APPLIED LASER, Volume. 41, Issue 4, 745(2021)

Numerical Analysis and Microstructure and Properties of Hastelloy X and Ti6Al4V Alloy Formed by Selective Laser Melting

Zong Xuewen1,2,3、*, Zhang Jian1,2, Lu Bingheng3,4, and Li Weidong5
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • 4[in Chinese]
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    References(16)

    [1] [1] KRUTH J P, LEVY G, KLOCKE F, et al. Consolidation phenomena in laser and powder-bed based layered manufacturing[J]. CIRP Annals, 2007, 56(2): 730-759.

    [5] [5] NI X Q, KONG D C, ZHANG L, et al. Effect of process parameters on the mechanical properties of Hastelloy X alloy fabricated by selective laser melting[J]. Journal of Materials Engineering and Performance, 2019, 28(9): 5533-5540.

    [6] [6] WANG Q Y, XI Y C, LIU X Y, et al. Microstructure and mechanical properties of interface between laser cladded Hastelloy coating and steel substrate[J]. Transactions of Nonferrous Metals Society of China, 2017, 27(3): 733-740.

    [7] [7] TOMUS D, JARVIS T, WU X, et al. Controlling the microstructure of Hastelloy-X components manufactured by selective laser melting[J]. Physics Procedia, 2013, 41: 823-827.

    [10] [10] BARTOLOMEU F, BUCIUMEANU M, PINTO E, et al. Wear behavior of Ti6Al4V biomedical alloys processed by selective laser melting, hot pressing and conventional casting[J]. Transactions of Nonferrous Metals Society of China, 2017, 27(4): 829-838.

    [11] [11] PANTAWANE M V, HO Y H, JOSHI S S, et al. Computational assessment of thermokinetics and associated microstructural evolution in laser powder bed fusion manufacturing of Ti6Al4V alloy[J]. Scientific Reports, 2020, 10: 7579.

    [12] [12] ZHANG Q, LIANG Z L, CAO M, et al. Microstructure and mechanical properties of Ti6Al4V alloy prepared by selective laser melting combined with precision forging[J]. Transactions of Nonferrous Metals Society of China, 2017, 27(5): 1036-1042.

    [13] [13] SANCHEZ-MATA O, MUIZ-LERMA J A, WANG X, et al. Microstructure and mechanical properties at room and elevated temperature of crack-free Hastelloy X fabricated by laser powder bed fusion[J]. Materials Science and Engineering: A, 2020, 780: 139177.

    [14] [14] HAN Q Q, GU Y C, SOE S, et al. Effect of hot cracking on the mechanical properties of Hastelloy X superalloy fabricated by laser powder bed fusion additive manufacturing[J]. Optics & Laser Technology, 2020, 124: 105984.

    [15] [15] DU Y, YOU X Y, QIAO F B, et al. A model for predicting the temperature field during selective laser melting[J]. Results in Physics, 2019, 12: 52-60.

    [16] [16] HUSSEIN A, HAO L, YAN C Z, et al. Finite element simulation of the temperature and stress fields in single layers built without-support in selective laser melting[J]. Materials & Design (1980-2015), 2013, 52: 638-647.

    [17] [17] CHEN C Y, GU D D, DAI D H, et al. Laser additive manufacturing of layered TiB2/Ti6Al4V multi-material parts: Understanding thermal behavior evolution[J]. Optics & Laser Technology, 2019, 119: 105666.

    [18] [18] RUBENCHIK A, WU S, MITCHELL S, et al. Direct measurements of temperature-dependent laser absorptivity of metal powders[J]. Applied Optics, 2015, 54(24): 7230-7233.

    [19] [19] GU D D, YUAN P P. Thermal evolution behavior and fluid dynamics during laser additive manufacturing of Al-based nanocomposites: Underlying role of reinforcement weight fraction[J]. Journal of Applied Physics, 2015, 118(23): 233109.

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    Zong Xuewen, Zhang Jian, Lu Bingheng, Li Weidong. Numerical Analysis and Microstructure and Properties of Hastelloy X and Ti6Al4V Alloy Formed by Selective Laser Melting[J]. APPLIED LASER, 2021, 41(4): 745

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    Paper Information

    Received: Oct. 19, 2020

    Accepted: --

    Published Online: Jan. 10, 2022

    The Author Email: Xuewen Zong (ZJ_320@foxmail.com)

    DOI:10.14128/j.cnki.al.20214104.745

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