In the present investigation, Ti-6Al-4V ELI samples were manufactured by the powder-bed fusion (PBF) process using the laser sintering (LS) technology. Microstructure, chemical and phase constitution, and mechanical properties were studied by means of the transmission electron microscopy, atom probe tomography, X-ray diffraction, nanoindentation and mechanical testing. It was found that the structure of LS samples consisted of two different variants of metastable phases, namely the hexagonal α′ martensitic phase and small amounts of the orthorhombic α″ martensitic phase. The martensitic α′-phase was formed because of the high cooling rates of the LS method. The {101\uaf2} ⟨1\uaf011⟩ hexagonal martensite tensile twins were observed in the mi...
Microstructures dominated by acicular α' martensitic phase, such as in the case of Ti-6Al-4V fabrica...
As an important metal three-dimensional printing technology, electron beam melting (EBM) is gaining ...
Novel ultrafine lamellar (a + b) microstructures comprising ultrafine (200-300 nm) a-laths and retaine...
A detailed study was carried out to gain a better understanding of the microstructural differences b...
Ti-6Al-4V parts fabricated by laser powder-bed fusion (L-PBF) additive manufacturing often suffer fr...
Selective laser melting is a promising powder-bed-based additive manufacturing technique for titaniu...
Laser Powder Bed Fusion (LPBF) technology was used to produce samples based on the Ti-6Al-4V alloy f...
This article investigated the microstructure of Ti6Al4V that was fabricated via selective laser melt...
Additive manufacturing is being increasingly used in the fabrication of Ti-6Al-4V parts to combine e...
Among laser additive manufacturing, selective laser melting (SLM) is one of the most popular methods...
Additive manufacturing is being increasingly used in the fabrication of Ti-6Al-4V parts to combine e...
Selective laser melting is a promising powder-bed-based additive manufacturing technique for titaniu...
The composition, structure and mechanical properties of samples obtained from the titanium alloy Ti-...
International audienceAs an important metal three-dimensional printing technology, electron beam mel...
The present study comprehensively a investigates the correlations between the heat treatment process...
Microstructures dominated by acicular α' martensitic phase, such as in the case of Ti-6Al-4V fabrica...
As an important metal three-dimensional printing technology, electron beam melting (EBM) is gaining ...
Novel ultrafine lamellar (a + b) microstructures comprising ultrafine (200-300 nm) a-laths and retaine...
A detailed study was carried out to gain a better understanding of the microstructural differences b...
Ti-6Al-4V parts fabricated by laser powder-bed fusion (L-PBF) additive manufacturing often suffer fr...
Selective laser melting is a promising powder-bed-based additive manufacturing technique for titaniu...
Laser Powder Bed Fusion (LPBF) technology was used to produce samples based on the Ti-6Al-4V alloy f...
This article investigated the microstructure of Ti6Al4V that was fabricated via selective laser melt...
Additive manufacturing is being increasingly used in the fabrication of Ti-6Al-4V parts to combine e...
Among laser additive manufacturing, selective laser melting (SLM) is one of the most popular methods...
Additive manufacturing is being increasingly used in the fabrication of Ti-6Al-4V parts to combine e...
Selective laser melting is a promising powder-bed-based additive manufacturing technique for titaniu...
The composition, structure and mechanical properties of samples obtained from the titanium alloy Ti-...
International audienceAs an important metal three-dimensional printing technology, electron beam mel...
The present study comprehensively a investigates the correlations between the heat treatment process...
Microstructures dominated by acicular α' martensitic phase, such as in the case of Ti-6Al-4V fabrica...
As an important metal three-dimensional printing technology, electron beam melting (EBM) is gaining ...
Novel ultrafine lamellar (a + b) microstructures comprising ultrafine (200-300 nm) a-laths and retaine...