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A Simulation Study on Sieving as a Powder Deposition Method in Powder Bed Fusion Processes
Panagiotis Avrampos1, George-Christopher Vosniakos1
1Manufacturing Technology Laboratory, School of Mechanical Engineering, National Technical University of Athens, Heroon Polytehniou 9, 15773 Athens, Greece.
Materials (Basel, Switzerland)
|July 27, 2024
Summary
Controlled sieving enhances powder deposition in powder bed fusion (PBF) processes. This method optimizes powder flow and layer quality, outperforming traditional recoating techniques for better manufacturing outcomes.
Area of Science:
- Materials Science
- Manufacturing Engineering
- Additive Manufacturing
Background:
- Even powder layers are crucial for powder bed fusion (PBF) processes.
- Powder sieving is typically used for pre-processing, not direct deposition.
Purpose of the Study:
- To investigate sieving as a powder deposition method in PBF.
- To optimize sieving parameters for improved powder flow and layer quality.
- To compare controlled sieving with conventional recoating techniques.
Main Methods:
- Developed and validated a discrete element method (DEM) powder model.
- Employed Taguchi design of experiments and analysis of variance (ANOVA) for optimization.
- Evaluated layer quality using surface roughness, layer thickness deviation, surface coverage, and packing density.
Main Results:
- Optimized sieving parameters include oscillating frequency and amplitude, influenced by initial powder load.
- Sieve aperture shape impacts mass flow; polygons with more sides reduce mass flow per aperture.
- Controlled sieving demonstrated superior layer surface quality and deposition duration compared to a doctor blade recoater.
Conclusions:
- Controlled sieving is a viable and effective method for powder deposition in PBF.
- Optimized sieving parameters can significantly enhance powder flow and layer homogeneity.
- This technique offers advantages over traditional recoating for improved part quality and process efficiency.
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