Coupled gas and bubble dynamics at the solidification front
Bastien Isabella, C\'ecile Monteux, Sylvain Deville

TL;DR
This study investigates the real-time dynamics of gas bubble formation and entrapment at the solidification front in carbonated water using in situ microscopy, revealing how solidification velocity influences bubble nucleation.
Contribution
It provides new insights into the coupled gas-bubble dynamics during solidification, highlighting the role of nucleation time and gas diffusion in bubble formation.
Findings
Bubble nucleation governed by a characteristic nucleation time.
Critical gas concentration for bubble nucleation estimated.
Solidification velocity affects bubble growth and entrapment.
Abstract
The formation and entrapment of gas bubbles during solidification significantly influence the microstructure and mechanical properties of materials, from metallic alloys to ice. While gas segregation at the solidification front is well-documented, the real-time dynamics of bubble nucleation, growth, and engulfment-and their dependence on solidification velocity-remain poorly understood. In this study, we use in situ cryo-confocal fluorescence microscopy to investigate the coupled gas-bubble dynamics at the solidification front of carbonated water, systematically varying the solidification velocity () while maintaining a constant thermal gradient (). Our experiments reveal that bubble nucleation is governed by a characteristic nucleation time, which emerges from the interplay between gas diffusion ahead of the front, nucleation kinetics, and bubble growth,…
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