A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
暂无分享,去创建一个
Wolfgang A. Wall | Kei W. Müller | Jonas Nitzler | N. E. Hodge | Christoph Meier | W. Wall | N. Hodge | C. Meier | K. W. Müller | J. Nitzler | Jonas Nitzler
[1] R. M. Ferencz,et al. Experimental comparison of residual stresses for a thermomechanical model for the simulation of selective laser melting , 2016 .
[2] Alessandro Reali,et al. Accurate Prediction of Melt Pool Shapes in Laser Powder Bed Fusion by the Non-Linear Temperature Equation Including Phase Changes , 2019, Integrating Materials and Manufacturing Innovation.
[3] J. K. Gillham,et al. Time–temperature–transformation (TTT) cure diagram: Modeling the cure behavior of thermosets , 1983 .
[4] J. J. Moré,et al. Levenberg--Marquardt algorithm: implementation and theory , 1977 .
[5] P. Åkerfeldt,et al. Temperature and Microstructure Evolution in Gas Tungsten Arc Welding Wire Feed Additive Manufacturing of Ti-6Al-4V , 2019, Materials.
[6] Pan Michaleris,et al. Thermomechanical Modeling of Additive Manufacturing Large Parts , 2014 .
[7] A. Wilson,et al. Differential scanning calorimetry study and computer modeling of β ⇒ α phase transformation in a Ti-6Al-4V alloy , 2001 .
[8] Santiago Badia,et al. A scalable parallel finite element framework for growing geometries. Application to metal additive manufacturing , 2018, International Journal for Numerical Methods in Engineering.
[9] Julia Mergheim,et al. Numerical microstructure prediction by a coupled finite element cellular automaton model for selective electron beam melting , 2019, Computational Materials Science.
[10] Ninggang Shen,et al. NUMERICAL THERMAL ANALYSIS IN ELECTRON BEAM ADDITIVE MANUFACTURING WITH PREHEATING EFFECTS , 2012 .
[11] Gabriel Bugeda Miguel Cervera,et al. Numerical prediction of temperature and density distributions in selective laser sintering processes , 1999 .
[12] K. Chou,et al. Microstructural Analysis and Nanoindentation Characterization of Ti-6Al-4V Parts From Electron Beam Additive Manufacturing , 2014 .
[13] I. Avramov,et al. Generalized kinetics of overall phase transition explicit to crystallization , 2014, Journal of Thermal Analysis and Calorimetry.
[14] John W. Cahn,et al. Transformation kinetics during continuous cooling , 1956 .
[15] Andreas Menzel,et al. Towards the simulation of Selective Laser Melting processes via phase transformation models , 2019, Comput. Math. Appl..
[16] R. Pederson,et al. A model for Ti–6Al–4V microstructure evolution for arbitrary temperature changes , 2012 .
[17] Z. Yang,et al. Effect of phase transformations on laser forming of Ti-6Al-4V alloy , 2005 .
[18] J. Newkirk,et al. The Jominy end quench for light-weight alloy development , 2000 .
[19] Z. Guo,et al. Resistivity study and computer modelling of the isothermal transformation kinetics of Ti–6Al–4V and Ti–6Al–2Sn–4Zr–2Mo–0.08Si alloys , 2001 .
[20] Rishi Ganeriwala,et al. Towards improved speed and accuracy of laser powder bed fusion simulations via multiscale spatial representations , 2021 .
[21] Michel Bellet,et al. Macroscopic thermal finite element modeling of additive metal manufacturing by selective laser melting process , 2018 .
[22] G. Welsch,et al. Elastic moduli and tensile and physical properties of heat-treated and quenched powder metallurgical Ti-6Al-4V alloy , 1991 .
[23] Wolfgang A. Wall,et al. A computational approach for thermo-elasto-plastic frictional contact based on a monolithic formulation using non-smooth nonlinear complementarity functions , 2018, Adv. Model. Simul. Eng. Sci..
[24] J. Andersson,et al. Simulation of additive manufacturing using coupled constitutive and microstructure models , 2016 .
[25] J. Planell,et al. Influence of tempering temperature and time on the α′-Ti-6Al-4V martensite , 1996 .
[26] Jerome Solberg,et al. Implementation of a thermomechanical model for the simulation of selective laser melting , 2014 .
[27] G. Lütjering. Influence of processing on microstructure and mechanical properties of (α+β) titanium alloys , 1998 .
[28] J. Rońda,et al. Consistent thermo-mechano-metallurgical model of welded steel with unified approach to derivation of phase evolution laws and transformation-induced plasticity , 2000 .
[29] S. Kelly. Thermal and Microstructure Modeling of Metal Deposition Processes with Application to Ti-6Al-4V , 2004 .
[30] Grain topology in Ti–6Al–4V welds—Monte Carlo simulation and experiments , 2004 .
[31] Zemin Wang,et al. Formation and control of martensite in Ti-6Al-4V alloy produced by selective laser melting , 2016 .
[32] Yunzhi Wang,et al. Quantitative phase field modeling of diffusion-controlled precipitate growth and dissolution in Ti–Al–V , 2004 .
[33] Zhengxiao Guo,et al. Microstructural evolution of a Ti–6Al–4V alloy during β-phase processing: experimental and simulative investigations , 2004 .
[34] N. S. Reddy,et al. Prediction of flow stress in Ti–6Al–4V alloy with an equiaxed α + β microstructure by artificial neural networks , 2008 .
[35] Wolfgang A. Wall,et al. A Generalized Probabilistic Learning Approach for Multi-Fidelity Uncertainty Propagation in Complex Physical Simulations , 2020, ArXiv.
[36] Wei Sha,et al. Application of artificial neural network for prediction of time-temperature-transformation diagrams in titanium alloys , 2000 .
[37] R. Pederson,et al. Use of high temperature X-ray diffractometry to study phase transitions and thermal expansion properties in Ti-6Al-4V , 2003 .
[38] A. Crespo,et al. Modelling of Heat Transfer and Phase Transformations in the Rapid Manufacturing of Titanium Components , 2011 .
[39] C. C. Murgau. Microstructure model for Ti-6Al-4V used in simulation of additive manufacturing , 2016 .
[40] G. Meyrick,et al. Phase Transformations in Metals and Alloys , 1973 .
[41] Frank W. Liou,et al. Probabilistic Simulation of Solidification Microstructure Evolution During Laser-based Metal Deposition , 2013 .
[42] A. Menzel,et al. A computational phase transformation model for selective laser melting processes , 2020, Computational Mechanics.
[43] M. Grujicic,et al. Computer simulations of the evolution of solidification microstructure in the LENS™ rapid fabrication process , 2001 .
[44] S. Semiatin,et al. Introduction to Fundamentals of Modeling for Metals Processing , 2009 .
[45] Matthias Markl,et al. A coupled Cellular Automaton–Lattice Boltzmann model for grain structure simulation during additive manufacturing , 2016 .
[46] Hugh Shercliff,et al. Microstructural modelling in metals processing , 2002 .
[47] H. J. Rack,et al. Phase transformations during cooling in α+β titanium alloys , 1998 .
[48] S. Kelly,et al. Microstructural evolution in laser-deposited multilayer Ti-6Al-4V builds: Part I. Microstructural characterization , 2004 .
[49] Sebastian D. Proell,et al. On phase change and latent heat models in metal additive manufacturing process simulation , 2019, Advanced Modeling and Simulation in Engineering Sciences.
[50] N. Hodge,et al. Towards improved speed and accuracy of laser powder bed fusion simulations via representation of multiple time scales , 2020 .
[51] T. DebRoy,et al. Three dimensional Monte Carlo simulation of grain growth during GTA welding of titanium , 2000 .
[52] Sarma B Gorti,et al. Phase Field Simulations of Autocatalytic Formation of Alpha Lamellar Colonies in Ti-6Al-4V , 2016, Metallurgical and Materials Transactions A.
[53] C. Chua,et al. Geometry dependence of microstructure and microhardness for selective electron beam-melted Ti–6Al–4V parts , 2016 .
[54] H. Bhadeshia,et al. Thermodynamic analysis of isothermal transformation diagrams , 1982 .
[55] O. Ojo,et al. Numerical modeling of microstructure evolution during laser additive manufacturing of a nickel-based superalloy , 2014 .
[56] Ernst Rank,et al. A hierarchical computational model for moving thermal loads and phase changes with applications to selective laser melting , 2017, Comput. Math. Appl..
[57] Sean F. Wu. 2002 ASME International Mechanical Engineering Congress and Exposition , 2003 .
[58] Boris Wilthan,et al. Thermophysical Properties of Solid and Liquid Ti-6Al-4V (TA6V) Alloy , 2006 .
[59] Yu Zou,et al. Thermophysical Phenomena in Metal Additive Manufacturing by Selective Laser Melting: Fundamentals, Modeling, Simulation and Experimentation , 2017, ArXiv.
[60] D. Dye,et al. Effect of texture on load partitioning in Ti-6Al-4V , 2012 .
[61] Xibing Gong,et al. Phase-Field Modeling of Microstructure Evolution in Electron Beam Additive Manufacturing , 2015 .
[62] I. Yadroitsev,et al. Heat transfer modelling and stability analysis of selective laser melting , 2007 .
[63] Wei Zhang,et al. Phase transformation dynamics during welding of Ti–6Al–4V , 2004 .
[64] D. Hoemberg. A numerical simulation of the Jominy end-quench test , 1996 .
[65] Jaimie Tiley,et al. Modeling the tensile properties in β-processed α/β Ti alloys , 2006 .
[66] Michael F. Zäh,et al. Investigations on residual stresses and deformations in selective laser melting , 2010, Prod. Eng..
[67] Miguel Cervera,et al. Modeling of Microstructure Evolution of Ti6Al4V for Additive Manufacturing , 2018, Metals.
[68] L. Schwartz. Handbook Of Heat Transfer , 2016 .
[69] Ma Qian,et al. Additive manufacturing of strong and ductile Ti–6Al–4V by selective laser melting via in situ martensite decomposition , 2015 .
[70] A. Nassar,et al. Predicting Microstructure from Thermal History during Additive Manufacturing for Ti-6Al-4V , 2016 .
[71] W. Rae,et al. Thermo-metallo-mechanical modelling of heat treatment induced residual stress in Ti–6Al–4V alloy , 2019, Materials Science and Technology.
[72] T. Childs,et al. Selective laser sintering (melting) of stainless and tool steel powders: Experiments and modelling , 2005 .
[73] W. Sha,et al. Finite element modeling of the morphology of β to α phase transformation in Ti-6Al-4V alloy , 2002 .
[74] D. P. Koistinen,et al. A general equation prescribing the extent of the austenite-martensite transformation in pure iron-carbon alloys and plain carbon steels , 1959 .
[75] M. Shephard,et al. Heat transfer model and finite element formulation for simulation of selective laser melting , 2018 .
[76] Paul Steinmann,et al. Macroscopic simulation and experimental measurement of melt pool characteristics in selective electron beam melting of Ti-6Al-4V , 2017 .
[77] G. Welsch,et al. Young's modulus and damping of Ti6Al4V alloy as a function of heat treatment and oxygen concentration , 1990 .