A viewpoint from dissipative dynamics on diffusion-controlled directional solidification
The existing theoretical analyses of solidification dynamics lack the insights of historical relevance and transport processes in the whole system. Through the phase field model, this paper investigates the evolution in the whole domain during entire directional solidification. First, the evolution...
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Published in | Journal of materials research Vol. 38; no. 20; pp. 4665 - 4677 |
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Main Author | |
Format | Journal Article |
Language | English |
Published |
Cham
Springer International Publishing
28.10.2023
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
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Summary: | The existing theoretical analyses of solidification dynamics lack the insights of historical relevance and transport processes in the whole system. Through the phase field model, this paper investigates the evolution in the whole domain during entire directional solidification. First, the evolution of characteristic parameters is obtained, including the solute concentration ahead of interface and tip velocity, demonstrating the dissipative features of solidification. Second, by adjusting the diffusion coefficient
D
L
, the dissipation at the interface can be altered. With different
D
L
, different stages during directional solidification are investigated, including planar growth and instability, dendrite growth, and steady-state growth. The results indicate the important role of solute diffusion in alloy solidification. From the viewpoint of the whole domain, smaller
D
L
corresponds to a higher degree of dissipation, forming more interfaces during solidification. Moreover, the competitive influences of tip curvature and velocity are also because of the dissipation, resulting from the friction of atoms.
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ISSN: | 0884-2914 2044-5326 |
DOI: | 10.1557/s43578-023-01187-3 |