Exploring Surface Roughness Effects on Spray Performance in Metal Additive Manufactured Fuel Injectors for Gas Turbine ApplicationsShow others and affiliations
2025 (English)In: Funtai Oyobi Fummatsu Yakin/Journal of the Japan Society of Powder and Powder Metallurgy, ISSN 0532-8799, Vol. 72, p. S1233-Article in journal (Refereed) Published
Abstract [en]
Metal additive manufacturing (AM) enables the design of complex fuel injectors for gas turbine applications. Despite its advantages, AM injectors display rougher surfaces than conventional counterparts, adversely affecting spray performance through increased droplet size and the promotion of non-circumferential sprays. Design enhancements are believed to mitigate the surface roughness limitations, thereby improving the overall performance of the injector. However, surface roughness is dependent on the AM method chosen to produce the injectors. This study provides a baseline for the correlation between surface roughness and spray performance for plain orifice fuel injectors manufactured in 316L stainless steel by Metal Binder Jetting (MBJ) and Powder Bed Fusion – Laser Beam (PBF–LB). Surface roughness and manufacturing challenges, like shrinkage, significantly impact spray characteristics in smaller channel PBF-LB and MBJ injectors, compromising their spray quality and necessitating additional post-processing steps. Larger channel injectors perform better in maintaining circumferential spray uniformity and directional stability. © 2025 Japan Society of Powder and Powder Metallurgy.
Place, publisher, year, edition, pages
Journal of the Japan Society of Powder and Powder Metallurgy , 2025. Vol. 72, p. S1233-
Keywords [en]
Coal; Laser beam effects; Powder metals; Steel powder metallurgy; Turbine components; Fuel-injectors; Fusion lasers; Gas turbine applications; Metal additives; Metal binder jetting; Metal binders; Powder bed; Powder bed fusion-laser beam; Spray performance; Surface roughness effects; Gas turbines
National Category
Materials Engineering
Identifiers
URN: urn:nbn:se:ri:diva-78366DOI: 10.2497/jjspm.16C-T11-09Scopus ID: 2-s2.0-105001516143OAI: oai:DiVA.org:ri-78366DiVA, id: diva2:1999495
Note
The authors would like to acknowledge the support in terms of funding from the Centre of Technologies and Innovations for a future green hydrogen economy (TechForH2). The Competence Centre TechForH2 is hosted by Chalmers University of Technology and is financially supported by the Swedish Energy Agency (P2021-90268) and the member companies Volvo, Scania, Siemens Energy, GKN Aerospace, PowerCell, Oxeon, RISE, Stena Rederier AB, Johnsson Matthey, and Insplorion.
2025-09-192025-09-192025-09-23Bibliographically approved