Microstructural response of Ti6Al4V ELI alloyed with molybdenum

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Authors

Arthur, Nana K.K.
Siyasiya, Charles Witness
Pityana, Sisa L.
Tlotleng, Monnamme

Journal Title

Journal ISSN

Volume Title

Publisher

Springer

Abstract

Alloy development opens the way to create new materials for specialized processes, and attain materials that are usually difficult to acquire. Property enhancements and part performance is achievable in an exciting new way when this technique of producing materials is coupled with additive manufacturing technologies. This study explores the use of direct energy deposition technique of additive manufacturing processing for alloy development. The aim was to improve the ductility and subsequent part performance of LENS produced titanium alloys. In this study, the investigated heat inputs proved effective in producing homogenous molybdenum added Ti6Al4V microstructures. Consequently, the addition of the β-stabilizing alloying element, molybdenum, did not only result in the increased volume fraction of the β-phase but also the change from planar to cellular solidification. Thus, the hardness values for molybdenum additions of 10 mass percentage were found to be in the range of 200 ± 34 HV0.3, and this was attributed to the β-stabilizing and grain refining effect of refractory metals such as molybdenum.

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Keywords

Beta stabilizers, Directed energy deposition, Fish scaling, In situ alloying, Omega phase, Solidification structure, Ti6Al4V

Sustainable Development Goals

SDG-07: Affordable and clean energy
SDG-09: Industry, innovation and infrastructure
SDG-12: Responsible consumption and production

Citation

Arthur, N.K.K., Siyasiya, C., Pityana, S. et al. Microstructural Response of Ti6Al4V ELI Alloyed with Molybdenum by Direct Energy Deposition. Journal of Materials Engineering and Performance 30, 5455–5465 (2021). https://doi.org/10.1007/s11665-021-05859-1.