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Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/23809
Title: Dendritic evolution during coarsening of Mg-Zn alloys via 4D synchrotron tomography
Authors: Guo, Enyu
Phillion, A.B.
Cai, Biao
Shuai, Sansan
Kazantsev, Daniil
Jing, Tao
Lee, Peter D.
Department: Materials Engineering
Keywords: Solidification;Dendrite;Interface instability;X-ray tomography;Al alloy
Publication Date: 2017
Abstract: Solidification morphology directly impacts the mechanical properties of materials; hence many models of the morphological evolution of dendritic structures have been formulated. However, there is a paucity of validation data for directional solidification models, especially the direct observations of metallic alloys, both for cellular and dendritic structures. In this study, we performed 4D synchrotron X-ray tomographic imaging (three spatial directions plus time), to study the transition from cellular to a columnar dendritic morphology and the subsequent growth of columnar dendrite in a temperature gradient stage. The cellular morphology was found to highly complex, with frequent lateral bridging. The onset of protrusions growing out of the cellular front as morphological instability was captured, and the subsequent development of a few of these protrusions into established dendrites quantified. Other mechanisms affecting the solidification microstructure, including dendrite fragmentation/pinch-off were also captured and the quantitative results were compared to proposed mechanisms. The results demonstrate that 4D imaging can provide new data to both inform and validate solidification models.
URI: http://hdl.handle.net/11375/23809
ISSN: 10.1016/j.actamat.2016.10.022
Other Identifiers: 10.1016/j.actamat.2016.10.022
Appears in Collections:Materials Science and Engineering Publications

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