State of the Art in Directed Energy Deposition: From Additive Manufacturing to Materials Design
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A. Dass | A. Moridi | A. Moridi | Adrita Dass
[1] Yuebin Guo,et al. Residual Stress in Metal Additive Manufacturing , 2018 .
[2] Lin Li,et al. An experimental and theoretical investigation of combined gas- and water-atomized powder deposition with a diode laser , 2006 .
[3] Philip Nash,et al. Finite-element analysis and experimental validation of thermal residual stress and distortion in electron beam additive manufactured Ti-6Al-4V build plates , 2016 .
[4] A. Bandyopadhyay,et al. Calcium phosphate-titanium composites for articulating surfaces of load-bearing implants. , 2016, Journal of the mechanical behavior of biomedical materials.
[5] Bi Zhang,et al. Nanosized microstructure of Al2O3–ZrO2 (Y2O3) eutectics fabricated by laser engineered net shaping , 2015 .
[6] R. P. Martukanitz,et al. Partitioning of laser energy during directed energy deposition , 2017 .
[7] Shuai Shao,et al. Understanding the Microstructure Formation of Ti-6Al-4V During Direct Laser Deposition via In-Situ Thermal Monitoring , 2016, JOM.
[8] Jyoti Mazumder,et al. Design for Metallic Additive Manufacturing Machine with Capability for “Certify as You Build”☆ , 2015 .
[9] N. Shamsaei,et al. An overview of Direct Laser Deposition for additive manufacturing; Part I: Transport phenomena, modeling and diagnostics , 2015 .
[10] Todd Palmer,et al. Anisotropic tensile behavior of Ti-6Al-4V components fabricated with directed energy deposition additive manufacturing , 2015 .
[11] R. Poprawe,et al. Laser additive manufacturing of metallic components: materials, processes and mechanisms , 2012 .
[12] A. Bandyopadhyay,et al. Influence of simultaneous addition of carbon nanotubes and calcium phosphate on wear resistance of 3D-printed Ti6Al4V , 2018, Journal of Materials Research.
[13] A. Rubenchik,et al. Laser powder-bed fusion additive manufacturing: Physics of complex melt flow and formation mechanisms of pores, spatter, and denudation zones , 2015, 1512.02593.
[14] Kenneth C. Mills,et al. Marangoni effects in welding , 1998, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[15] Xin Lin,et al. Mechanics and energy analysis on molten pool spreading during laser solid forming , 2010 .
[16] M. Groeber,et al. Characterization of fatigue crack growth behavior in LENS fabricated Ti-6Al-4V using high-energy synchrotron x-ray microtomography , 2016 .
[17] Mark F. Horstemeyer,et al. Insight into the mechanisms of columnar to equiaxed grain transition during metallic additive manufacturing , 2019, Additive Manufacturing.
[18] N. Shamsaei,et al. Mechanical Properties and Microstructural Features of Direct Laser-Deposited Ti-6Al-4V , 2015 .
[19] Amit Bandyopadhyay,et al. In situ synthesized TiB-TiN reinforced Ti6Al4V alloy composite coatings: microstructure, tribological and in-vitro biocompatibility. , 2014, Journal of the mechanical behavior of biomedical materials.
[20] Aitzol Lamikiz,et al. Latest Developments in Industrial Hybrid Machine Tools that Combine Additive and Subtractive Operations , 2018, Materials.
[21] Hui Wang,et al. Ultrasonic vibration-assisted laser engineering net shaping of ZrO2-Al2O3 bulk parts: Effects on crack suppression, microstructure, and mechanical properties , 2018 .
[22] Medrano Téllez,et al. Fibre laser metal deposition with wire: parameters study and temperature control , 2010 .
[23] Adiabatic shear instability is not necessary for adhesion in cold spray , 2018, Acta Materialia.
[24] Optimization of Process Parameters in Laser Engineered Net Shaping (LENS) Deposition of Multi-Materials , 2015 .
[25] Kush Aggarwal,et al. Analysis of Laser Cladding Bead Morphology for Developing Additive Manufacturing Travel Paths , 2014 .
[26] Xiaoyan Zeng,et al. Analysis of crack behavior for Ni-based WC composite coatings by laser cladding and crack-free realization , 2008 .
[27] F. Liou,et al. Numerical Simulation and Prediction of Dilution During Laser Deposition , 2006 .
[28] Yanning Zhang,et al. Additive manufacturing of Ti-Si-N ceramic coatings on titanium , 2015 .
[29] V. Ocelík,et al. Analysis of coaxial laser cladding processing conditions , 2005 .
[30] S. Pannala,et al. The metallurgy and processing science of metal additive manufacturing , 2016 .
[31] A. Beese,et al. Residual stress mapping in Inconel 625 fabricated through additive manufacturing: Method for neutron diffraction measurements to validate thermomechanical model predictions , 2017 .
[32] Dongjiang Wu,et al. Power prediction for laser engineered net shaping of Al2O3 ceramic parts , 2014 .
[33] A. Khajepour,et al. Processing window development for laser cladding of zirconium on zirconium alloy , 2016 .
[34] Bi Zhang,et al. Process Optimization for Suppressing Cracks in Laser Engineered Net Shaping of Al2O3 Ceramics , 2017 .
[35] Leroy Gardner,et al. Metal 3D printing in construction: A review of methods, research, applications, opportunities and challenges , 2019, Engineering Structures.
[36] Martin Reisacher,et al. Systematic evaluation of process parameter maps for laser cladding and directed energy deposition , 2018 .
[37] Mohammad Ansari,et al. An empirical-statistical model for coaxial laser cladding of NiCrAlY powder on Inconel 738 superalloy , 2016 .
[38] R. C. Crafer,et al. Thermal modelling of laser welding and related processes: a literature review , 2005 .
[39] Federico M. Sciammarella,et al. Processing Parameter DOE for 316L Using Directed Energy Deposition , 2018, Journal of Manufacturing and Materials Processing.
[40] Johan Meijer,et al. FEM modeling and experimental verification for dilution control in laser cladding , 2011 .
[41] R. Ritchie,et al. Influence of microstructure on high-cycle fatigue of Ti-6Al-4V: Bimodal vs. lamellar structures , 2002 .
[42] N. Shamsaei,et al. An overview of Direct Laser Deposition for additive manufacturing; Part II: Mechanical behavior, process parameter optimization and control , 2015 .
[43] A. Beese,et al. Review of Mechanical Properties of Ti-6Al-4V Made by Laser-Based Additive Manufacturing Using Powder Feedstock , 2016 .
[44] Ian Gibson,et al. Additive manufacturing technologies : 3D printing, rapid prototyping, and direct digital manufacturing , 2015 .
[45] C. R. Heiple,et al. Surface-active element effects on the shape of GTA, laser, and electron-beam welds , 1983 .
[46] Zhichao Liu,et al. Ultrasonic Vibration-Assisted Laser Engineered Net Shaping of Inconel 718 Parts: A Feasibility Study , 2017 .
[47] M. Guagliano,et al. Cold spray coating: review of material systems and future perspectives , 2014 .
[48] Jean-Pierre Kruth,et al. Application of dimensional analysis to selective laser melting , 2008 .
[49] Brent Stucker,et al. Microstructure and Mechanical Behavior of 17-4 Precipitation Hardenable Steel Processed by Selective Laser Melting , 2014, Journal of Materials Engineering and Performance.
[50] A. Nassar,et al. Intra-layer closed-loop control of build plan during directed energy additive manufacturing of Ti–6Al–4V , 2015 .
[51] K. Kalita,et al. Stress Analysis of Dissimilar Metal Weld between Carbon Steel and Stainless Steel formed by Transition Grading Technique , 2015 .
[52] Andrew J. Pinkerton,et al. Microcomputed tomography analysis of intralayer porosity generation in laser direct metal deposition and its causes , 2011 .
[53] Lin Li. The advances and characteristics of high-power diode laser materials processing , 2000 .
[54] Huang Weidong,et al. Research on molten pool temperature in the process of laser rapid forming , 2008 .
[55] Radovan Kovacevic,et al. Laser cladding of Inconel 690 on Inconel 600 superalloy for corrosion protection in nuclear applications , 2013 .
[56] M. Preuss,et al. A verified model of laser direct metal deposition using an analytical enthalpy balance method , 2007 .
[57] Fujun Wang,et al. Online study of cracks during laser cladding process based on acoustic emission technique and finite element analysis , 2008 .
[58] Radovan Kovacevic,et al. Numerical Simulation and Experimental Study of Powder Flow Distribution in High Power Direct Diode Laser Cladding Process , 2015 .
[59] G. Reddy,et al. Processing and Characterization of NiCr-YSZ Compositionally Graded Coatings on Superalloy using Laser Engineered Net Shaping (LENS) , 2018 .
[60] P. Korinko,et al. LASER ENGINEERED NET SHAPING FOR REPAIR AND HYDROGEN COMPATIBILITY , 2011 .
[61] Eric J. Faierson,et al. In-situ acoustic signature monitoring in additive manufacturing processes , 2018 .
[62] Yulin Hao,et al. Additive Manufacturing of Titanium Alloys by Electron Beam Melting: A Review , 2018 .
[63] Gerry Byrne,et al. Laser cladding of aerospace materials , 2002 .
[64] M. L. Griffith,et al. Understanding thermal behavior in the LENS process , 1999 .
[65] Vamsi Krishna Balla,et al. Fabrication of Biomedical Implants using Laser Engineered Net Shaping (LENS™) , 2013 .
[66] C. Paul,et al. Direct Energy Deposition - Laser Additive Manufacturing of Titanium-Molybdenum alloy: Parametric studies, microstructure and mechanical properties , 2019, Journal of Alloys and Compounds.
[67] D. Guo,et al. Al2O3-YAG eutectic ceramic prepared by laser additive manufacturing with water-cooled substrate , 2019, Ceramics International.
[68] Robert G. Landers,et al. A Quadratic-Optimal Repetitive Process Controller for Laser Metal Deposition , 2018, 2018 Annual American Control Conference (ACC).
[69] R. Dehoff,et al. Microstructure evolution during laser direct energy deposition of a novel Fe-Cr-Ni-W-B hardfacing coating , 2019, Surface and Coatings Technology.
[70] T. Mukherjee,et al. Printability of alloys for additive manufacturing , 2016, Scientific Reports.
[71] Baofeng Yang,et al. Application of Biomaterials in Cardiac Repair and Regeneration , 2016 .
[72] A. Bandyopadhyay,et al. Tribological, electrochemical and in vitro biocompatibility properties of SiC reinforced composite coatings , 2016 .
[73] R. Banerjee,et al. Room and elevated temperature sliding wear behavior and mechanisms of additively manufactured novel precipitation strengthened metallic composites , 2019, Wear.
[74] Vamsi Krishna Balla,et al. Compositionally Graded Aluminum Oxide Coatings on Stainless Steel Using Laser Processing , 2007 .
[75] F. Liou,et al. Modeling of laser cladding with powder injection , 2004 .
[76] LARGE SCALE PHASE FIELD SIMULATIONS OF MICROSTRUCTURE EVOLUTION DURING THERMAL CYCLING OF TI-6AL-4V , 2015 .
[77] Yanning Zhang,et al. Direct fabrication of compositionally graded Ti-Al2O3 multi-material structures using Laser Engineered Net Shaping , 2018 .
[78] Amitava De,et al. Mitigation of thermal distortion during additive manufacturing , 2017 .
[79] J. S. Zuback,et al. Additive manufacturing of metallic components – Process, structure and properties , 2018 .
[80] R. Rajendran,et al. Microstructural and mechanical characterization of Ti6Al4V refurbished parts obtained by laser metal deposition , 2015 .
[81] L. Gardner,et al. Metal 3 D printing in construction : a review of methods , research , applications , opportunities and challenges , 2018 .
[82] E. Reutzel,et al. Thermo-mechanical model development and validation of directed energy deposition additive manufacturing of Ti–6Al–4V , 2015 .
[83] A. Bandyopadhyay,et al. Silica coated titanium using Laser Engineered Net Shaping for enhanced wear resistance , 2018, Additive Manufacturing.
[84] A. Beese,et al. Effect of chemistry on martensitic phase transformation kinetics and resulting properties of additively manufactured stainless steel , 2017 .
[85] R. Ashiri,et al. Cold Metal Transfer (CMT) GMAW of Zinc Coated Steel , 2016 .
[86] P. Kobryn,et al. Mechanical Properties of Laser-Deposited Ti-6Al-4V , 2001 .
[87] S. Babu,et al. Effect of microstructure and defects on fatigue behaviour of directed energy deposited Ti–6Al–4V , 2015 .
[88] T. Lienert,et al. Corrosion Characteristics of Laser-Engineered Net Shaping Additively-Manufactured 316L Stainless Steel , 2018, JOM.
[89] S. Suresh Babu,et al. Rationalization of Microstructure Heterogeneity in INCONEL 718 Builds Made by the Direct Laser Additive Manufacturing Process , 2014, Metallurgical and Materials Transactions A.
[90] John N. DuPont,et al. Fabrication of functionally graded TiC/Ti composites by Laser Engineered Net Shaping , 2003 .
[91] Amitava De,et al. Dimensionless numbers in additive manufacturing , 2017 .
[92] J. M. Amado,et al. Comparative Study of Co-based Alloys in Repairing Low Cr-Mo steel Components by Laser Cladding , 2012 .
[93] Liang Wang,et al. Thermal Modeling and Experimental Validation in the LENS™ Process , 2007 .
[94] Fritz B. Prinz,et al. Mechanical and thermal expansion behavior of laser deposited metal matrix composites of Invar and TiC , 2000 .
[95] Amir Khajepour,et al. Prediction of melt pool depth and dilution in laser powder deposition , 2006 .
[96] Bi Zhang,et al. Additive manufacturing of ceramic structures by laser engineered net shaping , 2015 .
[97] A. Bandyopadhyay,et al. Direct laser processing of bulk lead zirconate titanate ceramics , 2010 .
[98] Wei Zhang,et al. Building digital twins of 3D printing machines , 2017 .
[99] Tao Sun,et al. In-situ high-speed X-ray imaging of piezo-driven directed energy deposition additive manufacturing , 2019, Scientific Reports.
[100] Guang-yi Ma,et al. Effect of ultrasonic power on forming quality of nano-sized Al2O3-ZrO2 eutectic ceramic via laser engineered net shaping (LENS) , 2018 .
[101] Dierk Raabe,et al. Combinatorial Alloy Design by Laser Additive Manufacturing , 2017 .
[102] Tao Li,et al. Feasibility Exploration of Superalloys for AISI 4140 Steel Repairing using Laser Engineered Net Shaping , 2017 .
[103] W. Harun,et al. A review of powder additive manufacturing processes for metallic biomaterials , 2018 .
[104] Suiyuan Chen,et al. Effect of laser energy density on defects behavior of direct laser depositing 24CrNiMo alloy steel , 2019, Optics & Laser Technology.
[105] H. Fraser,et al. Microstructural Evaluation of LENS™ Deposited Nb-Ti-Si-Cr Alloys , 2002 .
[106] C. Kenel,et al. In situ investigation of phase transformations in Ti-6Al-4V under additive manufacturing conditions combining laser melting and high-speed micro-X-ray diffraction , 2017, Scientific Reports.
[107] Ashley A. Vu,et al. Compositionally graded doped hydroxyapatite coating on titanium using laser and plasma spray deposition for bone implants. , 2019, Acta biomaterialia.
[108] E. Akinlabi,et al. Processing Parameters Optimization for Material Deposition Efficiency in Laser Metal Deposited Titanium Alloy , 2016 .
[109] J. Dupont,et al. Fabrication of carbide-particle-reinforced titanium aluminide-matrix composites by laser-engineered net shaping , 2004 .
[110] Todd Palmer,et al. Heat transfer and fluid flow in additive manufacturing , 2013 .
[111] A. De,et al. Spatial variation of melt pool geometry, peak temperature and solidification parameters during laser assisted additive manufacturing process , 2015 .
[112] Y. Chew,et al. Numerical and experimental study of laser aided additive manufacturing for melt-pool profile and grain orientation analysis , 2018 .
[113] Amit Bandyopadhyay,et al. Laser processing of bioactive tricalcium phosphate coating on titanium for load-bearing implants. , 2008, Acta biomaterialia.
[114] W. Cong,et al. Additive manufacturing of alumina using laser engineered net shaping: Effects of deposition variables , 2017 .
[115] Guijun Bi,et al. Restoration of Nickel-Base Turbine Blade Knife-Edges with Controlled Laser Aided Additive Manufacturing , 2011 .
[116] Ruifeng Li,et al. Dilution effect on the formation of amorphous phase in the laser cladded Ni–Fe–B–Si–Nb coatings after laser remelting process , 2012 .
[117] Jun Zhang,et al. Adaptive slicing for a multi-axis Laser Aided Manufacturing Process , 2004 .
[118] Y. Shin,et al. Predictive modeling capabilities from incident powder and laser to mechanical properties for laser directed energy deposition , 2018 .
[119] Stan A David,et al. Physical processes in fusion welding , 1995 .
[120] Karthik Ramani,et al. Integrated Sustainable Life Cycle Design: A Review , 2010 .
[121] M. B. Khamesee,et al. A new physics-based model for laser directed energy deposition (powder-fed additive manufacturing): From single-track to multi-track and multi-layer , 2019, Optics & Laser Technology.
[122] Amit Bandyopadhyay,et al. Additive manufacturing of compositionally gradient metal-ceramic structures: Stainless steel to vanadium carbide , 2018 .
[123] E. Toyserkani,et al. Laser directed energy deposition of water-atomized iron powder: Process optimization and microstructure of single-tracks , 2019, Optics & Laser Technology.
[124] Andrew A. Shapiro,et al. Developing Gradient Metal Alloys through Radial Deposition Additive Manufacturing , 2014, Scientific Reports.
[125] Aitzol Lamikiz,et al. Improvement of strategies and parameters for multi-axis laser cladding operations , 2014 .
[126] Baolong Zheng,et al. The Influence of Ni-Coated TiC on Laser-Deposited IN625 Metal Matrix Composites , 2010 .
[127] Bengt Lennartson,et al. Height control of laser metal-wire deposition based on iterative learning control and 3D scanning , 2012 .
[128] D. Lados,et al. Fatigue crack growth behavior and microstructural mechanisms in Ti-6Al-4V manufactured by laser engineered net shaping , 2016 .
[129] Ashish Kumar Nath,et al. Laser rapid manufacturing of Colmonoy-6 components , 2006 .
[130] Mohsen Seifi,et al. Metal Additive Manufacturing: A Review of Mechanical Properties , 2016 .
[131] Diana A. Lados,et al. Microstructure Evolution, Tensile Properties, and Fatigue Damage Mechanisms in Ti-6Al-4V Alloys Fabricated by Two Additive Manufacturing Techniques , 2015 .
[132] A. Haelsig,et al. Arc-based additive manufacturing of steel components—comparison of wire- and powder-based variants , 2018, Welding in the World.
[133] S. L. Semiatin,et al. The effect of laser power and traverse speed on microstructure, porosity, and build height in laser-deposited Ti-6Al-4V , 2000 .
[134] H. Fraser,et al. Thermal process maps for predicting solidification microstructure in laser fabrication of thin-wall structures , 2006 .
[135] Radovan Kovacevic,et al. Evaluation of titanium alloy fabricated using electron beam melting system for dental applications , 2011 .
[136] Radovan Kovacevic,et al. Sensing, modeling and control for laser-based additive manufacturing , 2003 .
[137] Eric J. Faierson,et al. A framework to link localized cooling and properties of directed energy deposition (DED)-processed Ti-6Al-4V , 2017 .
[138] Iain Todd,et al. Normalised model-based processing diagrams for additive layer manufacture of engineering alloys , 2016 .
[139] Francis H. Froes,et al. Producing titanium aerospace components from powder using laser forming , 2000 .
[140] Shian Gao,et al. Revealing internal flow behaviour in arc welding and additive manufacturing of metals , 2018, Nature Communications.
[141] R. Banerjee,et al. Additive manufacturing of metals: a brief review of the characteristic microstructures and properties of steels, Ti-6Al-4V and high-entropy alloys , 2017, Science and technology of advanced materials.
[142] R. Kovacevic,et al. Modeling of Heat Transfer and Fluid Flow in the Laser Multilayered Cladding Process , 2010 .
[143] F. Caiazzo. Additive manufacturing by means of laser-aided directed metal deposition of titanium wire , 2018 .
[144] Edward William Reutzel,et al. Effect of processing conditions on the microstructure, porosity, and mechanical properties of Ti-6Al-4V repair fabricated by directed energy deposition , 2019, Journal of Materials Processing Technology.
[145] B Vamsi Krishna,et al. Processing and biocompatibility evaluation of laser processed porous titanium. , 2007, Acta biomaterialia.
[146] Amitava De,et al. Heat transfer and material flow during laser assisted multi-layer additive manufacturing , 2014 .
[147] T. Kurfess,et al. Introduction to the design rules for Metal Big Area Additive Manufacturing , 2019, Additive Manufacturing.
[148] A. Rollett,et al. Analyzing the effects of powder and post-processing on porosity and properties of electron beam melted Ti-6Al-4V , 2017 .
[149] Amit Kumar Singh,et al. Microstructure and corrosion behavior of laser processed NiTi alloy. , 2015, Materials science & engineering. C, Materials for biological applications.
[150] Kellen D. Traxel,et al. Reactive-deposition-based additive manufacturing of Ti-Zr-BN composites , 2018, Additive Manufacturing.
[151] Paul A. Colegrove,et al. Residual stress and texture control in Ti-6Al-4V wire + arc additively manufactured intersections by stress relief and rolling , 2018, Materials & Design.
[152] Pradeep K. Rohatgi,et al. Semi-empirical model of deposit size and porosity in 420 stainless steel and 4140 steel using laser engineered net shaping , 2015 .
[153] Sun Yuwen,et al. Statistical analysis and optimization of process parameters in Ti6Al4V laser cladding using Nd:YAG laser , 2012 .
[154] R. Banerjee,et al. Laser additive manufacturing of compositionally graded AlCrFeMoVx (x = 0 to 1) high-entropy alloy system , 2019, Optics & Laser Technology.
[155] B. Rabin,et al. Characterization of entrapped gases in rapidly solidified powders , 1990 .
[156] J. S. Zuback,et al. The Hardness of Additively Manufactured Alloys , 2018, Materials.
[157] Radovan Kovacevic,et al. An experimental–numerical investigation of heat distribution and stress field in single- and multi-track laser cladding by a high-power direct diode laser , 2014 .
[158] Vamsi Krishna Balla,et al. Fabrication of compositionally and structurally graded Ti-TiO2 structures using laser engineered net shaping (LENS). , 2009, Acta biomaterialia.