Elastic properties of additively manufactured steel produced with different scan strategies
Tài liệu tham khảo
Mukherjee, 2019, A digital twin for rapid qualification of 3D printed metallic components, Appl Mater Today, 14, 59, 10.1016/j.apmt.2018.11.003
Francois, 2017, Modeling of additive manufacturing processes for metals: challenges and opportunities, Curr Opin Solid State Mater Sci, 21, 198, 10.1016/j.cossms.2016.12.001
Leach, 2021, Modeling process–structure–property relationships in metal additive manufacturing: a review on physics-driven versus data-driven approaches, J Phys Mater, 4, 32002, 10.1088/2515-7639/abca7b
Yan, 2018, Modeling process-structure-property relationships for additive manufacturing, Front Mech Eng, 13, 482, 10.1007/s11465-018-0505-y
Kelly, 2004
Charles Murgau, 2016
Zhang, 2019, A metallurgical phase transformation framework applied to SLM additive manufacturing processes, Mater Des, 166, 10.1016/j.matdes.2019.107618
Yang, 2021, Towards a process-structure model for Ti-6Al-4V during additive manufacturing, J Manuf Process, 61, 428, 10.1016/j.jmapro.2020.11.033
Kobryn, 2003, Microstructure and texture evolution during solidification processing of Ti–6Al–4V, J Mater Process Technol, 135, 330, 10.1016/S0924-0136(02)00865-8
Nastac, 2004
Zinovieva, 2018, Three-dimensional modeling of the microstructure evolution during metal additive manufacturing, Comput Mater Sci, 141, 207, 10.1016/j.commatsci.2017.09.018
Zinovieva, 2022, Effects of scanning pattern on the grain structure and elastic properties of additively manufactured 316L austenitic stainless steel, Mater Sci Eng: A, 832, 10.1016/j.msea.2021.142447
Yang, 2018, Prediction of microstructure in selective laser melted Ti6Al4V alloy by cellular automaton, J Alloys Compd, 748, 281, 10.1016/j.jallcom.2018.03.116
Koepf, 2019, Numerical microstructure prediction by a coupled finite element cellular automaton model for selective electron beam melting, Comput Mater Sci, 162, 148, 10.1016/j.commatsci.2019.03.004
Teferra, 2021, Optimizing the cellular automata finite element model for additive manufacturing to simulate large microstructures, Acta Mater, 213, 10.1016/j.actamat.2021.116930
Rai, 2016, A coupled Cellular Automaton–Lattice Boltzmann model for grain structure simulation during additive manufacturing, Comput Mater Sci, 124, 37, 10.1016/j.commatsci.2016.07.005
Wei, 2019, Three-dimensional grain growth during multi-layer printing of a nickel-based alloy Inconel 718, Addit Manuf, 25, 448
Rodgers, 2017, Simulation of metal additive manufacturing microstructures using kinetic Monte Carlo, Comput Mater Sci, 135, 78, 10.1016/j.commatsci.2017.03.053
Pauza, 2021, Computer simulation of microstructure development in powder-bed additive manufacturing with crystallographic texture, Model Simul Mat Sci Eng, 29, 10.1088/1361-651X/ac03a6
Du, 2010, Advances in studies and applications of centroidal Voronoi tessellations, NM-TMA, 3, 119, 10.4208/nmtma.2010.32s.1
Romanova, 2021, A method of step-by-step packing and its application in generating 3D microstructures of polycrystalline and composite materials, Eng Comput, 37, 241, 10.1007/s00366-019-00820-2
Tang, 2021, Multi-scale modelling of structure-property relationship in additively manufactured metallic materials, Int J Mech Sci, 194, 10.1016/j.ijmecsci.2020.106185
Kergaßner, 2019, Modeling of additively manufactured materials using gradient-enhanced crystal plasticity, Comput Math Appl, 78, 2338, 10.1016/j.camwa.2018.05.016
Romanova, 2021, Micromechanical simulations of additively manufactured aluminum alloys, Comput Struct, 244, 10.1016/j.compstruc.2020.106412
Romanova, 2021, Effects of the grain shape and crystallographic texture on the grain-scale mechanical behavior of additively manufactured aluminum alloys, Addit Manuf, 48
Nastac, 1999, Numerical modeling of solidification morphologies and segregation patterns in cast dendritic alloys, Acta Mater, 47, 4253, 10.1016/S1359-6454(99)00325-0
Krumwiede, 2017, Dendritic growth shapes in kinetic Monte Carlo models, Model Simul Mat Sci Eng, 25, 10.1088/1361-651X/aa549f
Liu, 2021, Thermodynamically consistent phase-field modeling of competitive polycrystalline growth of beta grains during additive manufacturing of Ti6Al4V, J Cryst Growth, 564, 10.1016/j.jcrysgro.2021.126112
Wang, 2019, Investigation on microsegregation of IN718 alloy during additive manufacturing via integrated phase-field and finite-element modeling, J Mater Eng Perform, 28, 657, 10.1007/s11665-018-3620-3
Zhang, 2021, Crystal plasticity simulation of the macroscale and microscale stress–strain relations of additively manufactured AlSi10Mg alloy, Comput Mater Sci, 200, 10.1016/j.commatsci.2021.110832
Gurtin, 2007, Gradient single-crystal plasticity with free energy dependent on dislocation densities, J Mech Phys Solids, 55, 1853, 10.1016/j.jmps.2007.02.006
Dymnich, 2021, A numerical study of the stress-strain behavior of additively manufactured aluminum-silicon alloy at the scale of dendritic structure, Phys Mesomech, 24, 32, 10.1134/S1029959921010057
Zinovieva, 2018, Strategy of computational predictions for mechanical behaviour of additively manufactured materials, Mater Sci Technol, 34, 1591, 10.1080/02670836.2018.1489939
Pauza, 2021, Simulation study of hatch spacing and layer thickness effects on microstructure in laser powder bed fusion additive manufacturing using a texture-aware solidification Potts model, J Mater Eng Perform, 30, 7007, 10.1007/s11665-021-06110-7
Yan, 2018, An integrated process–structure–property modeling framework for additive manufacturing, Comput Methods Appl Mech Eng, 339, 184, 10.1016/j.cma.2018.05.004
Romanova, 2022, A physically-based computational approach for processing-microstructure-property linkage of materials additively manufactured by laser powder bed fusion, Int J Mech Sci, 219, 10.1016/j.ijmecsci.2022.107103
Andreau, 2019, Texture control of 316L parts by modulation of the melt pool morphology in selective laser melting, J Mater Process Technol, 264, 21, 10.1016/j.jmatprotec.2018.08.049
Travyanov, 2016, Prediction of solidification behaviour and microstructure of Ni based alloys obtained by casting and direct additive laser growth, Mater Sci Technol, 32, 746
Yang, 2021, Phase-field modeling of grain evolutions in additive manufacturing from nucleation, growth, to coarsening, NPJ Comput Mater, 7, 56, 10.1038/s41524-021-00524-6
King, 2014, Observation of keyhole-mode laser melting in laser powder-bed fusion additive manufacturing, J Mater Process Technol, 214, 2915, 10.1016/j.jmatprotec.2014.06.005
Zinovieva, 2020, Three-dimensional analysis of grain structure and texture of additively manufactured 316L austenitic stainless steel, Addit Manuf, 36
Goldak, 1984, A new finite element model for welding heat sources, Metall Mater Trans B, 15, 299, 10.1007/BF02667333
Li, 2018, Modeling temperature and residual stress fields in selective laser melting, Int J Mech Sci, 136, 24, 10.1016/j.ijmecsci.2017.12.001
Marion, 2014, A finite element model for the simulation of direct metal deposition, 834
Parry, 2016, Understanding the effect of laser scan strategy on residual stress in selective laser melting through thermo-mechanical simulation, Addit Manuf, 12, 1
Chiumenti, 2017, Numerical modelling and experimental validation in Selective Laser Melting, Addit Manuf, 18, 171
Karkhin, 2005, Effects of latent heat of fusion on thermal processes in laser welding of aluminium alloys, Sci Technol Weld Joining, 10, 597, 10.1179/174329305X19286
Ahmed, 2018, A comparative study on the modelling of EDM and hybrid electrical discharge and arc machining considering latent heat and temperature-dependent properties of Inconel 718, Int J Adv Manufac Technol, 94, 2729, 10.1007/s00170-017-1100-9
Rappaz, 1993, Probabilistic modelling of microstructure formation in solidification processes, Acta Metall Mater, 41, 345, 10.1016/0956-7151(93)90065-Z
Keller, 2016, Influence of spark plasma sintering conditions on the sintering and functional properties of an ultra-fine grained 316L stainless steel obtained from ball-milled powder, Mater Sci Eng, A, 665, 125, 10.1016/j.msea.2016.04.039
Tan, 2020, Microstructure modelling for metallic additive manufacturing: a review, Virtual Phys Prototyp, 15, 87, 10.1080/17452759.2019.1677345
Antonysamy, 2013, Effect of build geometry on the β-grain structure and texture in additive manufacture of Ti6Al4V by selective electron beam melting, Mater Charact, 84, 153, 10.1016/j.matchar.2013.07.012
Fu, 2013, Solidification behavior in three-phase region of AISI 304 stainless steel, Mater Lett, 93, 18, 10.1016/j.matlet.2012.11.035
Bermingham, 2008, Grain-refinement mechanisms in titanium alloys, J Mater Res, 23, 97, 10.1557/JMR.2008.0002
Wang, 2003, A model of solidification microstructures in nickel-based superalloys: predicting primary dendrite spacing selection, Acta Mater, 51, 2971, 10.1016/S1359-6454(03)00110-1
Kurz, 1986, Theory of microstructural development during rapid solidification, Acta Metall, 34, 823, 10.1016/0001-6160(86)90056-8
Lipton, 1987, Rapid dendrite growth in undercooled alloys, Acta Metall, 35, 957, 10.1016/0001-6160(87)90174-X
Liu, 2020, Integrated 2D cellular automata-phase field modeling of solidification and microstructure evolution during additive manufacturing of Ti6Al4V, Comput Mater Sci, 183, 10.1016/j.commatsci.2020.109889
Catchpole-Smith, 2017, Fractal scan strategies for selective laser melting of ‘unweldable’ nickel superalloys, Addit Manuf, 15, 113
El Shawish, 2017, Combining single-and poly-crystalline measurements for identification of crystal plasticity parameters: application to austenitic stainless steel, Crystals, 7, 181, 10.3390/cryst7060181
Ledbetter, 1984, Monocrystal-polycrystal elastic constants of a stainless steel, Phys Stat Sol (a), 85, 89, 10.1002/pssa.2210850111
Romanova, 2019, Microstructure-based simulations of quasistatic deformation using an explicit dynamic approach, Facta Universitatis, Series: Mechanical Engineering, 17
Trusov, 2021, Multilevel models in physical mesomechanics of metals and alloys: results and prospects, Phys Mesomech, 24, 391, 10.1134/S1029959921040056
Piglione, 2018, Printability and microstructure of the CoCrFeMnNi high-entropy alloy fabricated by laser powder bed fusion, Mater Lett, 224, 22, 10.1016/j.matlet.2018.04.052
Utyaganova, 2020, Controlling the porosity using exponential decay heat input regimes during electron beam wire-feed additive manufacturing of Al-Mg alloy, Int J Adv Manufac Technol, 108, 2823, 10.1007/s00170-020-05539-9
Thijs, 2014
Ishimoto, 2020, Crystallographic orientation control of 316L austenitic stainless steel via selective laser melting, ISIJ Int, 60, 1758, 10.2355/isijinternational.ISIJINT-2019-744
Bahshwan, 2022, In situ observation of anisotropic tribological contact evolution in 316L steel formed by selective laser melting, Wear, 490-491, 10.1016/j.wear.2021.204193
Sofinowski, 2021, Layer-wise engineering of grain orientation (LEGO) in laser powder bed fusion of stainless steel 316L, Addit Manuf, 38
Aota, 2021, Recrystallization kinetics, mechanisms, and topology in alloys processed by laser powder-bed fusion: AISI 316L stainless steel as example, Materialia (Oxf), 20
Marattukalam, 2020, The effect of laser scanning strategies on texture, mechanical properties, and site-specific grain orientation in selective laser melted 316L SS, Mater Des, 193, 10.1016/j.matdes.2020.108852
Nadammal, 2021, Critical role of scan strategies on the development of microstructure, texture, and residual stresses during laser powder bed fusion additive manufacturing, Addit Manuf, 38
Gokcekaya, 2021, Unique crystallographic texture formation in Inconel 718 by laser powder bed fusion and its effect on mechanical anisotropy, Acta Mater, 212, 10.1016/j.actamat.2021.116876
Hibino, 2021, Control of crystallographic texture and mechanical properties of Hastelloy-X via laser powder bed fusion, Crystals, 11, 1064, 10.3390/cryst11091064
Wang, 2017, Electron backscatter diffraction analysis of Inconel 718 parts fabricated by selective laser melting additive manufacturing, JOM, 69, 402, 10.1007/s11837-016-2198-1
Messler, 2004
Thijs, 2010, A study of the microstructural evolution during selective laser melting of Ti-6Al-4 V, Acta Mater, 58, 3303, 10.1016/j.actamat.2010.02.004
Akram, 2018, Understanding grain evolution in additive manufacturing through modeling, Addit Manuf, 21, 255
Serrano-Munoz, 2021, On the interplay of microstructure and residual stress in LPBF IN718, J Mater Sci, 56, 5845, 10.1007/s10853-020-05553-y
Dinda, 2012, Texture control during laser deposition of nickel-based superalloy, Scr Mater, 67, 503, 10.1016/j.scriptamat.2012.06.014
Liu, 2021, Microstructure and crystallographic texture of laser additive manufactured nickel-based superalloys with different scanning strategies, Crystals, 11, 591, 10.3390/cryst11060591
Voigt, 1928
Reuss, 1929, Berechnung der Fließrenze von Mischkristallen auf Grund der Plastizitätsbedingung für Einkristalle, Zeitschrift Für Angewandte Physik, 9, 49
Hill, 1952, The elastic behaviour of a crystalline aggregate, Proc Phys Soc, Section A, 65, 349, 10.1088/0370-1298/65/5/307
Bunge, 2015, Texture Analysis in Materials Science
Mainprice, 2011, Calculating anisotropic physical properties from texture data using the MTEX open-source package, Geological Soc, London, Special Publications, 360, 175, 10.1144/SP360.10
Ledbetter, 1975, Low-temperature elastic properties of four austenitic stainless steels, J Appl Phys, 46, 3855, 10.1063/1.322182
Gerlich, 1984, Pressure dependence of the elastic moduli of three austenitic stainless steels, J Appl Phys, 55, 880, 10.1063/1.333138
Shankar, 2001, Nitrogen redistribution, microstructure, and elastic constant evaluation using ultrasonics in aged 316LN stainless steels, Metall Mater Trans A, 32, 2959, 10.1007/s11661-001-0170-2
Lavery, 2017, Effects of hot isostatic pressing on the elastic modulus and tensile properties of 316L parts made by powder bed laser fusion, Mater Sci Eng: A, 693, 186, 10.1016/j.msea.2017.03.100
Mower, 2016, Mechanical behavior of additive manufactured, powder-bed laser-fused materials, Mater Sci Eng: A, 651, 198, 10.1016/j.msea.2015.10.068
Gale, 2017, Application of ultrasonic peening during DMLS production of 316L stainless steel and its effect on material behavior, Rapid Prototyp J, 23, 1185, 10.1108/RPJ-09-2016-0140
Shrestha, 2016, Effect of build orientation on the fatigue behavior of stainless steel 316L manufactured via a laser-powder bed fusion process, 605
Damon, 2019, Process porosity and mechanical performance of fused filament fabricated 316L stainless steel, Rapid Prototyp J, 25, 1319, 10.1108/RPJ-01-2019-0002
Diehl, 2019, Quantifying the contribution of crystallographic texture and grain morphology on the elastic and plastic anisotropy of bcc steel, Metals, 9, 1, 10.3390/met9121252
Zinoviev, 2022, Computational parametric study for plastic strain localization and fracture in a polycrystalline material with a porous ceramic coating, Mech Adv Mater Struct, 29, 2390, 10.1080/15376494.2020.1866124
Jöchen, 2010, Influence of the crystallographic and the morphological texture on the elastic properties of fcc crystal aggregates, Solid State Phenomena, 160, 83, 10.4028/www.scientific.net/SSP.160.83
Afkhami, 2021, Effects of manufacturing parameters and mechanical post-processing on stainless steel 316L processed by laser powder bed fusion, Mater Sci Eng: A, 802, 10.1016/j.msea.2020.140660
Otto, 2021, Effect of build orientation on the microstructure, mechanical and corrosion properties of a biodegradable high manganese steel processed by laser powder bed fusion, Metals, 11, 944, 10.3390/met11060944
Vasiliev, 2018
Lam, 2022, Scanning strategy induced cracking and anisotropic weakening in grain texture of additively manufactured superalloys, Addit Manuf, 52
