期刊
ACTA MATERIALIA
卷 152, 期 -, 页码 127-137出版社
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2018.04.023
关键词
Metal matrix nanocomposites; Dendritic solidification; Nanoparticles; Tomography; Iterative image reconstruction
资金
- European Commission (ExoMet Project, 7th Framework Programme) [FP7-NMP3-LA-2012-280421]
- EPSRC [EP/I02249X/1, EP/K007734/1, EP/M009688/1]
- National Natural Science Foundation of China [51690162]
- EPSRC [EP/M022498/1] Funding Source: UKRI
Melt processing offers a cost effective method for producing metal matrix nanocomposite (MMNC) components; however, the influence of nanoparticles on the evolving microstructure during solidification is still not well understood. In this study, the effect of SiC nanoparticles on alpha-Mg dendrite evolution in a Mg-25Zn-7Al (wt.%) alloy was investigated through 4D (three dimensions plus time) synchrotron tomographic quantification of solidification experiments conducted at different cooling rates with and without nanoparticles. Key features of the solidifying primary alpha-Mg dendritic grains were quantified, including grain morphology, size distribution, and dendrite tip velocity. To obtain the high-contrast tomography dataset necessary for structure quantification, a new image reconstruction and processing methodology was implemented. The results reveal that the addition of nanoparticles increases grain nucleation whilst restricting dendritic growth and altering the dendritic grain growth morphology. Using LGK model calculations, it is shown that these changes in solidification microstructure occur as a result of nanoparticle-induced restriction in Zn's effective diffusivity ahead of the dendrite tips, reducing tip velocity. The results both suggest the key phenomena required to be simulated when numerically modelling solidifying Mg-based MMNC and provide the data required to validate those models. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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