Surface oxidation of metallic powders may significantly affect their melting and solidification behavior and limit their service life in the additive manufacturing (AM) process. In the present work, three levels of surface oxide concentration were prepared on AM-grade 316L stainless steel powders, and their melting and solidification behavior was systematically studied through in situ observation, advanced characterization, phase field modeling and theoretical analysis. Si, Mn and Cr participated in the oxidation reaction in powder with low and medium oxygen contents, whereas Fe was involved in the oxidation reaction for the powder samples with high oxygen content. A higher full melting temperature is observed to lead to an integrated melt ...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Laser-Powder Bed Fusion (L-PBF) of metallic parts is a highly multivariate process. An understandin...
Copyright © The Author(s) 2021. Surface oxidation of metallic powders may significantly affect their...
The oxide evolution during the solidification of 316L stainless steel from additive manufacturing po...
Copyright © The Author(s) 2021. The oxide evolution during the solidification of 316L stainless stee...
The initial oxide state of powder is essential to the robust additive manufacturing of metal compone...
Laser based-powder bed fusion (LB-PBF) is one of the many techniques within additive manufacturing (...
During water-atomisation and handling of steel powder the surface inevitably oxidises. The surface b...
In this study, the concept of enhancing the in-situ oxide precipitation in laser powder-bed fusion p...
Additive manufacturing (AM) fabricated oxide dispersion strengthened (ODS) alloys are given high exp...
The use of chromium in the PM steel industry today puts high demands on the choice and control of th...
New insights are presented on the speciation of surface oxide phases on fine inert gas atomised(GA, ...
Surface oxide characteristics of powder particles are important to consider for any toxicological ri...
Surface oxide characteristics of powder particles are important to consider for any toxicological ri...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Laser-Powder Bed Fusion (L-PBF) of metallic parts is a highly multivariate process. An understandin...
Copyright © The Author(s) 2021. Surface oxidation of metallic powders may significantly affect their...
The oxide evolution during the solidification of 316L stainless steel from additive manufacturing po...
Copyright © The Author(s) 2021. The oxide evolution during the solidification of 316L stainless stee...
The initial oxide state of powder is essential to the robust additive manufacturing of metal compone...
Laser based-powder bed fusion (LB-PBF) is one of the many techniques within additive manufacturing (...
During water-atomisation and handling of steel powder the surface inevitably oxidises. The surface b...
In this study, the concept of enhancing the in-situ oxide precipitation in laser powder-bed fusion p...
Additive manufacturing (AM) fabricated oxide dispersion strengthened (ODS) alloys are given high exp...
The use of chromium in the PM steel industry today puts high demands on the choice and control of th...
New insights are presented on the speciation of surface oxide phases on fine inert gas atomised(GA, ...
Surface oxide characteristics of powder particles are important to consider for any toxicological ri...
Surface oxide characteristics of powder particles are important to consider for any toxicological ri...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Quality and usefulness of the powder for additive manufacturing (AM) are strongly determined by the ...
Laser-Powder Bed Fusion (L-PBF) of metallic parts is a highly multivariate process. An understandin...