Laser Powder Bed Fusion is a leading additive manufacturing technology, which has been used successfully with a range of lower melting point materials (titanium alloys, nickel alloys, steels). This work looks to extend its use to refractory metals, such as those considered in this paper where the behaviour of pure tungsten powder is investigated. A strategy for fabricating high density parts was developed by creating a process map in which the effect of laser energy density was studied. The process quality was assessed using different techniques including light optical microscopy, XCT, SEM and EBSD. The results showed that the laser energy density was adequate to process tungsten to produce functional parts. The bulk density and optically d...
Selective laser melting (SLM) was used to fabricate different W-Ni-Fe tungsten heavy alloy grades (N...
Additive manufacturing technologies are becoming more popular, as they allow the fabrication of spec...
© 2019 Elsevier Ltd Selective laser melting (SLM) was used to fabricate tungsten heavy alloy (WHA) w...
In this study we consider the role of the pure tungsten powder interaction with processing condition...
Selective laser melting (SLM) additive manufacturing of pure tungsten encounters nearly all intracta...
The mechanical and microstructural properties of pure tungsten produced using Laser Bed Additive Man...
The production of complex lattice structures made of pure tungsten can be of great interest for po...
Selective laser melting (SLM) is an additive manufacturing technique which enables fabrication of th...
The influence of process parameters during laser-powder bed fusion on the microstructure, tensile st...
Additive manufacturing using tungsten, a brittle material, is difficult because of its high melting ...
Additive Manufacturing (AM) is the process that allows the production of complex geometry and ligh...
AbstractAdditive Manufacturing (AM) is the process that allows the production of complex geometry an...
High-density pure tungsten (W) fabricated ...
We successfully formed the first prominent crystallographic texture of tungsten using laser powder b...
Selective Laser Melting (SLM) is a leading Additive Manufacturing (AM) technology used for high valu...
Selective laser melting (SLM) was used to fabricate different W-Ni-Fe tungsten heavy alloy grades (N...
Additive manufacturing technologies are becoming more popular, as they allow the fabrication of spec...
© 2019 Elsevier Ltd Selective laser melting (SLM) was used to fabricate tungsten heavy alloy (WHA) w...
In this study we consider the role of the pure tungsten powder interaction with processing condition...
Selective laser melting (SLM) additive manufacturing of pure tungsten encounters nearly all intracta...
The mechanical and microstructural properties of pure tungsten produced using Laser Bed Additive Man...
The production of complex lattice structures made of pure tungsten can be of great interest for po...
Selective laser melting (SLM) is an additive manufacturing technique which enables fabrication of th...
The influence of process parameters during laser-powder bed fusion on the microstructure, tensile st...
Additive manufacturing using tungsten, a brittle material, is difficult because of its high melting ...
Additive Manufacturing (AM) is the process that allows the production of complex geometry and ligh...
AbstractAdditive Manufacturing (AM) is the process that allows the production of complex geometry an...
High-density pure tungsten (W) fabricated ...
We successfully formed the first prominent crystallographic texture of tungsten using laser powder b...
Selective Laser Melting (SLM) is a leading Additive Manufacturing (AM) technology used for high valu...
Selective laser melting (SLM) was used to fabricate different W-Ni-Fe tungsten heavy alloy grades (N...
Additive manufacturing technologies are becoming more popular, as they allow the fabrication of spec...
© 2019 Elsevier Ltd Selective laser melting (SLM) was used to fabricate tungsten heavy alloy (WHA) w...