Multi-scale Multi-physics Phase-field coupled Thermo-mechanical approach for modeling of powder bed fusion process
暂无分享,去创建一个
[1] Sameehan S. Joshi,et al. Multiphysics multi-scale computational framework for linking process–structure–property relationships in metal additive manufacturing: a critical review , 2023, International Materials Reviews.
[2] R. Darabi,et al. Multi-scale modelling modeling for prediction of residual stress and distortion in Ti-6Al-4V Ti–6Al–4V semi-circular thin-walled parts additively manufactured by laser powder bed fusion (LPBF) , 2023, Thin-Walled Structures.
[3] Roy H. Stogner,et al. 2.0 - MOOSE: Enabling massively parallel multiphysics simulation , 2022, SoftwareX.
[4] Yangyiwei Yang,et al. A thermo-mechanical phase-field fracture model: Application to hot cracking simulations in additive manufacturing , 2022, Journal of the Mechanics and Physics of Solids.
[5] A. Murphy,et al. Multiscale simulation of rapid solidification of an aluminium–silicon alloy under additive manufacturing conditions , 2021, Additive Manufacturing.
[6] J. Hattel,et al. A review of multi-scale and multi-physics simulations of metal additive manufacturing processes with focus on modeling strategies , 2021, Additive Manufacturing.
[7] Yancheng Zhang,et al. Finite element modeling of powder bed fusion at part scale by a super-layer deposition method based on level set and mesh adaptation , 2021, Journal of Manufacturing Science and Engineering.
[8] R. Darabi,et al. Thermal study of a cladding layer of Inconel 625 in Directed Energy Deposition (DED) process using a phase-field model , 2021, The International Journal of Advanced Manufacturing Technology.
[9] R. Banerjee,et al. Coarsening of martensite with multiple generations of twins in laser additively manufactured Ti6Al4V , 2021, Acta Materialia.
[10] Yunzhi Wang,et al. Phase field simulation of the stress-induced α microstructure in Ti–6Al–4 V alloy and its CPFEM properties evaluation , 2021 .
[11] L. Aagesen,et al. A sublattice phase-field model for direct CALPHAD database coupling , 2021, Computational Materials Science.
[12] C. G. Klingaa,et al. Part-scale thermo-mechanical modelling of distortions in Laser Powder Bed Fusion – Analysis of the sequential flash heating method with experimental validation , 2020, Additive Manufacturing.
[13] Xin Lin,et al. Investigation of heating behavior of laser beam on powder stream in directed energy deposition , 2020 .
[14] A. Menzel,et al. A computational phase transformation model for selective laser melting processes , 2020, Computational Mechanics.
[15] Lyle Levine,et al. Measurements of Melt Pool Geometry and Cooling Rates of Individual Laser Traces on IN625 Bare Plates , 2020, Integrating Materials and Manufacturing Innovation.
[16] Y. Liu,et al. Integration of phase-field model and crystal plasticity for the prediction of process-structure-property relation of additively manufactured metallic materials , 2020 .
[17] Roy H. Stogner,et al. MOOSE: Enabling Massively Parallel Multiphysics Simulation , 2019, SoftwareX.
[18] Fuzhu Han,et al. A novel model of laser energy attenuation by powder particles for laser solid forming , 2019, International Journal of Machine Tools and Manufacture.
[19] Alaa Elwany,et al. Finite Interface Dissipation Phase Field Modeling of Ni-Nb Under Additive Manufacturing Conditions , 2019, Acta Materialia.
[20] L. Levine,et al. Evaluation of a thermomechanical model for prediction of residual stress during laser powder bed fusion of Ti-6Al-4V , 2019, Additive Manufacturing.
[21] Gregory J. Wagner,et al. Benchmark Study of Thermal Behavior, Surface Topography, and Dendritic Microstructure in Selective Laser Melting of Inconel 625 , 2019, Integrating Materials and Manufacturing Innovation.
[22] B. Xu,et al. 3D non-isothermal phase-field simulation of microstructure evolution during selective laser sintering , 2019, npj Computational Materials.
[23] M. Shephard,et al. Heat transfer model and finite element formulation for simulation of selective laser melting , 2018 .
[24] T. Taniguchi,et al. Phase-field modeling on laser melting of a metallic powder , 2018 .
[25] Yu Zou,et al. Thermophysical Phenomena in Metal Additive Manufacturing by Selective Laser Melting: Fundamentals, Modeling, Simulation and Experimentation , 2017, ArXiv.
[26] Brandon M. Lane,et al. Measurement of the Melt Pool Length During Single Scan Tracks in a Commercial Laser Powder Bed Fusion Process , 2017 .
[27] Fadi Aldakheel,et al. Micromorphic approach for gradient-extended thermo-elastic–plastic solids in the logarithmic strain space , 2017 .
[28] Li Ma,et al. Application of Finite Element, Phase-field, and CALPHAD-based Methods to Additive Manufacturing of Ni-based Superalloys. , 2017, Acta materialia.
[29] Wolfgang Ehlers,et al. A phase-field approach embedded in the Theory of Porous Media for the description of dynamic hydraulic fracturing , 2017 .
[30] Matthias Markl,et al. Multiscale Modeling of Powder Bed–Based Additive Manufacturing , 2016 .
[31] P. Michaleris. Modeling metal deposition in heat transfer analyses of additive manufacturing processes , 2014 .
[32] Jerome Solberg,et al. Implementation of a thermomechanical model for the simulation of selective laser melting , 2014 .
[33] R. Paul,et al. Effect of Thermal Deformation on Part Errors in Metal Powder Based Additive Manufacturing Processes , 2014 .
[34] Z. Moumni,et al. Theoretical and numerical modeling of the thermomechanical and metallurgical behavior of steel , 2011 .
[35] Tom Craeghs,et al. A pragmatic model for selective laser melting with evaporation , 2009 .
[36] Andrey V. Gusarov,et al. Model of Radiation and Heat Transfer in Laser-Powder Interaction Zone at Selective Laser Melting , 2009 .
[37] Bernd Markert,et al. A Biphasic Continuum Approach for Viscoelastic High-Porosity Foams: Comprehensive Theory, Numerics, and Application , 2008 .
[38] W. Bangerth,et al. deal.II—A general-purpose object-oriented finite element library , 2007, TOMS.
[39] Benjamin S. Kirk,et al. Library for Parallel Adaptive Mesh Refinement / Coarsening Simulations , 2006 .
[40] Leon L. Shaw,et al. Parametric studies of multi-material laser densification , 2006 .
[41] K. N. Seetharamu,et al. Fundamentals of the Finite Element Method for Heat and Fluid Flow , 2004 .
[42] Long-Qing Chen. Phase-Field Models for Microstructure Evolution , 2002 .
[43] A. Karma,et al. Phase-Field Simulation of Solidification , 2002 .
[44] P. Michaleris,et al. Thermo‐elasto‐plastic finite element analysis of quasi‐state processes in Eulerian reference frames , 2002 .
[45] J. C. Simo,et al. Associated coupled thermoplasticity at finite strains: formulation, numerical analysis and implementation , 1992 .
[46] Ivo Babuška,et al. A posteriori error analysis and adaptive processes in the finite element method: Part II—adaptive mesh refinement , 1983 .
[47] Clifford Henry Taubes,et al. ArbitraryN-vortex solutions to the first order Ginzburg-Landau equations , 1980 .
[48] Walter Noll,et al. The thermodynamics of elastic materials with heat conduction and viscosity , 1963 .
[49] Anthony B. Murphy,et al. Simulation of melt pool behaviour during additive manufacturing: Underlying physics and progress , 2020 .
[50] F. Liou,et al. Predictive Model for Thermal and Stress Field in Selective Laser Melting Process—Part I , 2019, Procedia Manufacturing.
[51] H. Fredriksson,et al. Solidification of a Modified Inconel 625 Alloy under Different Cooling Rates , 2004 .