, 117117(2021).

    [5] 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).

    [6] Bermingham M J, StJohn D H, Krynen J et al. Promoting the columnar to equiaxed transition and grain refinement of titanium alloys during additive manufacturing[J]. Acta Materialia, 168, 261-274(2019).

    [7] Ren X P, Li H Q, Guo H et al. A comparative study on mechanical properties of Ti-6Al-4V alloy processed by additive manufacturing vs. traditional processing[J]. Materials Science and Engineering: A, 817, 141384(2021).

    [8] Zhou Q J, Yan Z Y, Han X et al. Microstructure and mechanical properties of laser melting deposited TC11 titanium alloys[J]. Chinese Journal of Lasers, 45, 1102005(2018).

    [9] Liu S C, Lei P F, Liu M et al. Additive manufactured Ti-6Al-4V alloy with graded micro-structure by selective laser melting[J]. Rare Metal Materials and Engineering, 50, 3543-3549(2021).

    [10] Ge L C, Zhao Z S, Liu N X et al. Adjusting of Al additions on microstructures and properties of TC4 alloys fabricated by laser additive manufacturing[J]. Chinese Journal of Lasers, 48, 1402004(2021).

    [11] Wang C S, Zhao Z S, Zhang J T et al. Novel Ti-Zr-V-Nb alloy for laser additive manufacturing[P].

    [12] Yu Q, Wang C S, Wang D et al. Microstructure and properties of Ti-Zr congruent alloy fabricated by laser additive manufacturing[J]. Journal of Alloys and Compounds, 834, 155087(2020).

    [13] Ge P, Zhao Y Q, Zhou L. Strengthening mechanism of beta titanium alloys[J]. Materials Review, 19, 52-55, 63(2005).

    [14] Bao X T, Maimaitijuma T, Yu B X et al. Ti-Zr-Nb based BCC solid solution alloy containing trace Cu and Ag with low modulus and excellent antibacterial properties[J]. Materials Today Communications, 31, 103180(2022).

    [15] Wen Z H, Wang Y, Chen W M et al. Investigation of mechanical and diffusion properties in bcc Ti-Nb-Zr-Sn alloys via a high-throughput method[J]. Transactions of Nonferrous Metals Society of China, 31, 3405-3415(2021).

    [16] Hsu H C, Wong K K, Wu S C et al. Metastable dual-phase Ti-Nb-Sn-Zr and Ti-Nb-Sn-Fe alloys with high strength-to-modulus ratio[J]. Materials Today Communications, 30, 103168(2022).

    [17] Ma Y, Wang Q, Li C L et al. Chemical short-range orders and the induced structural transition in high-entropy alloys[J]. Scripta Materialia, 144, 64-68(2018).

    [18] Dong C, Wang Q, Qiang J B et al. From clusters to phase diagrams: composition rules of quasicrystals and bulk metallic glasses[J]. Journal of Physics D-Applied Physics, 40, 273-291(2007).

    [19] Dong C, Dong D D, Wang Q. Chemical units in solid solutions and alloy composition design[J]. Acta Metallurgica Sinica, 54, 293-300(2018).

    [20] Hao C P, Wang Q, Ma R T et al. Cluster-plus-glue-atom model in bcc solid solution alloys[J]. Acta Physica Sinica, 60, 116101(2011).

    [21] Zhang D Y, Qiu D, Gibson M A et al. Author correction: additive manufacturing of ultrafine-grained high-strength titanium alloys[J]. Nature, 582, E5(2020).

    [22] Li Q, Yang Z D, Xia C Q et al. Effects of Y addition on microstructure and mechanical properties of Ti-25Zr alloys[J]. Materials Science and Engineering: A, 748, 236-243(2019).

    [23] Toda-Caraballo I, Rivera-Díaz-del-Castillo P E J. Modelling solid solution hardening in high entropy alloys[J]. Acta Materialia, 85, 14-23(2015).

    [24] Wang G, Cheng X R. Characteristics and formation mechanism of passivated films on titanium and its alloys[J]. Chinese Journal of Oral Implantology, 5, 37-39(2000).

    [25] Rahmati S, Vahabli E. Evaluation of analytical modeling for improvement of surface roughness of FDM test part using measurement results[J]. The International Journal of Advanced Manufacturing Technology, 79, 823-829(2015).

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    Ningxia Liu, Cunshan Wang, Yanpeng Liang, Jingtao Zhang. Influence of Nb on Microstructure and Properties of Ti-Zr Congruent Alloy Fabricated Using Laser Directed Energy Deposition[J]. Chinese Journal of Lasers, 2022, 49(22): 2202016

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    Paper Information

    Category: laser manufacturing

    Received: Dec. 24, 2021

    Accepted: Apr. 2, 2022

    Published Online: Nov. 9, 2022

    The Author Email: Wang Cunshan (Laser@dlut.edu.cn)

    DOI:10.3788/CJL202249.2202016

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