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Hydrodynamic characteristics of the microlayer under vapour bubbles on solid surfaces

Zhang, Xiaolong; Mellas, Ismail El; Magnini, Mirco

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Authors

Xiaolong Zhang

Ismail El Mellas



Abstract

This study investigates the hydrodynamic behaviour of the microlayer, a thin liquid film of a few micrometres thickness that forms beneath vapour bubbles during boiling under specific conditions. This microlayer serves as a rapid heat transfer medium through evaporation due to its low thermal resistance, making it a compelling subject for enhanced heat transfer research. We employ the geometric Volume-Of-Fluid (VOF) method for numerical simulations, allowing us to accurately replicate the growth of a vapour bubble on solid surfaces. The computational approach offers a level of detail and resolution that can compensate for certain aspects of microlayer behaviour absent in experimental methods. Our simulations reveal the complete spatial distribution of the microlayer and the profiles of the bubble interface near the meniscus front (the part of the interface near the solid). We compare the results with experimental data and conduct simulations with various bubble growth laws to explore how the microlayer responds to different growth scenarios. These findings lay the foundation for incorporating the microlayer’s contribution to overall boiling heat transfer in future models, potentially unlocking new avenues for enhanced heat transfer applications.

Citation

Zhang, X., Mellas, I. E., & Magnini, M. (2024, June). Hydrodynamic characteristics of the microlayer under vapour bubbles on solid surfaces. Presented at 9th European Thermal Sciences Conference (Eurotherm 2024), Lake Bled, Slovenia

Presentation Conference Type Conference Paper (published)
Conference Name 9th European Thermal Sciences Conference (Eurotherm 2024)
Start Date Jun 10, 2024
End Date Jun 13, 2024
Acceptance Date May 8, 2024
Online Publication Date Jun 3, 2024
Publication Date Jun 10, 2024
Deposit Date Nov 18, 2024
Publicly Available Date Nov 19, 2024
Journal Journal of Physics: Conference Series
Print ISSN 1742-6588
Electronic ISSN 1742-6596
Publisher IOP Publishing
Peer Reviewed Peer Reviewed
Volume 2766
Issue 1
Article Number 012142
DOI https://doi.org/10.1088/1742-6596/2766/1/012142
Public URL https://nottingham-repository.worktribe.com/output/36000689
Publisher URL https://iopscience.iop.org/article/10.1088/1742-6596/2766/1/012142

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