A Comprehensive Comparison of the Analytical and Numerical Prediction of the Thermal History and Solidification Microstructure of Inconel 718 Products Made by Laser Powder-Bed Fusion
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Petrick, 2013, 3D printing disrupts manufacturing: How economies of one create new rules of competition, Res Technol Manag, 56, 12, 10.5437/08956308X5606193
Zhao X, Promoppatum P, Yao SC. Numerical modeling of non-linear thermal stress in direct metal laser sintering process of titanium alloy products. In: Proceedings of the First Thermal and Fluids Engineering Summer Conference; 2015 Aug 9–12; New York, NY, USA. New York: American Society of Thermal and Fluids Engineers; 2015. p. 1519–31.
Kumar, 2017, Current trends of additive manufacturing in the aerospace industry, 39
Jia, 2014, Selective laser melting additive manufactured Inconel 718 superalloy parts: High-temperature oxidation property and its mechanisms, Opt Laser Technol, 62, 161, 10.1016/j.optlastec.2014.03.008
Wang, 2016, Build height effect on the Inconel 718 parts fabricated by selective laser melting, Procedia Manuf, 5, 1006, 10.1016/j.promfg.2016.08.089
Promoppatum, 2017, Numerical and experimental investigations of micro and macro characteristics of direct metal laser sintered Ti-6Al-4V products, J Mater Process Technol, 240, 262, 10.1016/j.jmatprotec.2016.10.005
Sadowski, 2016, Optimizing quality of additively manufactured Inconel 718 using powder bed laser melting process, Addit Manuf, 11, 60, 10.1016/j.addma.2016.03.006
Rosenthal, 1941, Mathematical theory of heat distribution during welding and cutting, Weld J, 20, 220
Tang, 2017, Prediction of lack-of-fusion porosity for powder bed fusion, Addit Manuf, 14, 39, 10.1016/j.addma.2016.12.001
Liang, 2016, Prediction of primary dendritic arm spacing during laser rapid directional solidification of single-crystal nickel-base superalloys, J Alloys Compd, 688, 133, 10.1016/j.jallcom.2016.06.289
Romano, 2016, Laser additive melting and solidification of Inconel 718: Finite element simulation and experiment, JOM, 68, 967, 10.1007/s11837-015-1765-1
Romano, 2015, Thermal modeling of laser based additive manufacturing processes within common materials, Procedia Manuf, 1, 238, 10.1016/j.promfg.2015.09.012
Yan, 2016, Multi-scale modeling of electron beam melting of functionally graded materials, Acta Mater, 115, 403, 10.1016/j.actamat.2016.06.022
Yan, 2017, Multi-physics modeling of single/multiple-track defect mechanisms in electron beam selective melting, Acta Mater, 134, 324, 10.1016/j.actamat.2017.05.061
Bonacina, 1973, Numerical solution of phase-change problems, Int J Heat Mass Transfer, 16, 1825, 10.1016/0017-9310(73)90202-0
Hosaeus, 2001, Thermophysical properties of solid and liquid Inconel 718 alloy, High Temp High Press, 33, 405, 10.1068/htwu340
Hu, 2003, Modelling and measuring the thermal behaviour of the molten pool in closed-loop controlled laser-based additive manufacturing, Proc Inst Mech Eng Part B, 217, 441, 10.1243/095440503321628125
Sainte-Catherine, 1991, Study of dynamic absorptivity at 10.6 µm (CO2) and 1.06 µm (Nd-YAG) wavelengths as a function of temperature, J Phys IV France, 1, 10.1051/jp4:1991741
Montgomery C, Beuth J, Sheridan L, Klingbeil N. Process mapping of Inconel 625 in laser powder bed additive manufacturing. In: Proceedings: 26th Annual International Solid Freeform Fabrication Symposium—An additive manufacturing conference; 2015 Aug 10–12; Austin, TX, USA; 2015. p. 1195–204.
Lee, 2016, Modeling of heat transfer, fluid flow and solidification microstructure of nickel-base superalloy fabricated by laser powder bed fusion, Addit Manuf, 12, 178, 10.1016/j.addma.2016.05.003
Gong H, Gu H, Zeng K, Dilip JJS, Pal D, Stucker B, et al. Melt pool characterization for selective laser melting of Ti-6Al-4V pre-alloyed powder. In: Proceedings of the 25th Annual International Solid Freeform Fabrication Symposium; 2014 Aug 4–6; Austin, TX, USA; 2014. p. 256–67.
Bontha, 2009, Effects of process variables and size-scale on solidification microstructure in beam-based fabrication of bulky 3D structures, Mater Sci Eng A, 513–514, 311, 10.1016/j.msea.2009.02.019
Goldak, 1984, A new finite element model for welding heat sources, Metall Mater Trans B, 15, 299, 10.1007/BF02667333
Wei, 2016, Grain growth modeling for additive manufacturing of nickel based superalloys, 265
Wang X, Gong X, Chou K. Review on powder-bed laser additive manufacturing of Inconel 718 parts. In: Proceedings of the ASME 10th International Manufacturing Science and Engineering Conference 2015: Volume 1; 2015 Jun 8–12; Charlotte, NC, USA. New York: American Society of Mechanical Engineers; 2015. p. V001T02A063.
Nastac L, Valencia JJ, Tims ML, Dax FR. Advances in the solidification of IN718 and RS5 alloys. In: Loria EA, editor Superalloys 718, 625, 706, and various derivatives: Proceedings of the International Symposium on Superalloys 718, 625, 706 and Various Derivatives; 2001 Jun 17–20; Pittsburgh, PA, USA. Pittsburgh: The Minerals, Metals & Materials Society; 2001. p. 103–12.
Lu, 1992, A numerical analysis of dendritic and cellular array growth: The spacing adjustment mechanisms, J Cryst Growth, 123, 17, 10.1016/0022-0248(92)90006-5
Kurz, 1981, Dendrite growth at the limit of stability: Tip radius and spacing, Acta Metall, 29, 11, 10.1016/0001-6160(81)90082-1