A4 Vertaisarvioitu artikkeli konferenssijulkaisussa
Investigation of Powder Catchment Efficiency in Laser-Based Directed Energy Deposition via CFD Modeling and Acoustic Emission; 
Tekijät: Haapa, Erik; Miri Beidokhti, Mojtaba; Ribeiro, Kandice S.B.
Toimittaja: Schmidt, Michael
Konferenssin vakiintunut nimi: CIRP Conference on Photonic Technologies
Julkaisuvuosi: 2026
Lehti: Procedia CIRP
Kokoomateoksen nimi: 14th CIRP Conference on Photonic Technologies [LANE 2026]
Vuosikerta: 143
Aloitussivu: 722
Lopetussivu: 727
eISSN: 2212-8271
DOI: https://doi.org/10.1016/j.procir.2026.07.150
Julkaisun avoimuus kirjaamishetkellä: Avoimesti saatavilla
Julkaisukanavan avoimuus : Kokonaan avoin julkaisukanava
Verkko-osoite: http://dx.doi.org/10.1016/j.procir.2026.07.150
Rinnakkaistallenteen osoite: https://research.utu.fi/converis/portal/detail/Publication/527043624
Rinnakkaistallenteen lisenssi: CC BY NC ND
Rinnakkaistallennetun julkaisun versio: Kustantajan versio
Laser-based powder directed energy deposition (DED-LB/P) relies on powder delivery dynamics, which affect process efficiency and part quality through material catchment at the melt pool. This study investigates powder flow behavior and particle catchment using a combined computational and experimental approach. Computational fluid dynamics (CFD) models were developed to simulate material-laser interaction, and powder flow, including particle impact frequency. Model predictions were validated through single-bead deposition of stainless steel 316L powder, monitored using acoustic emission (AE). Simulations provided insight into the frequency of free-powder particle impacts, supporting analysis of powder-substrate interactions. Results show that structure-borne AE signals are sensitive to variations in powder mass flow rate, enabling reliable detection of flow fluctuations. However, direct quantification of powder catchment efficiency from AE remains challenging. The integration of AE monitoring with computational modeling offers a promising pathway for improved understanding and real-time evaluation of powder delivery efficiency and process stability in DED-LB/P.
Ladattava julkaisu This is an electronic reprint of the original article. |
Julkaisussa olevat rahoitustiedot:
The authors acknowledge the support from the Department of Mechanical and Materials Engineering at the University of Turku, and Quad Tech Turku, Turku, Finland. This study used FLOW-3D AM® (Version 2025R1U1; Flow Science, Inc.) made available through the FLOW-3D Academic Program.