Projects per year
Abstract
The formation of heterogeneous vapour bubbles is widely studied due to its importance to two-phase thermal management systems, ultrasonic cleaning, and turbomachinery performance. However, the role that the surface plays in determining the growth of a bubble is still poorly understood. Currently, theoretical understanding of heterogeneous vapour bubble growth is limited to hemispherical bubbles or completely spherical bubbles next to a surface. We have previously developed an inertio-thermal model to accurately predict how heat transfer from the surrounding fluid affects homogeneous vapour bubble growth from the nanoscale to the macroscale (Sullivan et al. J. Fluid Mech. 948(A55):1-15, 2022). By accounting for the presence of the surface and its wettability on both the geometry of the bubble and on the available thermal energy in the surrounding fluid, we extend our model to capture heterogeneous vapour bubble growth. Using molecular simulations, we show not only how the strength of fluid-solid interaction affects the growth rate, but also how the formation of an adsorbed fluid layer under the bubble on lyophilic surfaces plays a vital role in determining the bubble shape and subsequent dynamics. These insights have potential to improve the performance of systems involving a change of phase from liquid to vapour by better understanding the role of surface wettability on this process.
Original language | English |
---|---|
Article number | 124657 |
Number of pages | 15 |
Journal | International journal of heat and mass transfer |
Volume | 217 |
Early online date | 11 Sept 2023 |
DOIs | |
Publication status | Published - 15 Dec 2023 |
Fingerprint
Dive into the research topics of 'The Role of Surface Wettability on the Growth of Vapour Bubbles'. Together they form a unique fingerprint.-
Engineering bulk nanobubbles for enhanced water disinfection and quality
Dockar, D. (Principal Investigator)
1/06/23 → 31/05/28
Project: Research
-
Multiscale Simulation of Rarefied Gas Flow for Engineering Design
Borg, M. (Principal Investigator) & Gibelli, L. (Co-investigator)
Engineering and Physical Sciences Research Council
1/01/21 → 31/12/24
Project: Research
-
From Kinetic Theory to Hydrodynamics: re-imagining two fluid models of particle-laden flows
Borg, M. (Principal Investigator) & Reese, J. (Co-investigator)
1/10/17 → 30/09/21
Project: Research
Datasets
-
The Role of Surface Wettability on the Growth of Vapour Bubbles
Sullivan, P. (Creator), Edinburgh DataShare, 7 Sept 2023
DOI: 10.7488/ds/7511
Dataset