AbstractUnderstanding laser interaction with metal powder beds is critical in predicting optimum processing regimes in laser powder bed fusion additive manufacturing of metals. In this work, we study the denudation of metal powders that is observed near the laser scan path as a function of laser parameters and ambient gas pressure. We show that the observed depletion of metal powder particles in the zone immediately surrounding the solidified track is due to a competition between outward metal vapor flux directed away from the laser spot and entrainment of powder particles in a shear flow of gas driven by a metal vapor jet at the melt track. Between atmospheric pressure and ∼10 Torr of Ar gas, the denuded zone width increases with decreasin...
Laser powder bed fusion (LPBF) has a wide range of uses in high-tech industries, including the aeros...
Laser powder bed fusion (LPBF) metal additive manufacturing provides distinct advantages for aerospa...
The acceptance of additive manufacturing (AM) depends on the quality of final parts and the process ...
Metal additive manufacturing is moving from rapid prototyping to on-demand manufacturing and even to...
International audienceAlthough metal vaporisation has been observed in several laser processes such ...
The additive manufacturing (AM) of metals is becoming an increasingly important production process w...
As one of the most popular additive manufacturing (AM) technologies in the aerospace industry, laser...
Abstract Laser powder bed fusion (LPBF) can produce high‐value metallic components for many industri...
A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas ...
The laser powder bed fusion (LPBF) or powder-bed additive layer manufacturing process is now recogni...
A fundamental understanding of the physical phenomena associated with the coaxial laser metal deposi...
Laser powder bed fusion (LPBF) is a promising additive manufacturing technology for producing metal ...
Powder spattering is a major cause of defect formation and quality uncertainty in the laser powder b...
Additive Manufacturing became a major research topic and part of industrial production in the past y...
Using the additive manufacturing process Laser Powder Bed Fusion (L-PBF), workpieces with an almost ...
Laser powder bed fusion (LPBF) has a wide range of uses in high-tech industries, including the aeros...
Laser powder bed fusion (LPBF) metal additive manufacturing provides distinct advantages for aerospa...
The acceptance of additive manufacturing (AM) depends on the quality of final parts and the process ...
Metal additive manufacturing is moving from rapid prototyping to on-demand manufacturing and even to...
International audienceAlthough metal vaporisation has been observed in several laser processes such ...
The additive manufacturing (AM) of metals is becoming an increasingly important production process w...
As one of the most popular additive manufacturing (AM) technologies in the aerospace industry, laser...
Abstract Laser powder bed fusion (LPBF) can produce high‐value metallic components for many industri...
A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas ...
The laser powder bed fusion (LPBF) or powder-bed additive layer manufacturing process is now recogni...
A fundamental understanding of the physical phenomena associated with the coaxial laser metal deposi...
Laser powder bed fusion (LPBF) is a promising additive manufacturing technology for producing metal ...
Powder spattering is a major cause of defect formation and quality uncertainty in the laser powder b...
Additive Manufacturing became a major research topic and part of industrial production in the past y...
Using the additive manufacturing process Laser Powder Bed Fusion (L-PBF), workpieces with an almost ...
Laser powder bed fusion (LPBF) has a wide range of uses in high-tech industries, including the aeros...
Laser powder bed fusion (LPBF) metal additive manufacturing provides distinct advantages for aerospa...
The acceptance of additive manufacturing (AM) depends on the quality of final parts and the process ...