Microstructure homogeneity of milled aluminum A356-Si3N4 metal matrix composite powders
Author
dc.contributor.author
Fernández, Heydi
Author
dc.contributor.author
Ordoñez, Stella
Author
dc.contributor.author
Pesenti, Hector
Author
dc.contributor.author
González, Rodrigo Espinoza
Author
dc.contributor.author
Leoni, Matteo
Admission date
dc.date.accessioned
2019-10-30T15:22:27Z
Available date
dc.date.available
2019-10-30T15:22:27Z
Publication date
dc.date.issued
2019
Cita de ítem
dc.identifier.citation
Journal of Materials Research and Technology, Volumen 8, Issue 3, 2019, Pages 2969-2977
Identifier
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22387854
Identifier
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10.1016/j.jmrt.2019.05.004
Identifier
dc.identifier.uri
https://repositorio.uchile.cl/handle/2250/172253
Abstract
dc.description.abstract
A metal matrix composite was produced by co-milling an A356 aluminum alloy powder obtained by rotating electrode off-equilibrium solidification, with different mass fractions (10, 20 and 30%) of Si3N4. The structural and microstructural modifications occurring during the milling were investigated with X-ray powder diffraction (XRPD). Whole powder pattern modeling (WPPM) of the XRPD reveals the inhomogeneous nature of the material in terms of silicon content and allows the crystallite size distribution and dislocation content to be followed in detail for all phases present in the powder. Neither microscopy nor the traditional Scherrer equation can reveal such a detailed picture in this case. Short milling times are sufficient to homogenize the microstructure and to obtain nanoscale crystallites. Long milling times are advantageous to increase the dislocation density that might be favorable for subsequent sintering.