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  5. 3D non-isothermal phase-field simulation of microstructure evolution during selective laser sintering
 
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2019
Zweitveröffentlichung
Artikel
Verlagsversion

3D non-isothermal phase-field simulation of microstructure evolution during selective laser sintering

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Hauptpublikation
s41524-019-0219-7.pdf
CC BY 4.0 International
Format: Adobe PDF
Size: 3.66 MB
TUDa URI
tuda/4675
URN
urn:nbn:de:tuda-tuprints-90873
Autor:innen
Yang, Yangyiwei
Ragnvaldsen, Olav
Bai, Yang
Yi, Min
Xu, Bai-Xiang
Kurzbeschreibung (Abstract)

During selective laser sintering (SLS), the microstructure evolution and local temperature variation interact mutually. Application of conventional isothermal sintering model is thereby insufficient to describe SLS. In this work, we construct our model from entropy level, and derive the non-isothermal kinetics for order parameters along with the heat transfer equation coupled with microstructure evolution. Influences from partial melting and laser-powder interaction are also addressed. We then perform 3D finite element non-isothermal phase-field simulations of the SLS single scan. To confront the high computation cost, we propose a novel algorithm analogy to minimum coloring problem and manage to simulate a system of 200 grains with grain tracking algorithm using as low as 8 non-conserved order parameters. Specifically, applying the model to SLS of the stainless steel 316L powder, we identify the influences of laser power and scan speed on microstructural features, including the porosity, surface morphology, temperature profile, grain geometry, and densification. We further validate the first-order kinetics of the transient porosity during densification, and demonstrate the applicability of the developed model in predicting the linkage of densification factor to the specific energy input during SLS.

Sprache
Englisch
Fachbereich/-gebiet
11 Fachbereich Material- und Geowissenschaften > Materialwissenschaft > Fachgebiet Mechanik Funktionaler Materialien
DDC
600 Technik, Medizin, angewandte Wissenschaften > 600 Technik
Institution
Universitäts- und Landesbibliothek Darmstadt
Ort
Darmstadt
Titel der Zeitschrift / Schriftenreihe
npj Computational Materials
Bandnummer der Reihe
5
Heftnummer der Zeitschrift
1
ISSN
2057-3960
Verlag
Springer Nature
Publikationsjahr der Erstveröffentlichung
2019
Verlags-DOI
10.1038/s41524-019-0219-7
PPN
45306406X

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