Effect of melt parameters on density and surface roughness in electron beam melting of gamma titanium aluminide alloy

Purpose Electron beam melting (EBM) is one of the potential additive manufacturing technologies to fabricate aero-engine components from gamma titanium aluminide (γ-TiAl) alloys. When a new material system has to be taken in to the fold of EBM, which is a highly complex process, it is essential to understand the effect of process parameters on the final quality of parts. This paper aims to understand the effect of melting parameters on top surface quality and density of EBM manufactured parts. This investigation would accelerate EBM process development for newer alloys. Design/methodology/approach Central composite design approach was used to design the experiments. In total, 50 specimens were built in EBM with different melt theme settings. The parameters varied were surface temperature, beam current, beam focus offset, line offset and beam speed. Density and surface roughness were selected as responses in the qualifying step of the parts. After identifying the parameters which were statistically significant, possible reasons were analyzed from the perspective of the EBM process. Findings The internal porosity and surface roughness were correlated to the process settings. Important ones among the parameters are beam focus offset, line offset and beam speed. By jointly deciding the total amount of energy input for each layer, these three parameters played a critical role in internal flaw generation and surface evolution. Research limitations/implications The range selected for each parameter is applicable, in particular, to γ-TiAl alloy. For any other alloy, the settings range has to be suitably adapted depending on physical properties such as melting point, thermal conductivity and thermal expansion co-efficient. Practical implications This paper demonstrates how melt theme parameters have to be understood in the EBM process. By adopting a similar strategy, an optimum window of settings that give best consolidation of powder and better surface characteristics can be identified whenever a new material is being investigated for EBM. This work gives researchers insights into EBM process and speeds up EBM adoption by aerospace industry to produce critical engine parts from γ-TiAl alloy. Originality/value This work is one of the first attempts to systematically carry out a number of experiments and to evaluate the effect of melt parameters for producing γ-TiAl parts by the EBM process. Its conclusions would be of value to additive manufacturing researchers working on γ-TiAl by EBM process.

[1]  Feng Lin,et al.  Effects of scanning parameters on material deposition during Electron Beam Selective Melting of Ti-6Al-4V powder , 2015 .

[2]  Yusheng Shi,et al.  The effect of processing parameters on characteristics of selective laser sintering dental glass‐ceramic powder , 2010 .

[3]  S. Biamino,et al.  Electron beam melting of Ti–48Al–2Cr–2Nb alloy: Microstructure and mechanical properties investigation , 2011 .

[4]  Anders Snis,et al.  Effect of process parameters settings and thickness on surface roughness of EBM produced Ti‐6Al‐4V , 2012 .

[5]  Norman M. Wereley,et al.  Advances in gamma titanium aluminides and their manufacturing techniques , 2012 .

[6]  M. Oehring,et al.  Recent progress in the development of gamma titanium aluminide alloys , 2000 .

[7]  D. Eliezer,et al.  Synthesis, properties and applications of titanium aluminides , 1992 .

[8]  Robert F. Singer,et al.  In situ flaw detection by IR‐imaging during electron beam melting , 2012 .

[9]  Ryan B. Wicker,et al.  Characterization of titanium aluminide alloy components fabricated by additive manufacturing using electron beam melting , 2010 .

[10]  Ryan B. Wicker,et al.  Microstructures and mechanical properties of electron beam-rapid manufactured Ti–6Al–4V biomedical prototypes compared to wrought Ti–6Al–4V , 2009 .

[11]  Kamran Mumtaz,et al.  Top surface and side roughness of Inconel 625 parts processed using selective laser melting , 2009 .

[12]  Brent Stucker,et al.  Defect Morphology in Ti-6Al-4V Parts Fabricated by Selective Laser Melting and Electron Beam Melting , 2013 .

[13]  W. Kapłonek,et al.  Coherence Correlation Interferometry in Surface Topography Measurements , 2012 .

[14]  Ryan B. Wicker,et al.  Fabricating Functional Ti-Alloy Biomedical Implants by Additive Manufacturing Using Electron Beam Melting , 2012 .

[15]  L. Murr,et al.  Microstructures for Two-Phase Gamma Titanium Aluminide Fabricated by Electron Beam Melting , 2012, Metallography, Microstructure, and Analysis.

[16]  Ola L. A. Harrysson,et al.  Properties of Ti–6Al–4V non-stochastic lattice structures fabricated via electron beam melting , 2008 .

[17]  Eleonora Atzeni,et al.  On the effect of process parameters on properties of AlSi10Mg parts produced by DMLS , 2014 .

[18]  Joakim Karlsson,et al.  Characterization and comparison of materials produced by Electron Beam Melting (EBM) of two different Ti-6Al-4V powder fractions , 2013 .