Microstructure evolution of laser solid forming of Ti-Al-V ternary system alloys from blended elemental powders

Hua Tan, Fengying Zhang, Jing Chen, Xin Lin, Weidong Huang

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Abstract

Morphology evolution of prior β grains of laser solid forming (LSF) Ti-xAl-yV(x≤11, y≤20) alloys from blended elemental powders is investigated. The formation mechanism of grain morphology is revealed by incorporating columnar to equiaxed transition (CET) mechanism during solidification. The morphology of prior β grains of LSF Ti-6Al-yV changes from columnar to equiaxed grains with increasing element V content from 4 to 20 wt.-%. This agrees well with CET theoretical prediction. Likewise, the grain morphology of LSF Ti-xAl-2V from blended elemental powders changes from large columnar to small equiaxed with increasing Al content from 2 to 11 wt.-%. The macro-morphologies of LSF Ti-8Al-2V and Ti-11Al-2V from blended elemental powders do not agree with CET predictions. This is caused by the process of Ti, Al, and V in the molten pool.

Original languageEnglish
Article number051403
JournalChinese Optics Letters
Volume9
Issue number5
DOIs
StatePublished - May 2011

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