A New Approach to Empirical Optimization of Laser Powder Bed Fusion Process for Ti6Al4V Parts

被引:11
作者
Baghi, Alireza Dareh [1 ]
Nafisi, Shahrooz [1 ]
Hashemi, Reza [2 ]
Ebendorff-Heidepriem, Heike [3 ]
Ghomashchi, Reza [1 ,3 ]
机构
[1] Univ Adelaide, Sch Mech Engn, Adelaide, SA 5005, Australia
[2] Flinders Univ S Australia, Coll Sci & Engn, Adelaide, SA 5042, Australia
[3] Univ Adelaide, Inst Photon & Adv Sensing, Sch Phys Sci, Adelaide, SA 5005, Australia
关键词
additive manufacturing; laser powder bed fusion; porosity; surface morphology; Ti6Al4V; volumetric energy density; PROCESS PARAMETERS; ENERGY DENSITY; MECHANICAL-BEHAVIOR; SURFACE QUALITY; MICROSTRUCTURE; SLM; POROSITY; ALLOY;
D O I
10.1007/s11665-023-08060-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Optimization of all the process parameters for laser powder bed fusion (L-PBF), considering the effects of individual parameters on Ti6Al4V fabricated parts, can be complex and challenging. Therefore, for the first time, the effects of three main variable process parameters (laser power, scan speed, and hatch spacing) on three outcomes parameters (surface roughness, bulk porosity, and production rate of parts) were studied in this work. Then, the combination of above-mentioned process parameters in the form of volumetric energy density (VED) was investigated in order to establish a practical method for optimization of process parameters for making Ti6Al4V parts with the desired quality targets, i.e., the smoothest surface, the lowest bulk porosity and a higher production rate. It was revealed that although VED is a reliable metric for the optimization of process parameters, some thresholds and ranges should be considered for all three parameters of laser power, scan speed, and hatch spacing. It was demonstrated that by employing an optimum laser power of 180 W or 270 W and changing the scan speed and hatch spacing to keep VED in the range of 50-100 J/mm(3), fabrication of samples with micro-roughness R-a < 10 mu m and bulk porosity less than 0.15% is achievable. In addition, the surface of the L-PBF fabricated parts may appear in two categories of surface morphology; wavy surface classified "meso-roughness topography" and non-wavy surface termed "micro-roughness". Since there was not any correlation between the value of roughness of samples with meso-rough surface and their bulk porosity, and besides, their process parameters were far from optimized parameters, the samples with meso-rough surface were not included in the final results. However, it was realized in the samples with micro-rough surfaces, the value of their micro-roughness could accurately indicate the porosity content of Ti6Al4V samples.
引用
收藏
页码:9472 / 9488
页数:17
相关论文
共 39 条
[1]  
[Anonymous], 2019, Surface Texture (Surface Roughness, Waviness, and Lay)
[2]  
[Anonymous], 2014, Standard Specification for Performance of Exterior Windows, Curtain Walls, Doors, and Impact Protective Systems Impacted by Windborne Debris in Hurricanes
[3]   Manufacture by selective laser melting and mechanical behavior of commercially pure titanium [J].
Attar, H. ;
Calin, M. ;
Zhang, L. C. ;
Scudino, S. ;
Eckert, J. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2014, 593 :170-177
[4]   Selective laser melting of in situ titanium-titanium boride composites: Processing, microstructure and mechanical properties [J].
Attar, Hooyar ;
Boenisch, Matthias ;
Calin, Mariana ;
Zhang, Lai-Chang ;
Scudino, Sergio ;
Eckert, Juergen .
ACTA MATERIALIA, 2014, 76 :13-22
[5]   Effective post processing of SLM fabricated Ti-6Al-4 V alloy: Machining vs thermal treatment [J].
Baghi, Alireza Dareh ;
Nafisi, Shahrooz ;
Hashemi, Reza ;
Ebendorff-Heidepriem, Heike ;
Ghomashchi, Reza .
JOURNAL OF MANUFACTURING PROCESSES, 2021, 68 :1031-1046
[6]   Perspectives on Titanium Science and Technology [J].
Banerjee, Dipankar ;
Williams, J. C. .
ACTA MATERIALIA, 2013, 61 (03) :844-879
[7]   On the limitations of Volumetric Energy Density as a design parameter for Selective Laser Melting [J].
Bertoli, Umberto Scipioni ;
Wolfer, Alexander J. ;
Matthews, Manyalibo J. ;
Delplanque, Jean-Pierre R. ;
Schoenung, Julie M. .
MATERIALS & DESIGN, 2017, 113 :331-340
[8]   Metal additive manufacturing in aerospace: A review [J].
Blakey-Milner, Byron ;
Gradl, Paul ;
Snedden, Glen ;
Brooks, Michael ;
Pitot, Jean ;
Lopez, Elena ;
Leary, Martin ;
Berto, Filippo ;
du Plessis, Anton .
MATERIALS & DESIGN, 2021, 209
[9]   Process optimisation of selective laser melting using energy density model for nickel based superalloys [J].
Carter, L. N. ;
Wang, X. ;
Read, N. ;
Khan, R. ;
Aristizabal, M. ;
Essa, K. ;
Attallah, M. M. .
MATERIALS SCIENCE AND TECHNOLOGY, 2016, 32 (07) :657-661
[10]   Energy density analysis on single tracks formed by selective laser melting with CoCrMo powder material [J].
Ciurana, Joaquim ;
Hernandez, Luis ;
Delgado, Jordi .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2013, 68 (5-8) :1103-1110