A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas kinetics is developed to study the formation mechanisms of vapor-induced flow and the resulting powder entrainment in powder bed fusion using laser beam (PBF-LB) for 316 L powders. The interactions between keyhole formation inside the melt pool, vapor plume flow, and vapor-induced shielding gas flow are investigated. Vapor plume flow results in powder spattering with much higher speed, while vapor-induced gas flow significantly contributes to powder denudation with lower speed. It is also reported that powder spattering is stronger in 1 atm argon than that in 1 atm helium because the drag force for spattering is 2.72 times larger in 1 atm arg...
Powder spattering and splashing in the melt pool are common phenomena during Laser-based Powder Bed ...
In order to track the free interface of the melt pool and understand the evolution of the melt pool,...
Laser powder bed fusion (LPBF) is one of the most promising additive manufacturing (AM) technologies...
A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas ...
International audienceAlthough metal vaporisation has been observed in several laser processes such ...
AbstractUnderstanding laser interaction with metal powder beds is critical in predicting optimum pro...
Spattering is an unavoidable phenomenon during Selective Laser Melting (SLM). The distinctively larg...
Metal additive manufacturing is moving from rapid prototyping to on-demand manufacturing and even to...
Laser powder bed fusion (LPBF) has a wide range of uses in high-tech industries, including the aeros...
Industry currently require faster build rates from laser powder bed fusion processes. As such, high...
The additive manufacturing (AM) of metals is becoming an increasingly important production process w...
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...
In commercial Selective Laser Melting (SLM) machines, the removal of spatter particles and other und...
The experimental analysis of spatter formation was carried out on an instrumented SLM set-up allowin...
Powder spattering and splashing in the melt pool are common phenomena during Laser-based Powder Bed ...
In order to track the free interface of the melt pool and understand the evolution of the melt pool,...
Laser powder bed fusion (LPBF) is one of the most promising additive manufacturing (AM) technologies...
A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas ...
International audienceAlthough metal vaporisation has been observed in several laser processes such ...
AbstractUnderstanding laser interaction with metal powder beds is critical in predicting optimum pro...
Spattering is an unavoidable phenomenon during Selective Laser Melting (SLM). The distinctively larg...
Metal additive manufacturing is moving from rapid prototyping to on-demand manufacturing and even to...
Laser powder bed fusion (LPBF) has a wide range of uses in high-tech industries, including the aeros...
Industry currently require faster build rates from laser powder bed fusion processes. As such, high...
The additive manufacturing (AM) of metals is becoming an increasingly important production process w...
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...
In commercial Selective Laser Melting (SLM) machines, the removal of spatter particles and other und...
The experimental analysis of spatter formation was carried out on an instrumented SLM set-up allowin...
Powder spattering and splashing in the melt pool are common phenomena during Laser-based Powder Bed ...
In order to track the free interface of the melt pool and understand the evolution of the melt pool,...
Laser powder bed fusion (LPBF) is one of the most promising additive manufacturing (AM) technologies...