Affiliation:
1. GRINM Group Co, Ltd.
2. Shanghai University of Engineering Science
3. GRIMAT Engineering Institute Co., Ltd.
Abstract
The electron beam melting-printed Ti6Al4V shows a great potential application for orthopedic implants and aerospace in recent years. A systematic study on the microstructure of additive manufactured Ti6Al4V by electron beam melting both parallel to and perpendicular to the building directions (Z axis) is presented in the present investigation. The results showed that the microstructure of the alloy was α lamina with HCP structure and β bar with BCC structure. The original β phase grew as columnar crystal along the direction of construction, showing an equiaxial shape in the cross section, numerous small α lamellae block the original β phase, and presenting a cluster distribution on the original β grain boundary, and a basket-like distribution in the original β grain. This may be due to the rapid cooling of the small pool after melting, the repeated heating of the subsequent constructed layer on the formed layer, and the subsequent limited vacuum cooling, resulting in the formation of the micro morphology, which leads to the original β grain boundaries broken, and the formation of a distinctive basket or widmanstatten structure [1, 2]. In addition, XRD results indicated that there was α′ martensite, part of which has been decomposes into α phases and β phases, SEM and TEM experiments also proved this. Of note is that random distribution dislocation was observed in TEM. Using EBSD results, and it may be understand that the sample build direction was parallel to [0001] crystal orientation and build plane parallel to (1210) and (1100) crystal facets.
Publisher
Trans Tech Publications, Ltd.
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference27 articles.
1. Kok Y, Tan X, Tor S B, et al. Fabrication and microstructural characterisation of additive manufactured Ti-6Al-4V parts by electron beam melting[J]. Virtual & Physical Prototyping, 2015, 10(1): 13-21.
2. Al-Bermani S S, Blackmore M L, Todd W Z. The origin of microstructural diversity, texture, and Mechanical Properties in Electron Beam Melted Ti-6Al-4V[J]. Metallurgical & Materials Transactions A, 2010. 41(13): 3422-3434.
3. H.P. Tang, G.Y. Yang, W.P. Jia, et al. Additive manufacturing of a high niobium-containing titanium aluminide alloy by selective electron beam melting[J]. Material science & Engineering A 2015, 636(11): 103-107.
4. Guo C, Lin F, Ge W J, et al. Development of novel EBSM system for high-tech material additive manufacturing research[C]. The 2014 Annual International Solid Freeform Fabrication Symposium. (2014).
5. R.E. Shuster, S.L. Cockcroft, D.M. Maijer, et al. A three-dimensional transient thermal-fluid flow-compositional study of ingot casting during electron beam remelting of Ti–6Al–4V[J]. Applied Mathematical Modeling, 2016, 40(21-22): 9095-9117.