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Discrete element simulation and experimental study of powder spreading process in additive manufacturing

Powder Technology · 2016 · Vol. 306 · pp. 45–54
Sina HaeriY. WangOana GhitaJin Sun

Abstract

Powders used in additive manufacturing (AM) are spread onto a compact layer of particles for sintering and this process is repeated layer by layer to form the final products. Spreading of rod-shaped particles in realistic AM settings is simulated using the discrete element method (DEM) to investigate the effects of particle shape and operating conditions on the bed quality, characterised by its surface roughness and solid volume fraction. It is discovered that larger particle aspect ratios, A r , or higher spreader translational velocities result in a lower bed quality, i.e. a larger surface roughness and a smaller volume fraction. The surface roughness increases monotonically with A r . However, the volume fraction exhibits a maximum at A r = 1.5 for randomly packed powder beds that are formed by the roller type spreaders moving at low translational velocities. It is also found that a roller outperforms a blade spreader in terms of the quality of the prepared bed at the same operating conditions. The micro-structural analysis of the beds also shows particle alignment in response to the induced flow, which is qualitatively confirmed by a set of purposelydesigned experiments. In addition, a shape segregation is documented for powders with mixed aspect ratios (A r ) such that particles with larger A r tend to accumulate on the upper layers of the bed.

Granular flow and fluidized bedsParticle Dynamics in Fluid FlowsAdditive Manufacturing and 3D Printing TechnologiesDiscrete element methodMaterials scienceVolume fractionSurface roughnessParticle (ecology)Volume (thermodynamics)Particle sizeSurface finishComposite materialSintering

Funding

  • University of Strathclyde
  • Engineering and Physical Sciences Research Council
Citations
312
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15.57
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References
32
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References
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NIH Image to ImageJ: 25 years of image analysis
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