December 2025

Journal

Electroslag additive manufacturing: A pathway for high throughput near net shape production

By:
Stevens, Adam G; Kannan, Rangasayee ; Hebble, Dave; Graham, Sarah M; Mhatre, Paritosh S; Hicks, Brian L; Zinn, Kevin A; Masuo, Christopher J; Carter, William G; Heineman, Jesse ; Marquez Rossy, Andres E; Shanafield, Alexandra; Savage, Charles A; Roschli, Alex C; Singh, Vanshika ; Nandwana, Peeyush ; Babu, Sudarsanam; Post, Brian K
Journal Name:
Additive Manufacturing Letters
Page Number:
100343
Volume:
17
Publication Date:
December 22, 2025
View DOI Listing:
https://doi.org/10.1016/j.addlet.2025.100343

Abstract

Electroslag Additive Manufacturing (ESAM), a new high-throughput additive manufacturing (AM) method that combines Electroslag Strip Cladding (ESC) and wire arc AM (WAAM) is introduced. This combination enables the high deposition rate of ESC (more than 20 kg/h with a 60 mm strip electrode) to benefit from the precise geometric control of WAAM. As a precursor to ESAM, the ESC process is investigated in an AM context independently by evaluating both direct and staggered bead-stacking strategies and analyzing the microstructural and mechanical properties of each. This is followed by an ESAM demonstration producing an annular geometry by pairing ESC with gas tungsten arc welding (GTAW), wherein GTAW is utilized to construct annular walls that are subsequently infilled via ESC. The microstructure and mechanical properties of ESC-only AM are compared with that of the ESAM method and it is shown that printed integral retaining walls do not impact the resulting mechanical properties of ESAM. Furthermore, results indicate that ESAM-produced Alloy 625 parts exhibit tensile properties on par with cast counterparts, supporting the method’s scalability to components exceeding one metric ton, and possibly making ESAM a viable future manufacturing approach for competitive production of large-scale components currently manufactured by casting and forging.