The effect of three important process parameters, namely laser power, scanning speed and laser stand-off distance on the deposit geometry, microstructure and segregation characteristics in direct energy deposited alloy 718 specimens has been studied. Laser power and laser stand-off distance were found to notably affect the width and depth of the deposit, while the scanning speed influenced the deposit height. An increase in specific energy conditions (between 0.5 J/mm2 and 1.0 J/mm2) increased the total area of deposit yielding varied grain morphologies and precipitation behaviors which were comprehensively analyzed. A deposit comprising three distinct zones, namely the top, middle and bottom regions, categorized based on the distinct micro...
In order to meet the requirements for rapid manufacturing of large-scale high-performance metal comp...
Directed energy deposition (DED) is an additive manufacturing technique that enables rapid productio...
Laser directed energy deposition (DED) of high-density parallelepiped 316L stainless steel specimens...
The effect of three important process parameters, namely laser power, scanning speed and laser stand...
Laser-Directed Energy Deposition (L-DED), an Additive Manufacturing (AM) processused for the fabrica...
In this article, process parameters such as laser power, deposition speed, and powder feed rate are ...
In laser-based directed energy deposition (L-DED) of Inconel 718 the microstructure of the fabricate...
Direct Energy Deposition (DED) is a popular additive manufacturing (AM) method that excels in repair...
Feature addition to existing parts is a trending application for Directed Energy Deposition (DED) an...
This article outlines a detailed study of solution treatments and delta precipitation treatments car...
Constructing processing window to fabricate defect-free components with high forming quality and des...
A systematic matrix with 25 samples, using five different point distances and five laser exposure ti...
International audienceControlling the mechanical properties of metallic parts produced by additive m...
Laser Direct Energy Deposition (DED-L) is an Additive Manufacturing process which uses a laser beam ...
Additive Manufacturing (AM) is a method of producing three-dimensional objects using additive proces...
In order to meet the requirements for rapid manufacturing of large-scale high-performance metal comp...
Directed energy deposition (DED) is an additive manufacturing technique that enables rapid productio...
Laser directed energy deposition (DED) of high-density parallelepiped 316L stainless steel specimens...
The effect of three important process parameters, namely laser power, scanning speed and laser stand...
Laser-Directed Energy Deposition (L-DED), an Additive Manufacturing (AM) processused for the fabrica...
In this article, process parameters such as laser power, deposition speed, and powder feed rate are ...
In laser-based directed energy deposition (L-DED) of Inconel 718 the microstructure of the fabricate...
Direct Energy Deposition (DED) is a popular additive manufacturing (AM) method that excels in repair...
Feature addition to existing parts is a trending application for Directed Energy Deposition (DED) an...
This article outlines a detailed study of solution treatments and delta precipitation treatments car...
Constructing processing window to fabricate defect-free components with high forming quality and des...
A systematic matrix with 25 samples, using five different point distances and five laser exposure ti...
International audienceControlling the mechanical properties of metallic parts produced by additive m...
Laser Direct Energy Deposition (DED-L) is an Additive Manufacturing process which uses a laser beam ...
Additive Manufacturing (AM) is a method of producing three-dimensional objects using additive proces...
In order to meet the requirements for rapid manufacturing of large-scale high-performance metal comp...
Directed energy deposition (DED) is an additive manufacturing technique that enables rapid productio...
Laser directed energy deposition (DED) of high-density parallelepiped 316L stainless steel specimens...