A numerical model for predicting powder characteristics in LMD considering particle interaction
Keywords: 
Additive manufacturing.
Coaxial nozzle.
Directed energy deposition.
Agglomeration.
Particle adhesion.
Johnson-cook plasticity.
Coaxial nozzle.
Laser.
Deposition.
Flow.
Simulation.
Parameters.
Behavior.
Streams.
Issue Date: 
2024
ISSN: 
0921-8831
Citation: 
Guner, A.; Bidare, P.; Jiménez-Zabaleta, A. (Amaia); et al. "A numerical model for predicting powder characteristics in LMD considering particle interaction". Advanced powder technology. 35 (3), 2024, 104348 - *
Abstract
In this work, a numerical model is proposed to analyze the influence of particle-particle interaction in laser directed energy deposition or LMD (laser metal deposition) of CM247 Ni-based superalloy. The model is based on the analysis of contact between particles and the potential agglomeration of powder to predict powder conditions at the nozzle exit. Simulation results were experimentally validated and a good agreement was observed. At the nozzle exit mainly large particles (>100 mu m) are found and small ones (<10 m) tend to flow away from this region. This was also observed in the experimental PSD. Additionally, based on the relative velocity of particles, simulations are able to predict the formation of dents. In comparing virgin powder PSD and the one at the nozzle exit, it was observed that largest particles are collected at the exit. In order to explain this phenomena, particle agglomeration was analysed numerically. It was seen that small particles tend to adhere to the big ones due to their higher adhesive forces, which would explain the change in PSD. (c) 2024 The Society of Powder Technology Japan. Published by Elsevier BV and The Society of Powder Technology Japan. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

Files in This Item:
Thumbnail
File
pdf.pdf
Description
Size
4.54 MB
Format
Adobe PDF


Statistics and impact

Items in Dadun are protected by copyright, with all rights reserved, unless otherwise indicated.