Additive manufacturing of Ti6Al4V alloy: A review

Аддитивное производство сплава Ti6Al4V: обзор
Yung C. Shin, Shunyu Liu
2018-12-18

Ti6Al4V alloyadditive manufacturingdirected energy depositionelectron beam meltingselective laser melting
In this paper, the recent progress on Ti6Al4V fabricated by three mostly developed additive manufacturing (AM) techniques-directed energy deposition (DED), selective laser melting (SLM) and electron beam melting (EBM)-is thoroughly investigated and compared. Fundamental knowledge is provided for the creation of links between processing parameters, resultant microstructures and associated mechanical properties. Room temperature tensile and fatigue properties are also reviewed and compared to traditionally manufactured Ti6Al4V parts. The presence of defects in as-built AM Ti6Al4V components and the influences of these defects on mechanical performances are also critically discussed.
1
Defects in as-built Ti6Al4V additive-manufactured parts and their effects on mechanical performance are critically examined.
2
It links additive-manufacturing processing parameters with the resulting microstructures and mechanical properties of Ti6Al4V.
3
Room-temperature tensile and fatigue properties of additively manufactured Ti6Al4V are reviewed against traditionally manufactured components.
4
The review compares Ti6Al4V fabrication using directed energy deposition, selective laser melting, and electron beam melting.

additively manufactured Ti6Al4V alloy components produced by DED, SLM, and EBM

the relationships among processing parameters, microstructure, defects, and room-temperature tensile and fatigue properties, including comparison with conventionally manufactured Ti6Al4V

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2018-12-18
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Yung C. Shin
Shunyu Liu
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