Abstract
Droplet-wall interactions are well known to generate a wide variety of outcomes such as spreading, splashing, receding, jetting, and rebounding. In this paper, we focus on the evolution of jets that form during the recoil of impinging drops on partially wetting hydrophilic substrates composed of cylindrical micropillars. The impact of the millimeter-sized drops of water-glycerol mixtures on the micro structured hydrophilic substrates is investigated by high-speed video photography. Impact velocity and fluid viscosity are varied to characterize the jets. Wetting angles are maintained in the range of 43.6° ≤θ≤51.4°. A regime map is constructed to convey the jet behavior at a glance. We find that jet speed, height, and diameter scale linearly with the Weber number. We also find that the jet originates from the inertial collapse of an air cavity formed during the recoil phase of the drop following impact on the micro structured substrate. The relationship between the size of the top jet drop and jet velocity obeys the scaling law of [Gañán-Calvo, Phys. Rev. Lett. 119, 204502 (2017)10.1103/PhysRevLett.119.204502] for jets induced by capillary surface singularities. No jet is observed for sufficiently high drop viscosity.
Recommended Citation
A. U. Siddique et al., "Jet Ejection Following Drop Impact on Micropillared Hydrophilic Substrates," Physical Review Fluids, vol. 5, no. 6, article no. 063606, American Physical Society, Jun 2020.
The definitive version is available at https://doi.org/10.1103/PhysRevFluids.5.063606
Department(s)
Electrical and Computer Engineering
International Standard Serial Number (ISSN)
2469-990X
Document Type
Article - Journal
Document Version
Final Version
File Type
text
Language(s)
English
Rights
© 2025 American Physical Society, All rights reserved.
Publication Date
01 Jun 2020

Comments
National Science Foundation, Grant 1701339