Sep 2026· Materials Science in Additive Manufacturing· pp. 026220051· 0 citations
Abstract
Gas atomization is a key technology for producing high-quality metal powders, widely adopted in additive manufacturing and other powder-based industries due to its versatility and productivity. Its complexity, such as intense gas–liquid momentum exchange, thermal gradients in solidification, and multiple influencing factors, poses significant challenges for process control. This comprehensive review explores the complexities of gas atomization technology in metal powder production, examining the underlying mechanisms, simulation techniques, flow field dynamics, and key influencing factors. It clarifies that primary atomization is characterized by liquid film atomization, driven by Kelvin–Helmholtz instabilities, and fountain atomization, triggered by Rayleigh–Taylor instabilities. Secondary atomization, on the other hand, is predominantly influenced by shear and inertial forces. The review emphasizes the key roles of physical gas and liquid properties, temperature, pressure, nozzle design, and solidification processes in determining the characteristics of the resulting metal powder. It concludes that a thorough understanding of these factors is essential for refining the atomization process and improving the quality of the metal powder produced. The review suggests that future research should focus on resolving discrepancies in atomization mechanisms, enhancing simulation methodologies, and investigating the effects of advanced nozzle designs on the production of metal powder.
The gas atomization process for metal powder production is strongly influenced by the thermodynamic and fluid-dynamic conditions of the atomizing gas. In this study, stainless steel (316L) powders produced using a close-coupled gas atomizer (CCA) with heated nitrogen and argon were investigated. A systematic experiment...
A. Weicht, Flávia Maria Alves Costa da Silva, Stefan Evers et al.· Powders· 0 citations
Centrifugal atomization is used to generate droplets or particles in processes ranging from crop protection and metallurgical powder production to rotary-bell coating, combustion, and spray-based product processing. However, comparison across studies is hindered by differences in atomizer geometry, characteristic scale...
Laser powder bed fusion (PBF-LB) requires powders with high and uniform flowability, high packing density and good spreadability. For these reasons, gas or plasma atomization are preferred production processes for PBF-LB feedstocks as they ensure obtaining spherical particles that result in powders having good rheolo...
Denis Mutel, S. Gélinas, C. Blais· Journal of Materials Science...· 0 citations
This paper investigates the Electrode Induction Gas Atomization (EIGA) of a Class 4 tungsten heavy alloy (WHA-4) containing 97.8 wt.% W, with the balance comprising Ni and Fe. Compared with conventional tungsten heavy alloys containing less than 95 wt.% W, the high tungsten content reduces the liquid-phase fraction and...
Arun K. Chattopadhyay, Jonathan W. Pegues, Sandy Awad et al.· Metals· 0 citations