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Microstructure and constitutive model for flow behavior of AlSi10Mg by Selective Laser Melting
- Source :
- Materials Science and Engineering: A. 814:141157
- Publication Year :
- 2021
- Publisher :
- Elsevier BV, 2021.
-
Abstract
- This work is devoted to investigate the flow behavior and microstructure evolution of AlSi10Mg by additive manufacturing in hot deformation. Tensile test is carried out under different temperatures, i.e. 200 ∘ C, 250 ∘ C, 300 ∘ C, 350 ∘ C and 400 ∘ C, with various strain rates of 0.004/s, 0.002/s and 0.0004/s. Theoretically, the modified Arrhenius-type model of additive manufacturing materials at high temperature is established. Experimentally, scanning electron microscope and optical microscope are used to analyze the mechanism of hot deformation. It is found that at 200 ∘ C both the dendritic eutectic Si and acicular eutectic Si precipitate, forming cellular structure and strengthening phases. And then, the acicular eutectic Si is partially dissolved into Al matrix, but there is no obvious growth of dendritic Si at 300 ∘ C. With the temperature increasing, the cellular structure and melt pool boundary gradually disappear. For 400 ∘ C temperature, like homogenization process, the precipitation of saturated solid solution forms the dispersed phase, and the stress-strain curve shows a weak hardening. Meanwhile, the statistical result shows that that the constitutive model agrees well with the experimental results at high temperature. This study may provide guidance for the improvement of additive manufacturing material properties by post-treatment.
- Subjects :
- 010302 applied physics
Acicular
Materials science
Precipitation (chemistry)
Mechanical Engineering
02 engineering and technology
021001 nanoscience & nanotechnology
Condensed Matter Physics
Microstructure
01 natural sciences
Mechanics of Materials
Phase (matter)
0103 physical sciences
General Materials Science
Composite material
Selective laser melting
0210 nano-technology
Solid solution
Eutectic system
Tensile testing
Subjects
Details
- ISSN :
- 09215093
- Volume :
- 814
- Database :
- OpenAIRE
- Journal :
- Materials Science and Engineering: A
- Accession number :
- edsair.doi...........f402aa0ac81c5826533effd06871fcfc