Numerical and experimental analysis of heat distribution in the laser powder bed fusion of Ti-6Al-4V
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Alaa Elwany | Brian E. Franco | Ibrahim Karaman | Raymundo Arroyave | Luke Johnson | Gustavo Tapia | Ji Ma | Kubra Karayagiz | G. Tapia | A. Elwany | L. Johnson | R. Arróyave | K. Karayagiz | B. Franco | Ji Ma | I. Karaman
[1] S. Khairallah,et al. Mesoscopic Simulation Model of Selective Laser Melting of Stainless Steel Powder , 2014 .
[2] D. Rosenthal,et al. The Theory of Moving Sources of Heat and Its Application to Metal Treatments , 1946, Journal of Fluids Engineering.
[3] Bo Cheng,et al. Melt Pool Evolution Study in Selective Laser Melting , 2015 .
[4] Jean-Pierre Kruth,et al. Direct Selective Laser Sintering of Hard Metal Powders: Experimental Study and Simulation , 2002 .
[5] Leon L. Shaw,et al. Thermal and stress modeling of multi-material laser processing , 2001 .
[6] E. Collings,et al. Materials Properties Handbook: Titanium Alloys , 1994 .
[7] Jinhui Liu,et al. Select laser melting of W–Ni–Fe powders: simulation and experimental study , 2010 .
[8] K. Leitz,et al. Multi-physical simulation of selective laser melting , 2017 .
[9] Bo Cheng,et al. On Process Temperature in Powder-Bed Electron Beam Additive Manufacturing: Model Development and Validation , 2014 .
[10] Xiaoze Du,et al. Finite element analysis of thermal behavior of metal powder during selective laser melting , 2016 .
[11] Jie Yin,et al. Simulation of temperature distribution in single metallic powder layer for laser micro-sintering , 2012 .
[12] Yusheng Shi,et al. Effects of processing parameters on the temperature field of selective laser melting metal powder , 2009 .
[13] J. Boyer,et al. Comparisons of Numerical Modelling of the Selective Laser Melting , 2012 .
[14] D. Mynors,et al. A three-dimensional finite element analysis of the temperature field during laser melting of metal powders in additive layer manufacturing , 2009 .
[15] Carolin Körner,et al. Defect generation and propagation mechanism during additive manufacturing by selective beam melting , 2014 .
[16] Matthias Markl,et al. Multiscale Modeling of Powder Bed–Based Additive Manufacturing , 2016 .
[17] D. Gu,et al. Thermal behavior and densification mechanism during selective laser melting of copper matrix composites: Simulation and experiments , 2014 .
[18] K. Salonitis,et al. Simulation of metallic powder bed additive manufacturing processes with the finite element method: A critical review , 2017 .
[19] Leon L. Shaw,et al. Distortion minimization of laser‐processed components through control of laser scanning patterns , 2002 .
[20] L. Ladani,et al. Effective liquid conductivity for improved simulation of thermal transport in laser beam melting powder bed technology , 2017 .
[21] S. Ahzi,et al. Three-dimensional transient finite element analysis of the selective laser sintering process , 2009 .
[22] Amitava De,et al. Improving reliability of heat and fluid flow calculation during conduction mode laser spot welding by multivariable optimisation , 2006 .
[23] Bo Cheng,et al. MELT POOL GEOMETRY SIMULATIONS FOR POWDER-BASED ELECTRON BEAM ADDITIVE MANUFACTURING , 2013 .
[24] P. Michaleris,et al. Thermomechanical model development and in situ experimental validation of the Laser Powder-Bed Fusion process , 2017 .
[25] Thomas W. Eagar,et al. Temperature fields produced by traveling distributed heat sources , 1983 .
[26] K. Mills. Recommended Values of Thermophysical Properties for Selected Commercial Alloys , 2001 .
[27] Xin Lin,et al. Numerical simulation and experimental calibration of additive manufacturing by blown powder technology. Part I: thermal analysis , 2017 .
[28] J. Filliben. USING DESIGN OF EXPERIMENTS IN FINITE ELEMENT MODELING TO IDENTIFY CRITICAL VARIABLES FOR LASER POWDER BED FUSION , 2015 .
[29] N Peterson,et al. Direct measurements of temperature-dependent laser absorptivity of metal powders. , 2015, Applied optics.
[30] H. Maier,et al. On the mechanical behaviour of titanium alloy TiAl6V4 manufactured by selective laser melting: Fatigue resistance and crack growth performance , 2013 .
[31] Richard M. Everson,et al. Finite element simulation of the temperature and stress fields in single layers built without-support in selective laser melting , 2013 .
[32] Carolin Körner. Molten pool behaviour and its physical mechanism during selective laser melting of TiC / AlSi 10 Mg nanocomposites : simulation and experiments , 2015 .
[33] D. Gu,et al. Thermal behavior during selective laser melting of commercially pure titanium powder: Numerical simulation and experimental study , 2014 .
[34] Chee Kai Chua,et al. Thermal Influence of CNT on the Polyamide 12 Nanocomposite for Selective Laser Sintering , 2015, Molecules.
[35] Ninggang Shen,et al. THERMAL MODELING OF ELECTRON BEAM ADDITIVE MANUFACTURING PROCESS - POWDER SINTERING EFFECTS , 2012 .
[36] Jian Xun Zhang,et al. Numerical Investigation of Residual Stress in Thick Titanium Alloy Plate Joined with Electron Beam Welding , 2010 .
[37] Jafar Razmi,et al. Temperature distribution and melt geometry in laser and electron-beam melting processes – A comparison among common materials , 2015 .
[38] Minking K. Chyu,et al. Finite element modeling and validation of thermomechanical behavior of Ti-6Al-4V in directed energy deposition additive manufacturing , 2016 .
[39] Guanqun Yu,et al. Porosity evolution and its thermodynamic mechanism of randomly packed powder-bed during selective laser melting of Inconel 718 alloy , 2017 .
[40] B. Stucker,et al. A review of thermal analysis methods in Laser Sintering and Selective Laser Melting , 2012 .
[41] Sun Jinghua. Simulation and testing of the transient temperature field of infrared laser sintering , 2011 .
[42] Erdogan Madenci,et al. The finite element method and applications in engineering using ANSYS®, second edition , 2015 .
[43] K. Mumtaz,et al. Melting of thin wall parts using pulse shaping , 2009 .
[44] Franziska Frankfurter,et al. Smithells Metals Reference Book , 2016 .
[45] Chee Kai Chua,et al. An experimental and simulation study on build thickness dependent microstructure for electron beam melted Ti–6Al–4V , 2015 .
[46] Moataz M. Attallah,et al. Mesoscale modelling of selective laser melting: Thermal fluid dynamics and microstructural evolution , 2017 .
[47] M. Bober,et al. High temperature vapor pressures of stainless steel type 1.4970 and of some other pure metals from laser evaporation , 1984 .
[48] I. Yadroitsev,et al. Heat transfer modelling and stability analysis of selective laser melting , 2007 .
[49] Joel W. Barlow,et al. The Prediction of the Emissivity and Thermal Conductivity of Powder Beds , 2004 .
[50] J. Kruth,et al. Modelling of radiation transfer in metallic powders at laser treatment , 2005 .
[51] Andrey V. Gusarov,et al. Modeling the interaction of laser radiation with powder bed at selective laser melting , 2010 .
[53] M. Walczak,et al. Multiphysics simulation of laser–material interaction during laser powder depositon , 2012 .
[54] D. Gu,et al. Parametric analysis of thermal behavior during selective laser melting additive manufacturing of aluminum alloy powder , 2014 .
[55] Q. Pei,et al. Modeling the Microstructure Evolution During Additive Manufacturing of Ti6Al4V: A Comparison Between Electron Beam Melting and Selective Laser Melting , 2016 .
[56] Andrey V. Gusarov,et al. Mechanisms of selective laser sintering and heat transfer in Ti powder , 2003 .
[57] A. Foroozmehr,et al. Finite Element Simulation of Selective Laser Melting process considering Optical Penetration Depth of laser in powder bed , 2016 .
[58] L. Ladani,et al. Laser Additive Melting and Solidification of Inconel 718: Finite Element Simulation and Experiment , 2016 .
[59] D. Gu,et al. Molten pool behaviour and its physical mechanism during selective laser melting of TiC/AlSi10Mg nanocomposites: simulation and experiments , 2015 .
[60] Wenyi Yan,et al. Experimental investigation and 3D finite element prediction of the heat affected zone during laser assisted machining of Ti6Al4V alloy , 2010 .
[61] Erdogan Madenci,et al. The Finite Element Method and Applications in Engineering Using ANSYS , 2007 .
[62] Vinod Yadava,et al. Finite element analysis of temperature distribution in single metallic powder layer during metal laser sintering , 2007 .
[63] C. H. Fu,et al. 3-Dimensional finite element modeling of selective laser melting Ti-6AL-4V alloy , 2014 .
[64] Ryan R. Dehoff,et al. Numerical modeling of heat-transfer and the influence of process parameters on tailoring the grain morphology of IN718 in electron beam additive manufacturing ☆ , 2016 .
[65] M. Zäh,et al. Determination of Process Parameters for Electron Beam Sintering ( EBS ) , 2008 .
[66] Jun Liu,et al. Spatial Control of Functional Response in 4D-Printed Active Metallic Structures , 2017, Scientific Reports.
[67] Moataz M. Attallah,et al. On the role of melt flow into the surface structure and porosity development during selective laser melting , 2015 .
[68] D. Gu,et al. Finite element simulation and experimental investigation of residual stresses in selective laser melted Ti–Ni shape memory alloy , 2016 .
[69] K. Osakada,et al. Finite element analysis of single layer forming on metallic powder bed in rapid prototyping by selective laser processing , 2002 .
[70] Koulis Pericleous,et al. Finite volume methods applied to the computational modelling of welding phenomena , 2002 .
[71] Andrey V. Gusarov,et al. Single track formation in selective laser melting of metal powders , 2010 .
[72] Leila Ladani,et al. Thermal Modeling of Laser Based Additive Manufacturing Processes within Common Materials , 2015 .
[73] Konrad Wegener,et al. Melt pool simulation for the evaluation of process parameters in selective laser melting , 2017 .
[74] Richard Leach,et al. Review of in-situ process monitoring and in-situ metrology for metal additive manufacturing , 2016 .
[75] Wilhelm Meiners,et al. Modeling the selective laser melting of polylactide composite materials , 2011 .
[76] Antonio Domenico Ludovico,et al. 3D Finite Element Analysis in the selective laser melting process , 2011 .
[77] D. Gu,et al. Tailoring surface quality through mass and momentum transfer modeling using a volume of fluid method in selective laser melting of TiC/AlSi10Mg powder , 2015 .
[78] Reinhart Poprawe,et al. Densification behavior, microstructure evolution, and wear performance of selective laser melting processed commercially pure titanium , 2012 .
[79] T. Özel,et al. Sensitivity analysis of material and process parameters in finite element modeling of selective laser melting of Inconel 625 , 2016 .
[80] J. Kruth,et al. A study of the microstructural evolution during selective laser melting of Ti–6Al–4V , 2010 .
[81] Q. Pei,et al. Erratum to: Modeling the Microstructure Evolution During Additive Manufacturing of Ti6Al4V: A Comparison Between Electron Beam Melting and Selective Laser Melting , 2016 .
[82] Jesper Henri Hattel,et al. Numerical Model based Reliability Estimation of Selective Laser Melting Process , 2014 .
[83] L. Froyen,et al. Selective laser melting of iron-based powder , 2004 .
[84] Rémy Glardon,et al. 3D FE simulation for temperature evolution in the selective laser sintering process , 2004 .
[85] K. Senthilkumaran,et al. Numerical and experimental investigations on laser melting of stainless steel 316L metal powders , 2014 .
[86] Radovan Kovacevic,et al. Numerical Modeling of Heat Distribution in the Electron Beam Melting® of Ti-6Al-4V , 2013 .
[87] Alderson Neira Arce,et al. Thermal Modeling and Simulation of Electron Beam Melting for Rapid Prototyping on Ti6Al4V Alloys , 2012 .
[88] Finite Element Simulation of Thermal Distribution in Direct Metal Laser Multi-track Sintering , 2005 .
[89] S. Katayama,et al. Elucidation of melt flows and spatter formation mechanisms during high power laser welding of pure titanium , 2015 .
[90] F. Niebling,et al. Analyzing the DMLS Process by a Macroscopic FE-Model , 2002 .
[91] Chee Kai Chua,et al. Numerical investigation and an effective modelling on the Selective Laser Melting (SLM) process with aluminium alloy 6061 , 2015 .
[92] Ninggang Shen,et al. NUMERICAL THERMAL ANALYSIS IN ELECTRON BEAM ADDITIVE MANUFACTURING WITH PREHEATING EFFECTS , 2012 .
[93] G. Tapia,et al. A Review on Process Monitoring and Control in Metal-Based Additive Manufacturing , 2014 .
[94] Ala Hijazi,et al. A calibrated dual-wavelength infrared thermometry approach with non-greybody compensation for machining temperature measurements , 2011 .
[95] T. Zohdi,et al. A coupled discrete element-finite difference model of selective laser sintering , 2016 .
[96] A. Rubenchik,et al. Calculation of laser absorption by metal powders in additive manufacturing. , 2015, Applied optics.
[97] Tom Craeghs,et al. A pragmatic model for selective laser melting with evaporation , 2009 .
[98] Z. Yang,et al. Effect of phase transformations on laser forming of Ti-6Al-4V alloy , 2005 .
[99] J. Goldak,et al. A new finite element model for welding heat sources , 1984 .
[100] Christian Coddet,et al. Investigation of the laser–powder–atmosphere interaction zone during the selective laser melting process , 2015 .