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Materials Science in Additive Manufacturing                Spheroidization of 304L SS powder for LPBF process


            3.   Sehhat MH, Mahdianikhotbesara A, Hadad M, 2022,      https://doi.org/10.1111/ffe.13515
               Formability investigation for perforated steel sheets.  Int J   14.  Liu T, Lough CS, Sehhat H,  et al., 2021,  In-Situ
               Mater Manuf, 15: 12.
                                                                  Thermographic Inspection for Laser Powder Bed Fusion. In:
               https://doi.org/10.4271/05-15-02-0012              2021 International Solid Freeform Fabrication Symposium,
                                                                  University of Texas at Austin.
            4.   Mahdianikhotbesara A, Sehhat MH, Hadad M, 2022, A
               numerical and experimental study into thermal behavior   15.  Nezhadfar PD, Thompson S, Saharan A,  et al., 2021,
               of micro friction stir welded joints of Al 1050 and copper   Fatigue and failure analysis of an additively manufactured
               sheets. Adv Mater Res, 15: 1–15.                   contemporary aluminum alloy. In: The Minerals, Metals
            5.   Mahdianikhotbesara A, Sehhat MH, Hadad M, 2021,   and Materials Series. Springer Science and Business Media
               Experimental study on micro-friction stir welding of   Deutschland GmbH, Berlin. p212–219.
               dissimilar butt joints between Al 1050 and pure copper.      https://doi.org/10.1007/978-3-030-65396-5_31
               Metallogr Microstruct Anal, 10: 1–16.
                                                               16.  Sehhat MH, Mahdianikhotbesara A, Yadegari F, 2021,
               https://doi.org/10.1007/S13632-021-00771-5         Experimental validation of conductive heat transfer theory:
            6.   Yadegari F, Sehhat MH, Mahdianikhotbesara A, 2022, A   Thermal resistivity and system effects.  Comput. Res Prog
               Numerical Study of Automotive Body Panel Draw Dies   Appl Sci Eng, 7(1): 1–6.
               Defects Using Finite Element Simulation. Research Square.     https://doi.org/10.52547/crpase.7.4.2415
               https://doi.org/10.21203/RS.3.RS-1300589/V1     17.  Sehhat MH, Sutton AT, Hung CH, et al., 2021, Investigation
            7.   Sehhat MH, Behdani B, Hung CH, et al., 2021, Development   of mechanical properties of parts fabricated with gas- and
               of an empirical model on melt pool variation in laser foil   water-atomized 304L stainless steel powder in the laser
               printing additive manufacturing process using statistical   powder bed fusion process. JOM, 2021: 1–8.
               analysis. Metallogr Microstruct Anal, 1: 1–8.      https://doi.org/10.1007/S11837-021-05029-7
               https://doi.org/10.1007/S13632-021-00795-X      18.  Sehhat MH, Mahdianikhotbesara A, 2021, Powder spreading
            8.   Hung CH, Turk T, Sehhat MH, et al., 2022, Development and   in laser-powder bed fusion process. Granul Matter, 23: 89.
               experimental study of an automated laser-foil-printing additive      https://doi.org/10.1007/s10035-021-01162-x
               manufacturing system. Rapid Prototyp J, ahead-of-print.
                                                               19.  Kumar P, Jayaraj R, Zhu Z, et al., 2022, Role of metastable
               https://doi.org/10.1108/RPJ-10-2021-0269           austenite in the fatigue resistance of 304L stainless steel
            9.   Turk  T,  Hung CH,  Sehhat  MH,  et al.,  2021, Methods of   produced by laser-based powder bed fusion. Mater Sci Eng
               Automating the Laser-Foil-Printing Additive Manufacturing   A, 837: 142744.
               Process.  International  Solid  Freeform  Fabrication     https://doi.org/10.1016/J.MSEA.2022.142744
               Symposium, University of Texas at Austin.
                                                               20.  Kumar P, Zhu Z, Nai SM, et al., 2021, Fracture toughness of
            10.  Sehhat MH, Mahdianikhotbesara A, Yadegari F, 2021,   304L austenitic stainless steel produced by laser powder bed
               Impact of temperature and material variation on mechanical   fusion. Script Mater, 202: 114002.
               properties of parts fabricated with fused deposition
               modelling (FDM). Int J Adv Manuf Technol, 2021: 107984.     https://doi.org/10.1016/J.SCRIPTAMAT.2021.114002
               https://doi.org/10.21203/RS.3.RS-1079840/V1     21.  Kurzynowski T, Chlebus E, Kuźnicka B,  et al., 2012,
                                                                  Parameters in Selective Laser Melting for Processing
            11.  Sehhat MH, Mahdianikhotbesara A, Yadegari F, 2021,   Metallic Powders. Proc SPIE, 2012: 823914.
               Verification of Stress Transformation in Anisotropic
               Material  Additively  Manufactured  by  Fused  Deposition      https://doi.org/10.1117/12.907292
               Modeling (FDM). Free Download Manager.          22.  Muñiz-Lerma JA, Nommeots-Nomm A, Waters KE,
               https://doi.org/10.21203/RS.3.RS-1107949/V1        et al., 2018, A comprehensive approach to powder
                                                                  feedstock characterization for powder bed fusion additive
            12.  Hung CH, Chen WT, Sehhat MH,  et al., 2020, The effect   manufacturing: A case study on AlSi7Mg, Materials (Basel),
               of laser welding modes on mechanical properties and
               microstructure of 304L stainless steel parts fabricated by   11: 2386.
               laser-foil-printing additive manufacturing. Int J Adv Manuf      https://doi.org/10.3390/ma11122386
               Technol, 1: 1-11.
                                                               23.  Sun P, Fang ZZ, Zhang Y, et al., 2017, Microstructure and
               https://doi.org/10.1007/s00170-020-06402-7         mechanical properties of Ti-6Al-4V fabricated by selective
                                                                  laser melting of powder produced by granulation-sintering-
            13.  Jirandehi AP, Khonsari MM, 2021, General quantification of
               fatigue damage with provision for microstructure: A review.   deoxygenation method. JOM, 69: 2731–2737.
               Fatigue Fract Eng Mater Struct, 1: 13515.          https://doi.org/10.1007/S11837-017-2584-3


            Volume 1 Issue 1 (2022)                         11                      http://doi.org/10.18063/msam.v1i1.1
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