TU Darmstadt / ULB / TUprints

Thermosuperrepellency of a hot substrate caused by vapour percolation

Schmidt, J. Benedikt ; Hofmann, Julian ; Tenzer, Fabian M. ; Breitenbach, Jan ; Tropea, Cameron ; Roisman, Ilia V. (2024)
Thermosuperrepellency of a hot substrate caused by vapour percolation.
In: Communications Physics, 2021, 4 (1)
doi: 10.26083/tuprints-00023621
Article, Secondary publication, Publisher's Version

[img] Text
s42005-021-00680-7.pdf
Copyright Information: CC BY 4.0 International - Creative Commons, Attribution.

Download (3MB)
Item Type: Article
Type of entry: Secondary publication
Title: Thermosuperrepellency of a hot substrate caused by vapour percolation
Language: English
Date: 25 September 2024
Place of Publication: Darmstadt
Year of primary publication: 13 August 2021
Place of primary publication: London
Publisher: Springer Nature
Journal or Publication Title: Communications Physics
Volume of the journal: 4
Issue Number: 1
Collation: 8 Seiten
DOI: 10.26083/tuprints-00023621
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

Drop rebound after collision with a very hot substrate is usually attributed to the Leidenfrost effect, characterized by intensive film boiling in a thin vapour gap between the liquid and substrate. Similarly, drop impact onto a cold superhydrophobic substrate leads to a complete drop rebound, despite partial wetting of the substrate. Here we study the repellent properties of hot smooth hydrophilic substrates in the nucleate boiling, non-Leidenfrost regime and discover that the thermally induced repellency is associated with vapour percolation on the substrate. The wetting structure in the presence of the percolating vapour rivulets is analogous to the Cassie-Baxter wetting mode, which is a necessary condition for the repellency in the isothermal case. The theoretical predictions for the threshold temperature for vapour percolation agree well with the experimental data for drop rebound and correspond to the minimum heat flux when spray cooling.

Uncontrolled Keywords: Energy modelling, Fluid dynamics, Phase transitions and critical phenomena, Wetting
Identification Number: Artikel-ID: 181
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-236216
Classification DDC: 500 Science and mathematics > 530 Physics
600 Technology, medicine, applied sciences > 620 Engineering and machine engineering
Divisions: 16 Department of Mechanical Engineering > Fluid Mechanics and Aerodynamics (SLA)
Date Deposited: 25 Sep 2024 11:50
Last Modified: 31 Oct 2024 06:36
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/23621
PPN: 522844545
Export:
Actions (login required)
View Item View Item