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Engineering Science in
            Additive Manufacturing                                           HIP temperature effects on LPBF Hastelloy X



            18.  Keller C, Mokhtari M, Vieille B, Briatta H, Bernard P.   manufactured by electron beam powder bed fusion. J Mater
               Influence of a rescanning strategy with different laser   Sci Technol. 2022;98:99-117.
               powers on the microstructure and mechanical properties of
               hastelloy X elaborated by powder bed fusion. Mater Sci Eng      doi: 10.1016/j.jmst.2021.04.059
               A. 2021;803:140474.                             28.  Mani Pandi AS, Senthil Kumar VS. A review: Fabrication
                                                                  techniques of the hastelloy (super alloy) composites and it
               doi: 10.1016/j.msea.2020.140474
                                                                  impacts on the properties. Mater Today Proc. 2024.
            19.  Montero-Sistiaga ML,  Liu  Z,  Bautmans  L,  et al.  Effect  of
               temperature on the microstructure and tensile properties      doi: 10.1016/j.matpr.2024.05.115
               of micro-crack free hastelloy X produced by selective laser   29.  Qin Y, Liu Y, Guan W, Wang K. Material corrosion
               melting. Add Manufact. 2021;31:100995.             characteristics  of heat-treated  SLM-ed  hastelloy  X in
                                                                  electrochemical machining process. Mater Today Commun.
               doi: 10.1016/j.addma.2019.100995
                                                                  2024;39:109105.
            20.  Agrawal S, Avadhani GS, Suwas S. Deformation behaviour
               of additively manufactured hastelloy X at high temperatures:      doi: 10.1016/j.mtcomm.2024.109105
               The role of concurrent carbide precipitation. J Alloys Compd.   30.  Marchese G, Bassini E, Aversa A,  et al. Microstructural
               2025;1021:179636.                                  evolution of post-processed hastelloy X alloy fabricated by
                                                                  laser powder bed fusion. Materials (Basel). 2019;12:486.
               doi: 10.1016/j.jallcom.2025.179636
            21.  Zheng  L,  Schmitz  G,  Meng  Y,  Chellali  MR,  Schlesiger  R.      doi: 10.3390/ma12030486
               Mechanism of intermediate temperature embrittlement of   31.  Tomus D, Tian Y, Rometsch PA, Heilmaier M, Wu  X.
               Ni and Ni-based superalloys. Crit Rev Solid State Mater Sci.   Influence  of  post  heat  treatments  on  anisotropy  of
               2012;37:181-214.                                   mechanical behaviour and microstructure of hastelloy-X
               doi: 10.1080/10408436.2011.613492                  parts produced by selective laser melting. Mater Sci Eng A.
                                                                  2016;667:42-53.
            22.  Han Q, Mertens R, Montero-Sistiaga ML,  et al. Laser
               powder bed fusion of hastelloy X: Effects of hot isostatic      doi: 10.1016/j.msea.2016.04.086
               pressing and the hot cracking mechanism. Mater Sci Eng A.   32.  Li Y, Qi H, Hou H, Lei L. Effects of Hot Isostatic Pressing
               2018;732:228-239.                                  on Microstructure and Mechanical Properties of Hastelloy X
               doi: 10.1016/j.msea.2018.07.008                    Samples Produced by Selective Laser Melting. Netherlands:
                                                                  Atlantis Press; 2017. p. 31-40.
            23.  Wang H, Chen L, Dovgyy B,  et  al. Micro-cracking,
               microstructure  and  mechanical  properties  of  hastelloy-X   33.  Sun S, Teng Q, Xie Y,  et al. Two-step heat treatment for
               alloy printed by laser powder bed fusion: As-built, annealed   laser powder bed fusion of a nickel-based superalloy with
               and hot-isostatic pressed. Add Manufact. 2021;39:101853.  simultaneously enhanced tensile strength and ductility. Add
                                                                  Manufact. 2021;46:102168.
               doi: 10.48550/arXiv.2011.11003
                                                                  doi: 10.1016/j.addma.2021.102168
            24.  Sanchez-Mata O, Muñiz-Lerma JA, Wang X,  et al.
               Microstructure and mechanical properties at room and   34.  Liu  M, Zeng Q,  Hua Y,  et al.  High-temperature  tensile
               elevated temperature of crack-free hastelloy X fabricated by   properties of hastelloy x produced by laser powder bed
               laser powder bed fusion. Mater Sci Eng A. 2020;780:139177.  fusion with different heat treatments. Metals. 2022;12:1435.
               doi: 10.1016/j.msea.2020.139177                    doi: 10.3390/met12091435
            25.  Zhou W, Tian Y, Wei D, et al. Effects of heat treatments on the   35.  Montero-Sistiaga ML, Pourbabak S, Van Humbeeck J,
               microstructure and tensile properties of IN738 superalloy   Schryvers D, Vanmeensel K. Microstructure and mechanical
               with high carbon content fabricated via laser powder bed   properties of hastelloy X produced by HP-SLM (high power
               fusion. J Alloys Compd. 2023;953:170110.           selective laser melting). Mater Design. 2019;165:107598.
               doi: 10.1016/j.jallcom.2023.170110                 doi: 10.1016/j.matdes.2019.107598
            26.  Yuan Z, Chang F, Chen A,  et al. Microstructure and   36.  Shu DL, Tian SG, Tian N, Xie J, Su Y. Thermodynamic analysis
               properties of SLM-hastelloy X alloy after different hot   of carbide precipitation and effect of its configuration on
               isostatic  pressing  + heat treatment.  Mater Sci Eng A.   creep properties of FGH95 powder nickel-based superalloy.
               2022;852:143714.                                   Mater Sci Eng A. 2017;700:152-161.
               doi: 10.1016/j.msea.2022.143714                    doi: 10.1016/j.msea.2017.05.108
            27.  Shaji Karapuzha A, Fraser D, Zhu Y, Wu X, Huang A. Effect   37.  Zhang S, Wang L, Lin X, et al. Precipitation behavior of δ
               of solution heat treatment and hot isostatic pressing on the   phase and its effect on stress rupture properties of selective
               microstructure and mechanical properties of hastelloy X   laser-melted Inconel 718 superalloy.  Compos Part  B Eng.


            Volume 1 Issue 2 (2025)                         14                         doi: 10.36922/ESAM025240015
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