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  5. Nanoparticle Tracing during Laser Powder Bed Fusion of Oxide Dispersion Strengthened Steels
 
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2021
Zweitveröffentlichung
Artikel
Verlagsversion

Nanoparticle Tracing during Laser Powder Bed Fusion of Oxide Dispersion Strengthened Steels

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Hauptpublikation
materials-14-03463 (1).pdf
CC BY 4.0 International
Format: Adobe PDF
Size: 7.88 MB
TUDa URI
tuda/7367
URN
urn:nbn:de:tuda-tuprints-193919
DOI
10.26083/tuprints-00019391
Autor:innen
Yang, Yangyiwei ORCID 0000-0001-5505-7117
Doñate-Buendía, Carlos ORCID 0000-0002-7022-0960
Oyedeji, Timileyin David ORCID 0000-0003-1049-7463
Gökce, Bilal ORCID 0000-0001-6368-9659
Xu, Bai-Xiang ORCID 0000-0001-5906-5341
Kurzbeschreibung (Abstract)

The control of nanoparticle agglomeration during the fabrication of oxide dispersion strengthened steels is a key factor in maximizing their mechanical and high temperature reinforcement properties. However, the characterization of the nanoparticle evolution during processing represents a challenge due to the lack of experimental methodologies that allow in situ evaluation during laser powder bed fusion (LPBF) of nanoparticle-additivated steel powders. To address this problem, a simulation scheme is proposed to trace the drift and the interactions of the nanoparticles in the melt pool by joint heat-melt-microstructure–coupled phase-field simulation with nanoparticle kinematics. Van derWaals attraction and electrostatic repulsion with screened-Coulomb potential are explicitly employed to model the interactions with assumptions made based on reported experimental evidence. Numerical simulations have been conducted for LPBF of oxide nanoparticle-additivated PM2000 powder considering various factors, including the nanoparticle composition and size distribution. The obtained results provide a statistical and graphical demonstration of the temporal and spatial variations of the traced nanoparticles, showing ~55% of the nanoparticles within the generated grains, and a smaller fraction of ~30% in the pores, ~13% on the surface, and ~2% on the grain boundaries. To prove the methodology and compare it with experimental observations, the simulations are performed for LPBF of a 0.005 wt % yttrium oxide nanoparticle-additivated PM2000 powder and the final degree of nanoparticle agglomeration and distribution are analyzed with respect to a series of geometric and material parameters.

Freie Schlagworte

additive manufacturin...

laser powder bed fusi...

selective laser melti...

oxide dispersion stre...

phase-field model

finite element simula...

nanoparticle interact...

Sprache
Englisch
Fachbereich/-gebiet
11 Fachbereich Material- und Geowissenschaften > Materialwissenschaft > Fachgebiet Funktionale Materialien
DDC
600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften und Maschinenbau
Institution
Universitäts- und Landesbibliothek Darmstadt
Ort
Darmstadt
Titel der Zeitschrift / Schriftenreihe
Materials
Jahrgang der Zeitschrift
14
Heftnummer der Zeitschrift
13
ISSN
1996-1944
Verlag
MDPI
Publikationsjahr der Erstveröffentlichung
2021
Verlags-DOI
10.3390/ma14133463
PPN
485016796

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