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The objective of this work is to develop a new drop-on-demand generator of superheated metal droplets that is suitable for the selective infiltration manufacturing (SIM), a new SFF process for the direct fabrication of metal parts.
Additive manufacturing (Selective Laser Sintering), machining, and forming processes are analyzed and compared by means of Life Cycle Assessment techniques.
Water sorption (and desorption) is indeed the key physical phenomenon to consider when designing several heat storage cycles, whereas water infiltration is to be studied when concerned with sieving through microporous materials for manufacturing selective membranes (e.g. water desalination by reverse osmosis).
A range of metallic lattice structures have been manufactured using the selective laser melting (SLM) rapid manufacturing technique.
Components manufactured by maturing additive manufacturing techniques like selective laser melting (SLM) find potential competence in several applications especially in automotive and aerospace industries as well as in medical applications like customized implants.
Additive manufacturing by selective electron beam melting is a promising way to fabricate complex Ti 6Al 4V components.
One of the most perspective methods of additive manufacturing is selective laser melting.
The graft copolymers can be used in the manufacturing of selective separation media as Dr Stephen C. Lapin of PCT Engineered Systems explains.
This research evaluates the fatigue properties of Ti 6Al 4V specimens produced by the Selective Laser Melting additive manufacturing process.
Porous titanium and tantalum coatings were produced on cast cobalt chromium alloy substrate plates (Co-28 Cr-6 Mo ASTM designation F75)) using the additive manufacturing process Selective Laser Melting (SLM).
In this work iron parts, as the basic industry material, were produced by the new emerging additive manufacturing technology, selective laser melting (SLM).
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